Microarray synthesis and assembly of gene-length polynucleotides
33 claims: 33 independent, 0 dependent
- 1A process for assembling a polynucleotide from a plurality of oligonucleotides comprising:(a) amplifying a plurality of oligonucleotides that together comprise the polynucleotide sequence using a pair of primers, wherein the plurality of oligonucleotides are attached to a microarray device or a bead device each having a solid or porous surface, wherein each of the oligonucleotides has an overlapping sequence region corresponding to a sequence region in a next oligonucleotide, and wherein each oligonucleotide comprises flanking sequence regions at its 3' end and 5' end, wherein said flanking sequence regions comprise primer binding sites for the same primer pair and a sequence segment having a restriction enzyme recognition sequence for removing the primer binding sites;(b) cleaving the oligonucleotides to remove the primer binding sites;and(c) assembling the cleaved oligonucleotide sequences through the overlapping regions to form a full length polynucleotide. Procédé d'assemblage d'un polynucléotide à partir d'une pluralité d'oligonucléotides comprenant : (a) l'amplification d'une pluralité d'oligonucléotides qui ensemble comprennent la séquence polynucléotidique en utilisant une paire d'amorces, dans laquelle la pluralité d'oligonucléotides est fixée à un dispositif de micropuce ou à un dispositif de bille, chacun ayant une surface solide ou poreuse, dans laquelle chacun des oligonucléotides comporte une région de séquence chevauchante correspondant à une région de séquence dans un oligonucléotide suivant, et dans laquelle chaque oligonucléotide comprend des régions de séquence flanquantes à leurs extrémités 3' et 5', dans laquelle lesdites régions de séquence flanquantes comprennent des sites de liaison d'amorce pour la même paire d'amorces et un segment de séquence comportant une séquence de reconnaissance d'enzyme de restriction pour éliminer les sites de liaison d'amorce ;(b) le clivage des oligonucléotides pour éliminer les sites de liaison d'amorce ;et(c) l'assemblage des séquences oligonucléotidiques clivées par l'intermédiaire des régions chevauchantes pour former un polynucléotide de longueur complète. Verfahren für das Zusammensetzen eines Polynukleotids aus einer Vielzahl von Oligonukleotiden umfassend: (a) Amplifizieren einer Vielzahl von Oligonukleotiden, die zusammen die Polynukleotidsequenz umfassen, unter Verwendung von einem Primerpaar, wobei die Vielzahl der Oligonukleotide an eine Microarray-Vorrichtung oder eine Kügelchen ("Bead")-Vorrichtung, die jeweils eine feste oder poröse Oberfläche aufweisen, gebunden ist, wobei jedes der Oligonukleotide einen überlappenden Sequenzbereich aufweist, der einem Sequenzbereich in einem nächsten Oligonukleotid entspricht, und wobei jedes Oligonukleotid flankierende Sequenzbereiche an ihren 3'- und 5'-Enden aufweist, wobei die flankierenden Sequenzbereiche Primerbindestellen für dasselbe Primerpaar und einen Sequenzabschnitt, der eine Restriktionsenzymerkennungssequenz für das Entfernen der Primerbindestellen aufweist, umfassen;(b) Spalten der Oligonukleotide, um die Primerbindestellen zu entfernen;und(c) Zusammensetzen der gespaltenen Oligonukleotidsequenzen mittels der überlappenden Bereiche, um ein Polynukleotid vollständiger Länge zu bilden.
- 2A process for assembling a polynucleotide from a plurality of oligonucleotides comprising:(a) synthesizing in situ or spotting a plurality of different oligonucleotides that together comprise the polynucleotide sequence on a microarray device or bead device, wherein the plurality of oligonucleotides are attached to a solid or porous surface of the microarray device or bead device, wherein each of said oligonucleotides has an overlapping sequence region corresponding to a sequence region in a next oligonucleotide, and wherein each oligonucleotide comprises flanking sequence regions at its 3' end and 5' end, wherein said flanking sequence regions comprise primer binding sites for the same primer pair and a sequence segment having a restriction enzyme recognition sequence for removing the primer binding sites;(b) amplifying each oligonucleotide using a pair of primers complementary to the primer binding sites of the flanking sequence regions;(c) cleaving the oligonucleotide to remove the primer binding sites;and(d) assembling the cleaved oligonucleotide sequences through the overlapping regions to form a full length polynucleotide. Procédé d'assemblage d'un polynucléotide à partir d'une pluralité d'oligonucléotides comprenant : (a) la synthèse in situ ou le dépôt d'une pluralité d'oligonucléotides différents qui ensemble comprennent la séquence polynucléotidique sur un dispositif de micropuce ou un dispositif de bille, dans laquelle la pluralité d'oligonucléotides est fixée à une surface solide ou poreuse du dispositif de micropuce ou du dispositif de bille, où chacun desdits oligonucléotides comporte une région de séquence chevauchante correspondant à une région de séquence dans un oligonucléotide suivant, et dans laquelle chaque oligonucléotide comprend en outre des régions de séquence flanquantes à leurs extrémités 3' et 5', dans laquelle lesdites régions de séquence flanquantes comprennent des sites de liaison d'amorce pour la même paire d'amorces et un segment de séquence comportant une séquence de reconnaissance d'enzyme de restriction pour éliminer les sites de liaison d'amorce ;(b) l'amplification de chaque oligonucléotide en utilisant une paire d'amorces complémentaires aux sites de liaison d'amorce des régions de séquence flanquantes;(c) le clivage des oligonucléotide pour éliminer les sites de liaison d'amorce ;et(d) l'assemblage des séquences oligonucléotidiques clivées par l'intermédiaire des régions chevauchantes pour former un polynucléotide de longueur complète. Verfahren für das Zusammensetzen eines Polynukleotids aus einer Vielzahl von Oligonukleotiden umfassend: (a) In situ-Synthetisieren oder Platzieren einer Vielzahl verschiedener Oligonukleotide, die zusammen die Polynukleotidsequenz umfassen, auf einer Microarray-Vorrichtung oder eine Kügelchen ("Bead")-Vorrichtung, wobei die Vielzahl der Oligonukleotide an eine feste oder poröse Oberfläche der Microarray-Vorrichtung oder der Kügelchen ("Bead")-Vorrichtung gebunden ist, wobei jedes der Oligonukleotide einen überlappenden Sequenzbereich aufweist, der einem Sequenzbereich in einem nächsten Oligonukleotid entspricht, und wobei jedes Oligonukleotid flankierende Sequenzbereiche an seinen 3'- und 5'-Enden aufweist, wobei die flankierenden Sequenzbereiche Primerbindestellen für dasselbe Primerpaar und einen Sequenzabschnitt, der eine Restriktionsenzymerkennungssequenz für das Entfernen der Primerbindestellen aufweist, umfassen;(b) Amplifizieren jedes Oligonukleotids unter Verwendung von einem Primerpaar, das komplementär zu den Primerbindestellen der flankierenden Sequenzbereiche ist;(c) Spalten der Oligonukleotide, um die Primerbindestellen zu entfernen;und(d) Zusammensetzen der gespaltenen Oligonukleotidsequenzen mittels der überlappenden Bereiche, um ein Polynukleotid vollständiger Länge zu bilden.
- 3Procédé selon la revendication 2, dans lequel chaque oligonucléotide comprend en outre un segment de séquence comportant un fragment de liaison. The process of claim 2, wherein each oligonucleotide further comprises a sequence segment having a cleavable linker moiety. Verfahren nach Anspruch 2, wobei jedes Oligonukleotid weiterhin einen Sequenzabschnitt aufweist, der einen spaltbaren Linker-Anteil aufweist.
- 4Procédé selon la revendication 2 ou 3, comprenant en outre le clivage des oligonucléotide au niveau du site de liaison clivable pour cliver chaque oligonucléotide à partir de la surface solide de la micropuce ou de la bille pour former un mélange soluble d'oligonucléotides. The process of claim 2 or 3, further comprising cleaving the oligonucleotide at the cleavable linker site to cleave each oligonucleotide from the microarray or bead solid surface to form a soluble mixture of oligonucleotides. Verfahren nach Anspruch 2 oder 3, welches weiterhin umfasst das Spalten der Oligonukleotide an der spaltbaren Linker-Stelle, um jedes Oligonukleotid von der festen Microarray- oder Kügelchen ("Bead")-Oberfläche für die Herstellung eines löslichen Oligonukleotidgemisches abzuspalten.
- 5Procédé selon l'une quelconque des revendications 2 à 4, dans lequel la liaison clivable est une composition chimique comportant un radical succinate lié à un radical nucléotidique de telle façon que le clivage produit un 3'-hydroxy-nucléotide. The process of any one of claims 2 to 4, wherein the cleavable linker is a chemical composition having a succinate moiety bound to a nucleotide moiety such that cleavage produces a 3' hydroxy nucleotide. Verfahren nach einem der Ansprüche 2 bis 4, wobei der spaltbare Linker eine chemische Zusammensetzung ist, die einen Succinat-Anteil gebunden an einen Nukleotid-Anteil aufweist, so dass die Spaltung ein 3'-Hydroxy-Nukleotid bildet.
- 6Procédé selon l'une quelconque des revendications 2 à 5, dans lequel la liaison clivable est choisie dans le groupe constitué de 5'-diméthoxytrityl-thymidine-3'-succinate, 4-N-benzoyl-5'-diméthoxytrityl-désoxycytidine-3'-succinate, 1-N-benzoyl-5'-diméthoxytrityl-désoxyadénosine-3'-succinate, 2-N-isobutyryl-5'-diméthoxytrityl-désoxyguanosine-3'-succinate, et des combinaisons de ceux-ci. The process of any one of claims 2 to 5, wherein the cleavable linker is selected from the group consisting of 5'-dimethoxytrityl-thymidine-3'-succinate, 4-N-benzoyl-5'-dimethoxytrityl-deoxycytidine-3'-succinate, 1-N-benzoyl-5'-dimethoxytrityl-deoxyadenosine-3'-succinate, 2-N-isobutyryl-5'-dimethoxytrityl-deoxyguanosine-3'-succinate, and combinations thereof. Verfahren nach einem der Ansprüche 2 bis 5, wobei der spaltbare Linker 5'-Dimethoxytrityl-Thymidin-3'-Succinat, 4-N-Benzoyl-5'-Dimethoxytrityl-deoxycytidin-3'-Succinat, 1-N-Benzoyl-5'-Dimethoxytrityl-deoxyadenosin-3'-Succinat, 2-N-Isobutyryl-5'-Dimethoxytrityl-deoxyguanosin-3'-Succinat oder Kombinationen davon ist.
- 7Procédé selon la revendication 2, dans lequel la région de séquence flanquante à une extrémité fixée à la surface solide ou poreuse comprend un segment de séquence comportant une séquence de reconnaissance d'enzyme de restriction pouvant être clivée par une enzyme de restriction correspondante. The process of claim 2, wherein the flanking sequence region at an end attached to the solid or porous surface comprises a sequence segment having a restriction enzyme recognition sequence capable of being cleaved by a corresponding restriction enzyme. Verfahren nach Anspruch 2, wobei der flankierende Sequenzbereich an einem Ende, das an die feste oder poröse Oberfläche gebunden ist, einen Sequenzabschnitt umfasst, der eine Restriktionsenzymerkennungssequenz aufweist, die durch ein entsprechendes Restriktionsenzym gespalten werden kann.
- 8Procédé selon la revendication 7, comprenant en outre l'hybridation d'une séquence oligonucléotidique complémentaire à la région de séquence flanquante à une extrémité fixée à la surface solide ou poreuse pour former une séquence double brin capable d'interagir avec l'enzyme de restriction correspondante et de digérer la pluralité d'oligonucléotides pour les cliver à partir du dispositif de micropuce ou du dispositif de bille pour former un mélange soluble d'oligonucléotides. The process of claim 7, further comprising hybridizing an oligonucleotide sequence complementary to the flanking sequence region at an end attached to the solid or porous surface to form a double stranded sequence capable of interacting with the corresponding restriction enzyme and digesting the plurality of oligonucleotides to cleave them from the microarray device or bead device to form a soluble mixture of oligonucleotides. Verfahren nach Anspruch 7, weiterhin umfassend das Hybridisieren einer zu dem flankierenden Sequenzbereich an einem an die feste oder poröse Oberfläche gebundenen Ende komplementären Oligonukleotidsequenz, um eine doppelsträngige Sequenz zu bilden, die mit dem entsprechenden Restriktionsenzym interagieren kann, und Verdau der Vielzahl von Oligonukleotiden, um sie von der Microarray-Vorrichtung oder Kügelchen ("Bead")-Vorrichtung für die Herstellung eines löslichen Oligonukleotidgemisches abzuspalten.
- 9Procédé selon l'une quelconque des revendications 2 à 8, dans lequel les régions de séquence flanquantes ont une longueur d'environ 7 à environ 50 bases. The process of any one of claims 2 to 8, wherein the flanking sequence regions are from about 7 to about 50 bases in length. Verfahren nach einem der Ansprüche 2 bis 8, wobei die flankierenden Sequenzbereiche eine Länge von etwa 7 bis etwa 50 Basen besitzen.
- 10Procédé selon l'une quelconque des revendications 2 à 9, dans lequel la séquence de reconnaissance d'enzyme de restriction est une séquence de site de restriction d'endonucléase de classe II pouvant être clivée par son enzyme de restriction endonucléase de classe II correspondante. The process of any one of claims 2 to 9, wherein the restriction enzyme recognition sequence is a class II endonuclease restriction site sequence capable of being cleaved by its corresponding class II restriction endonuclease enzyme. Verfahren nach einem der Ansprüche 2 bis 9, wobei die Restriktionsenzymerkennungssequenz eine Klasse II-Endonukleaserestriktionsstellensequenz ist, die durch ein entsprechendes Restriktionsendonuklease-Enzym der Klasse II gespalten werden kann.
- 11Procédé selon la revendication 10, dans lequel le site de restriction d'endonucléase de classe II correspond à des sites de restriction pour une enzyme de restriction endonucléase de classe II choisie dans le groupe constitué de MlyI, BspMI, BaeI, BsaXI, BsrI, BmrI, BtrI, BtsI, FokI, et des combinaisons de celles-ci. The process of claim 10, wherein the restriction endonuclease class II site corresponds to restriction sites for a restriction endonuclease class II enzyme selected from the group consisting of MlyI, BspMI, Bael, BsaXI, BsrI, BmrI, BtrI, Btsl, Fokl, and combinations thereof. Verfahren nach Anspruch 10, wobei die Klasse II-Restriktionsendonukleasestelle Restriktionsstellen für ein Restriktionsendonuklease-Enzym der Klasse II ausgewählt aus Mlyl, BspMI, Bael, BsaXI, Bsrl, BmrI, Btrl, Btsl, Fokl und Kombinationen davon entspricht.
- 12Procédé selon l'une quelconque des revendications 2 à 11, dans lequel les régions de séquence flanquantes comprennent en outre un radical de liaison utilisé pour purifier les oligonucléotides clivés à partir des régions de séquence flanquantes. The process of any one of claims 2 to 11, wherein the flanking sequence regions further comprise a binding moiety used to purify cleaved oligonucleotides from the flanking sequence regions. Verfahren nach einem der Ansprüche 2 bis 11, wobei die flankierenden Sequenzbereiche zudem einen Bindungsanteil für die Verwendung zur Aufreinigung der gespaltenen Oligonukleotide von den flankierenden Sequenzbereichen umfasst.
- 13Procédé selon la revendication 12, dans lequel le procédé comprend en outre l'étape de marquage des régions de séquence flanquantes durant l'étape d'amplification (b) en utilisant des séquences d'amorces marquées avec des radicaux de liaison. The process of claim 12, wherein the process further comprises the step of labeling the flanking sequence regions during the amplification step (b) using primer sequences labeled with binding moieties. Verfahren nach Anspruch 12, wobei das Verfahren zudem den Schritt des Markierens der flankierenden Sequenzbereiche durch Verwendung von mit Bindungsanteilen markierten Primersequenzen während des Amplifikationsschritts (b) umfasst.
- 14Procédé selon la revendication 13, dans lequel un radical de liaison est une petite molécule pouvant être capturée, comme la biotine capturée par l'avidine ou la streptavidine, ou la fluorescéine pouvant être capturée par un anticorps anti-fluorescéine. The process of claim 13, wherein a binding moiety is a small molecule able to be captured, such as biotin captured by avidin or streptavidin, or fluorescein able to be captured by an anti-fluorescein antibody. Verfahren nach Anspruch 13, wobei ein Bindungsanteil eine niedermolekulare Verbindung ist, die gebunden werden kann, so wie Biotin gebunden durch Avidin oder Streptavidin, oder Fluorescein durch einen Anti-Fluorescein-Antikörper gebunden werden kann.
- 15Procédé selon l'une quelconque des revendications 2 à 14, dans lequel les régions de séquence flanquantes pour chaque oligonucléotide sont identiques. The process of any one of claims 2 to 14, wherein the flanking sequence regions for each oligonucleotide are the same. Verfahren nach einem der Ansprüche 2 bis 14, wobei die flankierenden Sequenzbereiche jedes Oligonukleotids gleich sind.
- 16Procédé selon l'une quelconque des revendications 2 à 15, dans lequel la même paire d'amorces est utilisée pour amplifier chaque oligonucléotide. The process of any one of claims 2 to 15, wherein the same primer pair is used to amplify each oligonucleotide. Verfahren nach einem der Ansprüche 2 bis 15, wobei das gleiche Primerpaar für die Amplifikation jedes Oligonukleotids verwendet wird.
- 17Procédé selon l'une quelconque des revendications 2 à 16, dans lequel le procédé comprend en outre l'amplification de la séquence polynucléotidique de longueur complète en utilisant des amorces complémentaires à ses extrémités. The process of any one of claims 2 to 16, wherein the process further comprises amplifying the full length polynucleotide sequence using primers complementary to the ends thereof. Verfahren nach einem der Ansprüche 2 bis 16, wobei das Verfahren zudem die Amplifikation der Polynukleotidsequenz vollständiger Länge unter Verwendung von zu deren Enden komplementären Primer umfasst.
- 18Procédé selon l'une quelconque des revendications 2 à 17, dans lequel les régions de séquence flanquantes sont conçues pour présenter une homologie minimale avec les séquences oligonucléotidiques. The process of anyone of claims 2 to 17, wherein the flanking sequence regions are designed to have minimal homology to the oligonucleotide sequences. Verfahren nach einem der Ansprüche 2 bis 17, wobei die flankierenden Sequenzbereiche so aufgebaut sind, dass sie minimale Homologie zu den Oligonukleotidsequenzen aufweisen.
- 19Procédé selon l'une quelconque des revendications 2 à 18, dans lequel l'assemblage comprend des cycles répétés de fusion, d'auto-hybridation et d'extension par polymérase. The process of anyone of claims 2 to 18, wherein assembly comprises repeated cycles of melting, self-annealing and polymerase extension. Verfahren nach einem der Ansprüche 2 bis 18, wobei das Zusammensetzen wiederholte Zyklen des Schmelzens, der Selbst-Aneinanderlagerung ("self-annealing") und der Polymeraseverlängerung umfasst.
- 20Procédé selon l'une quelconque des revendications 2 à 11 ou 15 à 19, dans lequel les oligonucléotides clivés sont purifiés à partir des régions de séquence flanquantes en se basant sur la taille. The process of anyone of claims 2 to 11 or 15 to 19, wherein cleaved oligonucleotides are purified from the flanking sequence regions based on size. Verfahren nach einem der Ansprüche 2 bis 11 oder 15 bis 19, wobei gespaltene Oligonukleotide von den flankierenden Sequenzregionen basierend auf der Größe aufgereinigt werden.
- 21A composition for the manufacture of a polynucleotide comprising a plurality of different oligonucleotides that together comprise the polynucleotide sequence, wherein the oligonucleotides are attached to a solid or porous surface of a microarray device or bead device, wherein each oligonucleotide has an overlapping sequence region corresponding to a sequence region in a next oligonucleotide, and wherein each oligonucleotide further comprises flanking sequence regions at its 3' end and 5' end, each flanking sequence region comprising primer binding sites permitting amplification of said plurality of said oligonucleotides by the same pair of complementary primers and a sequence segment having a restriction enzyme recognition sequence permitting removal of said primer binding sites. Composition pour la fabrication d'un polynucléotide comprenant une pluralité d'oligonucléotides différents qui ensemble composent la séquence polynucléotidique, dans laquelle les oligonucléotides sont fixés à une surface solide ou poreuse d'un dispositif de micropuce ou d'un dispositif de bille, dans laquelle chaque oligonucléotide comporte une région de séquence chevauchante correspondant à une région de séquence dans un oligonucléotide suivant, et dans laquelle chaque oligonucléotide comprend en outre des régions de séquence flanquantes à leurs extrémités 3' et 5', chaque paire de régions de séquence flanquantes comprenant des sites de liaison d'amorce permettant l'amplification de ladite pluralité desdits oligonucléotides par la même paire d'amorces complémentaires et un segment de séquence comportant une séquence de reconnaissance d'enzyme de restriction permettant l'éliminations desdits sites de liaison d'amorce. Zusammensetzung zur Herstellung eines Polynukleotids, die eine Vielzahl von verschiedenen Oligonukleotiden umfasst, die zusammen die Polynukleotidsequenz umfassen, wobei die Oligonukleotide an eine feste oder poröse Oberfläche einer Microarray-Vorrichtung oder einer Kügelchen ("Bead")-Vorrichtung gebunden sind, wobei jedes der Oligonukleotide einen überlappenden Sequenzbereich aufweist, der einem Sequenzbereich in einem nächsten Oligonukleotid entspricht, und wobei jedes Oligonukleotid weiterhin flankierende Sequenzbereiche an seinen 3'- und 5'-Enden aufweist, jeder flankierende Sequenzbereich Primerbindestellen umfasst, die die Amplifikation der Vielzahl der Oligonukleotide durch dasselbe Paar komplementärer Primer ermöglicht, und einen Sequenzabschnitt, der eine Restriktionsenzymerkennungssequenz aufweist, die das Entfernen der Primerbindestellen ermöglicht.
- 22Composition selon la revendication 21, dans laquelle les oligonucléotides sont fixés à et peuvent être séparés de la surface du dispositif de micropuce ou du dispositif de bille. The composition of claim 21, wherein the oligonucleotides are attached to and separable from the surface of the microarray device or bead device. Zusammensetzung nach Anspruch 21, wobei die Oligonukleotide an die Oberfläche der Microarray-Vorrichtung oder Kügelchen ("Bead")-Vorrichtung gebunden und davon abtrennbar sind.
- 23Composition selon la revendication 22, dans laquelle chaque oligonucléotide comprend en outre un segment de séquence comportant un fragment de liaison clivable. The composition of claim 22, wherein each oligonucleotide further comprises a sequence segment having a cleavable linker moiety. Zusammensetzung nach Anspruch 22, wobei jedes Oligonukleotid zudem einen Sequenzabschnitt aufweist, der einen spaltbaren Linker-Anteil aufweist.
- 24Composition selon la revendication 23, dans laquelle la liaison clivable est une composition chimique comportant un radical succinate lié à un radical nucléotidique de telle façon que le clivage produit un 3'-hydroxy-nucléotide. The composition of claim 23, wherein the cleavable linker is a chemical composition having a succinate moiety bound to a nucleotide moiety such that cleavage produces a 3'hydroxy nucleotide. Zusammensetzung nach Anspruch 23, wobei der spaltbare Linker eine chemische Zusammensetzung ist, die einen Succinat-Anteil gebunden an einen Nukleotid-Anteil aufweist, so dass die Spaltung ein 3'-Hydroxy-Nukleotid bildet.
- 25Composition selon les revendications 23 ou 24, dans laquelle la liaison clivable est choisie dans le groupe constitué de 5'-diméthoxytrityl-thymidine-3'-succinate, 4-N-benzoyl-5'-diméthoxytrityl-désoxycytidine-3'-succinate, 1-N-benzoyl-5'-diméthoxy-trityl-désoxyadénosine-3'-succinate, 2-N-isobutyryl-5'-diméthoxytrityl-désoxy-guanosine-3'-succinate, et des combinaisons de ceux-ci. The composition of claims 23 or 24, wherein the cleavable linker is selected from the group consisting of 5'-dimethoxytrityl-thymidine-3'-succinate, 4-N-benzoyl-5'-dimethoxytrityl-deoxycytidine-3'-succinate, 1-N-benzoyl-5'-dimethoxytrityl-deoxyadenosine-3'-succinate, 2-N-isobutyryl-5'-dimethoxytrityl-deoxyguanosine-3'-succinate, and combinations thereof. Zusammensetzung nach Anspruch 23 oder 24, wobei der spaltbare Linker 5'-Dimethoxytrityl-Thymidin-3'-Succinat, 4-N-Benzoyl-5'-Dimethoxytrityl-deoxycytidin-3'-Succinat, 1-N-Benzoyl-5'-Dimethoxytrityl-deoxyadenosin-3'-Succinat, 2-N-Isobutyryl-5'-Dimethoxytrityl-deoxyguanosin-3'-Succinat oder Kombinationen davon ist.
- 26Composition selon la revendication 22, dans laquelle la région de séquence flanquante à une extrémité fixée à la surface comprend un segment de séquence comportant une séquence de reconnaissance d'enzyme de restriction pouvant être clivée par une enzyme de restriction correspondante. The composition of claim 22, wherein the flanking sequence region at an end attached to the surface comprises a sequence segment having a restriction enzyme recognition sequence capable of being cleaved by a corresponding restriction enzyme. Zusammensetzung nach Anspruch 22, wobei der flankierende Sequenzbereich an einem Ende, das an die Oberfläche gebunden ist, einen Sequenzabschnitt umfasst, der eine Restriktionsenzymerkennungssequenz aufweist, die durch ein entsprechendes Restriktionsenzym gespalten werden kann.
- 27Composition selon l'une quelconque des revendications 21 à 26, dans laquelle les régions de séquence flanquantes ont une longueur d'environ 7 à environ 50 bases. The composition of anyone of claims 21 to 26, wherein the flanking sequence regions are from about 7 to about 50 bases in length. Zusammensetzung nach einem der Ansprüche 21 bis 26, wobei die flankierenden Sequenzbereiche eine Länge von etwa 7 bis etwa 50 Basen besitzen.
- 28Composition selon l'une quelconque des revendications 21 à 27, dans laquelle la séquence de reconnaissance d'enzyme de restriction est une séquence de site de restriction d'endonucléase de classe II pouvant être clivée par son enzyme de restriction endonucléase de classe II correspondante. The composition of any one of claims 21 to 27, wherein the restriction enzyme recognition sequence is a class II endonuclease restriction site sequence capable of being cleaved by its corresponding class II restriction endonuclease enzyme. Zusammensetzung nach einem der Ansprüche 21 bis 27, wobei die Restriktionsenzymerkennungssequenz eine Klasse II-Endonukleaserestriktionsstellensequenz ist, die durch ein entsprechendes Restriktionsendonuklease-Enzym der Klasse II gespalten werden kann.
- 29Composition selon la revendication 28, dans laquelle le site de restriction de l'endonucléase de classe II correspond aux sites de restriction pour une enzyme de restriction endonucléase de classe II choisie dans le groupe constitué de MlyI, BspMI, BaeI, BsaXI, BsrI, BmrI, BtrI, BtsI, FokI, et des combinaisons de celles-ci. The composition of claim 28, wherein the restriction endonuclease class II site corresponds to restriction sites for a restriction endonuclease class II enzyme selected from the group consisting of Mlyl, BspMI, Bael, BsaXI, BsrI, BmrI, BtrI, Btsl, Fokl, and combinations thereof. Zusammensetzung nach Anspruch 28, wobei die Klasse II-Restriktionsendonukleasestelle Restriktionsstellen für ein Restriktionsendonuklease-Enzym der Klasse II ausgewählt aus Mlyl, BspMI, Bael, BsaXI, Bsrl, BmrI, Btrl, Btsl, Fokl und Kombinationen davon entspricht.
- 30Composition selon l'une quelconque des revendications 21 à 29, dans laquelle les régions de séquence flanquantes comprennent en outre un radical de liaison utilisé pour purifier les oligonucléotides clivés à partir des régions de séquence flanquantes. The composition of any one of claims 21 to 29, wherein the flanking sequence regions further comprise a binding moiety used to purify cleaved oligonucleotides from the flanking sequence regions. Zusammensetzung nach einem der Ansprüche 21 bis 29, wobei die flankierenden Sequenzbereiche weiterhin einen Bindungs-Anteil für die Verwendung zur Aufreinigung der gespaltenen Oligonukleotide von den flankierenden Sequenzbereichen umfasst.
- 31Composition selon la revendication 30, dans laquelle un radical de liaison est une petite molécule pouvant être capturée, comme la biotine capturée par l'avidine ou la streptavidine, ou la fluorescéine pouvant être capturée par un anticorps anti-fluorescéine. The composition of claim 30, wherein a binding moiety is a small molecule able to be captured, such as biotin captured by avidin or streptavidin, or fluorescein able to be captured by an anti-fluorescein antibody. Zusammensetzung nach Anspruch 30, wobei ein Bindungs-Anteil eine niedermolekulare Verbindung ist, die gebunden werden kann, so wie Biotin gebunden durch Avidin oder Streptavidin, oder Fluorescein durch einen Anti-Fluorescein-Antikörper gebunden werden kann.
- 32Composition selon l'une quelconque des revendications 21 à 31, dans laquelle les régions de séquence flanquantes pour chaque oligonucléotide sont identiques. The composition of any one of claims 21 to 31, wherein the flanking sequence regions for each oligonucleotide are the same. Zusammensetzung nach einem der Ansprüche 21 bis 31, wobei die flankierenden Sequenzbereiche jedes Oligonukleotids gleich sind.
- 33Composition selon l'une quelconque des revendications 21 à 32, dans laquelle les régions de séquence flanquantes sont conçues pour présenter une homologie minimale avec les séquences oligonucléotidiques. The composition of anyone of claims 21 to 32, wherein the flanking sequence regions are designed to have minimal homology to the oligonucleotide sequences. Zusammensetzung nach einem der Ansprüche 21 bis 32, wobei die flankierenden Sequenzbereiche so aufgebaut sind, dass sie minimale Homologie zu den Oligonukleotidsequenzen aufweisen.
Independent claims33
58 paragraphs, as filed
Technical Field of the Invention
The present invention relates to the embodiments as characterized in the claims. It provides a process for in <i>vitro</i> synthesis and assembly of long, gene-length polynucleotides based upon assembly of multiple shorter oligonucleotides synthesized <i>in situ</i> on a microarray platform. Specifically, the present invention provides a process for <i>in situ</i> synthesis of oligonucleotide sequence fragments on a solid phase microarray platform and subsequent, "on chip" assembly of larger polynucleotides composed of a plurality of smaller oligonucleotide sequence fragments.
Background of the Invention
In the world of microarrays, biological molecules (<i>e</i>.<i>g</i>., oligonucleotides, polypeptides and the like) are placed onto surfaces at defined locations for potential binding with target samples of nucleotides or receptors. Microarrays are miniaturized arrays of biomolecules available or being developed on a variety of platforms. Much of the initial focus for these microarrays have been in genomics with an emphasis of single nucleotide polymorphisms (SNPs) and genomic DNA detection/validation, functional genomics and proteomics (<nplcit id="ncit0001" npl-type="s"><text>Wilgenbus and Lichter, J. Mol. Med. 77:761, 1999</text></nplcit>; <nplcit id="ncit0002" npl-type="s"><text>Ashfari et al., Cancer Res. 59:4759, 1999</text></nplcit>; <nplcit id="ncit0003" npl-type="s"><text>Kurian et al., J. Pathol. 187:267, 1999</text></nplcit>; <nplcit id="ncit0004" npl-type="s"><text>Hacia, Nature Genetics 21 suppl.:42, 1999</text></nplcit>; <nplcit id="ncit0005" npl-type="s"><text>Hacia et al., Mol. Psychiatry 3:483, 1998</text></nplcit>; and <nplcit id="ncit0006" npl-type="s"><text>Johnson, Curr. Biol. 26:R171, 1998</text></nplcit>).
There are, in general, three categories of microarrays (also called "biochips" and "DNA Arrays" and "Gene Chips" but this descriptive name has been attempted to be a trademark) having oligonucleotide content. Most often, the oligonucleotide microarrays have a solid surface, usually silicon-based and most often a glass microscopic slide. Oligonucleotide microarrays are often made by different techniques, including (1) "spotting" by depositing single nucleotides for <i>in situ</i> synthesis or completed oligonucleotides by physical means (ink jet printing and the like), (2) photolithographic techniques for <i>in situ</i> oligonucleotide synthesis (see, for example, Fodor U.S. Patent '934 and the additional patents that claim priority from this priority document, (3) electrochemical <i>in situ</i> synthesis based upon pH based removal of blocking chemical functional groups (see, for example, <patcit id="pcit0001" dnum="US6092302A"><text>Montgomery U.S. Patent 6,092,302</text></patcit> the disclosure of which is incorporated by reference herein and Southern <patcit id="pcit0002" dnum="US5667667A"><text>U.S. Patent 5,667,667</text></patcit>), and (4) electric field attraction/repulsion of fully-formed oligonucleotides (see, for example, <patcit id="pcit0003" dnum="US5653939A"><text>Hollis et al., U.S. Patent 5,653,939</text></patcit> and its duplicate <patcit id="pcit0004" dnum="US5929208A"><text>Heller U.S. Patent 5,929,208</text></patcit>). Only the first three basic techniques can form oligonucleotides <i>in situ</i> e.g., building each oligonucleotide, nucleotide-by-nucleotide, on the microarray surface without placing or attracting fully formed oligonucleotides.
With regard to placing fully formed oligonucleotides at specific locations, various micro-spotting techniques using computer-controlled plotters or even ink-jet printers have been developed to spot oligonucleotides at defined locations. One technique loads glass fibers having multiple capillaries drilled through them with different oligonucleotides loaded into each capillary tube. Microarray chips, often simply glass microscope slides, are then stamped out much like a rubber stamp on each sheet of paper of glass slide. It is also possible to use "spotting" techniques to build oligonucleotides <i>in situ.</i> Essentially, this involves "spotting" relevant single nucleotides at the exact location or region on a slide (preferably a glass slide) where a particular sequence of oligonucleotide is to be built Therefore, irrespective of whether or not fully formed oligonucleotides or single nucleotides are added for <i>in situ</i> synthesis, spotting techniques involve the precise placement of materials at specific sites or regions using automated techniques.
Another technique involves a photolithography process involving photomasks to build oligonucleotides <i>in situ,</i> base-by-base, by providing a series of precise photomasks coordinated with single nucleotide bases having light-cleavable blocking groups. This technique is described in <patcit id="pcit0005" dnum="US5445934A"><text>Fodor et al., U.S. Patent 5,445,934</text></patcit> and its various progeny patents. Essentially, this technique provides for "solid-phase chemistry, photolabile protecting groups, and photolithography ... to achieve light-directed spatially-addressable parallel chemical synthesis."
The electrochemistry platform (<patcit id="pcit0006" dnum="US6092302A"><text>Montgomery U.S. Patent 6,092,302</text></patcit>, the disclosure of which is incorporated by reference herein) provides a microarray based upon a semiconductor chip platform having a plurality of microelectrodes. This chip design uses complementary Metal Oxide Semiconductor (CMOS) technology to create high-density arrays of microelectrodes with parallel addressing for selecting and controlling individual microelectrodes within the array. The electrodes turned on with current flow generate electrochemical reagents (particularly acidic protons) to alter the pH in a small "virtual flask" region or volume adjacent to the electrode. The microarray is coated with a porous matrix for a reaction layer material. Thickness and porosity of the material is carefully controlled and biomolecules are synthesized within volumes of the porous matrix whose pH has been altered through controlled diffusion of protons generated electrochemically and whose diffusion is limited by diffusion coefficients and the buffering capacities of solutions. However, in order to function properly, the microarray biochips using electrochemistry means for <i>in situ</i> synthesis has to alternate anodes and cathodes in the array in order to generated needed protons (acids) at the anodes so that the protons and other acidic electrochemically generated acidic reagents will cause an acid pH shift and remove a blocking group from a growing oligomer.
Gene Assembly
The preparation of arbitrary polynucleotide sequences is useful in a "post-genomic" era because it provides any desirable gene oligonucleotide or its fragment, or even whole genome material of plasmids, phages and viruses. Such polynucleotides are long, such as in excess of 1000 bases in length. <i>In vitro</i> synthesis of oligonucleotides (given even the best yield conditions of phosphoramidite chemistry) would not be feasible because each base addition reaction is less than 100% yield. Therefore, researchers desiring to obtain long polynucleotides of gene length or longer had to turn to nature or gene isolation techniques to obtain polynucleotides of such length. For the purposes of this patent application, the term "polynucleotide" shall be used to refer to nucleic acids (either single stranded or double stranded) that are sufficiently long so as to be practically not feasible to make <i>in vitro</i> through single base addition. In view of the exponential drop-off in yields from nucleic acid synthesis chemistries, such as phosphoramidite chemistry, such polynucleotides generally have greater than 100 bases and often greater than 200 bases in length. It should be noted that many commercially useful gene cDNA's often have lengths in excess of 1000 bases.
Moreover, the term "oligonucleotides" or shorter term "oligos" shall be used to refer to shorter length single stranded or double stranded nucleic acids capable of <i>in vitro</i> synthesis and generally shorter than 150 bases in length. While it is theoretically possible to synthesize polynucleotides through single base addition, the yield losses make it a practical impossibility beyond 150 bases and certainly longer than 250 bases.
However, knowledge of the precise structure of the genetic material is often not sufficient to obtain this material from natural sources. Mature cDNA, which is a copy of an mRNA molecule, can be obtained if the starting material contains the desired mRNA. However, it is not always known if the particular mRNA is present in a sample or if the amount of the mRNA might be too low to obtain the corresponding cDNA without significant difficulties. Also, different levels of homology or splice variants may interfere with obtaining one particular species of mRNA. On the other hand many genomic materials might be not appropriate to prepare mature gene (cDNA) due to exon-intron structure of genes in many different genomes.
In addition, there is a need in the art for polynucleotides not existing in nature to improve genomic research performance. In general, the ability to obtain a polynucleotide of any desired sequence just knowing the primary structure, for a reasonable price in a short period of time will significantly move forward several fields of biomedical research and clinical practice.
Assembly of long arbitrary polynucleotides from oligonucleotides synthesized by organic synthesis and individually purified has other problems. The assembly can be performed using PCR or ligation methods. The synthesis and purification of many different oligonucleotides by conventional methods (even using multi-channel synthesizers) are laborious and expensive procedures. The current price of assembled polynucleotide on the market is about $12-25 per base pair, which can be considerable for assembling larger polynucleotides. Very often the amount of conventionally synthesized oligonucleotides would be excessive. This also contributes to the cost of the final product.
Therefore, there is a need in the art to provide cost-effective polynucleotides by procedures that are not as cumbersome and labor-intensive as present methods to be able to provide polynucleotides at costs below $1 per base or 1-20 times less than current methods. The present invention was made to address this need.
Summary of the Invention
The present invention provides a process for the assembly of oligonucleotides synthesized on microarrays into a polynucleotide sequence as defined in the claims. The desired target polynucleotide sequence is dissected into pieces of overlapping oligonucleotides. In a first aspect described herein these oligonucleotides are synthesized <i>in situ,</i> in parallel on a microarray chip in a non-cleavable form. A primer extension process assembles the target polynucleotides. The primer extension process uses starting primers that are specific for the appropriate sequences. The last step is PCR amplification of the final polynucleotide product. Preferably, the polynucleotide product is a cDNA suitable for transcription purposes and further comprising a promoter sequence for transcription.
Described is a process for assembling a polynucleotide from a plurality of oligonucleotides comprising: <ol id="ol0001" compact="compact" ol-style=""><li>(a) synthesizing or spotting a plurality of oligonucleotide sequences on a microarray device or bead device having a solid or porous surface, wherein a first oligonucleotide is oligo 1 and a second oligonucleotide is oligo 2 and so on, wherein the plurality of oligonucleotide sequences are attached to the solid or porous surface, and wherein the first oligonucleotide sequence has an overlapping sequence region of from about 10 to about 50 bases that is the same or substantially the same as a region of a second oligonucleotide sequence, and wherein the second oligonucleotide sequence has an overlapping region with a third oligonucleotide sequence and so on;</li><li>(b) forming complementary oligo 1 by extending primer 1, wherein primer 1 is complementary to oligo 1;</li><li>(c) disassociating complementary oligo 1 from oligo 1 and annealing complementary oligo 1 to both oligo 1 and to the overlapping region of oligo 2, wherein the annealing of complementary oligo 1 to oligo 2 serves as a primer for extension for forming complementary oligo 1+2;</li><li>(d) repeating the primer extension cycles of step (c) until a full-length polynucleotide is produced; and</li><li>(e) amplifying the assembled complementary full length polynucleotide to produce a full length polynucleotide in desired quantities.</li></ol>
Preferably, the solid or porous surface is in the form of a microarray device. Most preferably, the microarray device is a semiconductor device having a plurality of electrodes for synthesizing oligonucleotides <i>in situ</i> using electrochemical means to couple and decouple nucleotide bases. Preferably, the primer extension reaction is conducted through a sequential process of melting, annealing and then extension. Most preferably, the primer extension reaction is conducted in a PCR amplification device using the microarray having the plurality of oligonucleotides bound thereto.
The present invention further provides a process for assembling a polynucleotide from a plurality of oligonucleotides as defined in the claims. Described is a process for assembling a polynucleotide from a plurality of oligonucleotides comprising: <ol id="ol0002" compact="compact" ol-style=""><li>(a) synthesizing <i>in situ</i> or spotting a plurality of oligonucleotide sequences on a microarray device or bead device each having a solid or porous surface, wherein the plurality of oligonucleotide sequences are attached to the solid or porous surface, and wherein each oligonucleotide sequence has an overlapping region corresponding to a next oligonucleotide sequence within the sequence and further comprises two flanking sequences, one at the 3' end and the other at the 5' end of each oligonucleotide, wherein each flanking sequence is from about 7 to about 50 bases and comprising a primer region and a sequence segment having a restriction enzyme cleavable site;</li><li>(b) amplifying each oligonucleotide using the primer regions of the flanking sequence to form double stranded (ds) oligonucleotides;</li><li>(c) cleaving the oligonucleotide sequences at the restriction enzyme cleavable site; and</li><li>(d) assembling the cleaved oligonucleotide sequences through the overlapping regions to form a full length polynucleotide.</li></ol>
Preferably, the flanking sequence is from about 10 to about 20 bases in length. Preferably, the restriction enzyme cleavable site is a class II endonuclease restriction site sequence capable of being cleaved by its corresponding class II restriction endonuclease enzyme. Most preferably, the restriction endonuclease class II site corresponds to restriction sites for a restriction endonuclease class II enzyme selected from the group consisting of Mly I, BspM I, Bae I, BsaX I, Bsr I, Bmr I, Btr I, Bts I, Fok I, and combinations thereof. Preferably, the flanking sequence further comprises a binding moiety used to purify cleaved oligonucleotides from flanking sequences. Preferably, the process further comprises the step of labeling the flanking sequence during the amplification step (b) using primer sequences labeled with binding moieties. Most preferably, a binding moiety is a small molecule able to be captured, such as biotin captured by avidin or streptavidin, or fluorescein able to be captured by an anti-fluorescein antibody.
Further described is a process for assembling a polynucleotide from a plurality of oligonucleotides comprising: <ol id="ol0003" compact="compact" ol-style=""><li>(a) synthesizing <i>in situ</i> or spotting a plurality of oligonucleotide sequences on a microarray device or bead device each having a solid or porous surface, wherein the plurality of oligonucleotide sequences are attached to the solid or porous surface, and wherein each oligonucleotide sequence has an overlapping region corresponding to a next oligonucleotide sequence within the sequence, and further comprises a sequence segment having a cleavable linker moiety;</li><li>(b) cleaving the oligonucleotide sequences at the cleavable linker site to cleave each oligonucleotide complex from the microarray or bead solid surface to form a soluble mixture of oligonucleotides, each having an overlapping sequence; and</li><li>(c) assembling the oligonucleotide sequences through the overlapping regions to form a full length polynucleotide.</li></ol>
Preferably, the cleavable linker is a chemical composition having a succinate moiety bound to a nucleotide moiety such that cleavage produces a 3'hydroxy nucleotide. Most preferably, the cleavable linker is selected from the group consisting of 5'-dimethoxytrityl-thymidine-3'succinate, 4-N-benzoyl-5'-dimethoxytrityl-deoxycytidine-3'-succinate, 1-N-benzoyl-5'-dimethoxytrityl-deoxyadenosine-3'-succinate, 2-N-isobutyryl-5'-dimethoxytrityl-deoxyguanosone-3'-succinate, and combinations thereof.
Further described is a process for assembling a polynucleotide from a plurality of oligonucleotides comprising: <ol id="ol0004" compact="compact" ol-style=""><li>(a) synthesizing <i>in situ</i> or spotting a plurality of oligonucleotide sequences on a microarray device or bead device each having a solid or porous surface, wherein the plurality of oligonucleotide sequences are attached to the solid or porous surface, and wherein each oligonucleotide sequence has a flanking region at an end attached to the solid or porous surface, and a specific region designed by dissecting the polynucleotide sequence into a plurality of overlapping oligonucleotides, wherein a first overlapping sequence on a first oligonucleotide corresponds to a second overlapping sequence of a second oligonucleotide, and wherein the flanking sequence comprises a sequence segment having a restriction endonuclease (RE) recognition sequence capable of being cleaved by a corresponding RE enzyme;</li><li>(b) hybridizing an oligonucleotide sequence complementary to the flanking region to form a double stranded sequence capable of interacting with the corresponding RE enzyme;</li><li>(c) digesting the plurality of oligonucleotides to cleave them from the microarray device or beads into a solution; and</li><li>(d) assembling the oligonucleotide mixture through the overlapping regions to form a full length polynucleotide.</li></ol>
Preferably, the flanking sequence is from about 10 to about 20 bases in length. Preferably, the restriction enzyme cleavable site is a class II endonuclease restriction site sequence capable of being cleaved by its corresponding class II restriction endonuclease enzyme. Most preferably, the restriction endonuclease class II site corresponds to restriction sites for a restriction endonuclease class II enzyme selected from the group consisting of Mly I, BspM I, Bae I, BsaX I, Bsr I, Bmr I, Btr I, Bts I, Fok I, and combinations thereof. Preferably, the process further comprises a final step of amplifying the polynucleotide sequence using primers located at both ends of the polynucleotide.
Further described is a process for creating a mixture of oligonucleotide sequences in solution comprising: <ol id="ol0005" compact="compact" ol-style=""><li>(a) synthesizing <i>in situ</i> or spotting a plurality of oligonucleotide sequences on a microarray device or bead device each having a solid or porous surface, wherein the plurality of oligonucleotide sequences are attached to the solid or porous surface, and wherein each oligonucleotide sequence further comprises two flanking sequences, one at the 3' end and the other at the 5' end of each oligonucleotide, wherein each flanking sequence is from about 7 to about 50 bases and comprising a primer region and a sequence segment having a restriction enzyme cleavable site;</li><li>(b) amplifying each oligonucleotide using the primer regions of the flanking sequence to form a double stranded (ds) oligonucleotides; and</li><li>(c) cleaving the double stranded oligonucleotide sequences at the restriction enzyme cleavable site.</li></ol>
Preferably, the flanking sequence is from about 10 to about 20 bases in length. Preferably, the restriction enzyme cleavable site is a class II endonuclease restriction site sequence capable of being cleaved by its corresponding class II restriction endonuclease enzyme. Most preferably, the restriction endonuclease class n site corresponds to restriction sites for a restriction endonuclease class II enzyme selected from the group consisting of Mly I, BspM I, Bae I, BsaX I, Bsr I, Bmr I, Btr I, Bts I, Fok I, and combinations thereof. Preferably, the flanking sequence further comprises a binding moiety used to purify cleaved oligonucleotides from flanking sequences. Preferably, the process further comprises the step of labeling the flanking sequence during the amplification step (b) using primer sequences labeled with binding moieties. Most preferably, a binding moiety is a small molecule able to be captured, such as biotin captured by avidin or streptavidin, or fluorescein able to be captured by an anti-fluorescein antibody.
Further described is a process for creating a mixture of oligonucleotide sequences in solution comprising: <ol id="ol0006" compact="compact" ol-style=""><li>(a) synthesizing <i>in situ</i> or spotting a plurality of oligonucleotide sequences on a microarray device or bead device each having a solid or porous surface, wherein the plurality of oligonucleotide sequences are attached to the solid or porous surface, and wherein each oligonucleotide sequence has a sequence segment having a cleavable linker moiety;</li><li>(b) cleaving the oligonucleotide sequences at the cleavable linker site to cleave each oligonucleotide sequence from the microarray or bead solid surface to form a soluble mixture of oligonucleotides.</li></ol>
Preferably, the cleavable linker is a chemical composition having a succinate moiety bound to a nucleotide moiety such that cleavage produces a 3'hydroxy nucleotide. Most preferably, the cleavable linker is selected from the group consisting of 5'-dimethoxytrityl-thymidine-3'succinate, 4-N-benzoyl-5'-dimethoxytrityl-deoxycytidine-3'-succinate, 1-N-benzoyl-5'-dimethoxytrityl-deoxyadenosine-3'-succinate, 2-N-isobutyryl-5'-dimethoxytrityl-deoxyguanosine-3'-succinate, and combinations thereof.
Further described is a process for creating a mixture of oligonucleotide sequences in solution comprising: <ol id="ol0007" compact="compact" ol-style=""><li>(a) synthesizing <i>in situ</i> or spotting a plurality of oligonucleotide sequences on a microarray device or bead device each having a solid or porous surface, wherein the plurality of oligonucleotide sequences are attached to the solid or porous surface, and wherein each oligonucleotide sequence has a flanking region at an end attached to the solid or porous surface, and a specific region, wherein the flanking sequence comprises a sequence segment having a restriction endonuclease (RE) recognition sequence capable of being cleaved by a corresponding RE enzyme;</li><li>(b) hybridizing an oligonucleotide sequence complementary to the flanking region to form a double stranded sequence capable of interacting with the corresponding RE enzyme;</li><li>(c) digesting the plurality of oligonucleotides to cleave them from the microarray device or beads into a solution.</li></ol>
Preferably, the flanking sequence is from about 10 to about 20 bases in length. Preferably, the restriction enzyme cleavable site is a class II endonuclease restriction site sequence capable of being cleaved by its corresponding class II restriction endonuclease enzyme. Most preferably, the restriction endonuclease class II site corresponds to restriction sites for a restriction endonuclease class II enzyme selected from the group consisting of Mly I, BspM I, Bae I, BsaX I, Bsr I, Bmr I, Btr I, Bts I, Fok I, and combinations thereof.
Brief Description of the Drawings
<ul id="ul0001" list-style="none" compact="compact"><li><figref idref="f0001 f0002 f0003">Figure 1</figref> shows a schematic of gene assembly on a microarray device surface or porous matrix. In <figref idref="f0001">Figure 1A</figref>, the target gene sequence is dissected into number of overlapping oligonucleotides. The 3' and 5' are the ends of the shown strand. <figref idref="f0001">Figure 1A</figref> also shows, relative to the target sequence, primer Pr1; extension product of primer Pr1, which is complementary to oligonucleotide 1; and extension product of complementary oligonucleotide 1, which is complementary to oligonucleotides 1+2. <figref idref="f0002">Figure 1B</figref> illustrates one embodiment of the initial steps of an assembly process. In step 1 of assembly, Primer Pr1 is annealed to oligonucleotide 1 and extended by appropriate polymerase enzyme into product complementary to oligonucleotide 1. The second step is melting, re-annealing and extension (<i>i.e.,</i> amplification) to lead to production of larger amount of Pr1 extension product (complementary oligonucleotide 1), re-association of the complementary oligonucleotide 1 with oligonucleotide 1, and to annealing of the complementary oligonucleotide 1 with oligonucleotide 2 followed by its extension into product complementary to oligonucleotides 1+2. <figref idref="f0003">Figure 1C</figref> shows a continuation of the assembly process from <figref idref="f0002">Figure 1B</figref>. Specifically, step 3 of the process (i.e., melting, re-annealing and extension) leads to the same products as step 2 plus a product complementary to oligonucleotides 1+2+3. Cycles (steps) are repeated until a full-length complementary polynucleotide is formed. The final step is preparation of the final target polynucleotide molecule in desirable amounts by amplification (i.e., PCR) using two primers complementary to the ends of this molecule (PrX and PrY).</li><li><figref idref="f0004">Figure 2</figref> shows a second embodiment of the inventive gene assembly process using oligonucleotides synthesized <i>in situ</i> onto a microarray device, each having a flanking sequence region containing a restriction enzyme cleavage site, followed by a PCR amplification step and followed by a REII restriction enzyme cleavage step.</li><li><figref idref="f0005">Figure 3</figref> shows a schematic for gene assembly using oligos synthesized and then cleaved from a microarray device. Specifically, in the upper panel marked "A", oligonucleotide sequences are connected to the microarray device through a cleavable linker (CL) moiety. An example of a cleavable linker moiety is provided in <figref idref="f0006">Figure 3A</figref>. The cleavable linkers are molecules that can withstand the oligonucleotide synthesis process (<i>i.e.,</i> phosphoramidite chemistry) and then can be cleaved to release oligonucleotide fragments. Chemical cleavage at cleavable linker CL recreates usual 3' end of specific oligos 1 through N. These oligonucleotides are released into a mixture. The mixture of oligonucleotides is subsequently assembled into full-length polynucleotide molecules. In the lower panel marked "B" of <figref idref="f0005">Figure 3</figref>, oligonucleotide sequences are connected to the microarray device through additional flanking sequence containing a restriction enzyme (RE) sequence site. Another oligonucleotide sequence, complementary to the flanking sequence region, is hybridized to the oligonucleotides on the microarray device. This recreates a "ds" or double-stranded oligonucleotide structure, each having a RE sequence recognition region in the flanking sequence region. Digestion of this ds oligonucleotides with the corresponding RE enzymes at the RE recognition sites in the flanking sequence regions releases the specific oligonucleotides 1 through N. When assembled, oligonucleotide sequences 1 through N form a full-length polynucleotide molecule.</li><li><figref idref="f0007">Figure 4</figref> shows the assembly of a polynucleotide from three oligonucleotide fragments wherein each oligonucleotide fragment was synthesized <i>in situ</i> on a microarray device. The fully assembled polynucleotide was 172 mers in length, a length not practically achievable by <i>in situ</i> synthesis. The first embodiment inventive process was used in this example.</li><li><figref idref="f0008">Figure 5</figref> shows the oligonucleotide sequences used to assemble the 172-mer polynucleotide of <figref idref="f0007">Figure 4</figref>. The sequences of primers X and Z are underlined. The <i>Hpa</i> II restriction site is indicated by italic underlined letters.</li><li><figref idref="f0009">Figure 6</figref> shows a scheme for preparing the sequences of flanking regions and primers used for preparation of specific oligonucleotide for assembly using the REII enzyme <i>MlyI.</i> Primer 1 is complementary to the oligonucleotide strand on a microarray device and contains a Biotin-TEG (triethylene glycol) moiety. Primer 2 is the same strand as the oligonucleotide strand on microarray device and contains Biotin-TEG moiety. Any sequence between the primers can be used and is just designated by a string of N's.</li><li><figref idref="f0010">Figure 7</figref> shows the results of PCR and <i>Mly</i>I digestion of an oligonucleotide sequence as described in <figref idref="f0009">Figure 6</figref>. The clean bands show the ability to obtain pure oligonucleotides using the second embodiment of the inventive process to cleave off oligonucleotide sequences using appropriate restriction enzymes.</li><li>Figure 8 shows the sequences from nine oligonucleotides fragments (consecutively numbered 1-9) used to assemble a 290 bp polynucleotide. The flanking regions are shown in bold and underlined. The process used for polynucleotide assembly was the second embodiment. The overlapping regions further contained a cleavable site as the <i>Mly</i>I recognition site for the <i>Mly</i>I class II restriction endonuclease.</li><li><figref idref="f0012">Figure 9</figref> shows a schematic in the top panel for assembling a polynucleotide from nine oligonucleotides. Nine oligonucleotide sequences, shown in Figure 8, were amplified by PCR using primers 1 and 2 (as described in <figref idref="f0009">Figure 6</figref>) into ds DNA fragments containing the same flanking regions and specific overlapping sequences, digested with <i>Mly</i>I enzyme to remove flanking sequences, and used for assembly of 290 bp DNA fragment. The columns in the gel shown are M - markers, 1 - negative control, assembly without primers FP1 and FP2, 2 - negative control, assembly without specific oligos, 3 - assembly of 290 bp fragment from specific oligos plus amplification with FP1 and FP2 primers. The band in column 3 shows a high efficiency of the inventive polynucleotide assembly process.</li><li><figref idref="f0013 f0014">Figure 10</figref> shows a sequence of an assembled polynucleotide in Example 4, broken down into its component oligonucleotides.</li></ul>
Detailed Description of the Invention
The present invention describes the preparation of a polynucleotide sequence (also called "gene") using assembly of overlapping shorter oligonucleotides synthesized or spotted on microarray devices or on solid surface bead devices as defined in the claims. The shorter oligonucleotides include sequence regions having overlapping regions to assist in assembly into the sequence of the desired polynucleotide. By overlapping regions, it is referred to sequence regions at either a 3' end or a 5' end of a first oligonucleotide sequence that is the same as part of the second oligonucleotide and has the same direction (relative to 3' to 5' or 5' to 3' direction), and will hybridize to the 5' end or 3' end of a second oligonucleotide sequence or its complementary sequence (second embodiment), and a second oligonucleotide sequence to a third oligonucleotide sequence, and so on. In order to design or develop a microarray device or bead device to be used for polynucleotide assembly, the polynucleotide sequence is divided (or dissected) into a number of overlapping oligonucleotides segments, each with lengths preferably from 20 to 1000 bases, and most preferably from 20 to 200 bases (<figref idref="f0001">Figure 1A</figref>). The overlap between oligonucleotide segments is 5 or more bases, preferably 15 - 25 bases to that proper hybridization of first to second, second to third, third to fourth and so on occurs. These oligonucleotides (or oligos) are preferably synthesized on a microarray device using any available method (i.e., electrochemical <i>in situ</i> synthesis, photolithography <i>in situ</i> synthesis, ink-jet printing, spotting, etc.). The direction of synthesis relative to the microarray device surface or porous matrix covering a microarray device can be from 3' to 5' or from 5' to 3'. Preferably, <i>in situ</i> synthesis is done in the 3' to 5' direction. In the first aspect described herein the gene/polynucleotide assembly process uses oligonucleotides immobilized on a microarray device. The microarray device itself or a porous reaction layer with immobilized oligonucleotides can be used for the inventive gene/polynucleotide assembly process.
With regard to <figref idref="f0002">Figure 1B</figref>, the process comprises several repeated steps of melting, annealing and extension (<figref idref="f0002">Figure 1B</figref>), which can be performed in any thermal cycler instrument. The cycling program is similar to the programs used for PCR. At the first step of gene/polynucleotide assembly, primer Pr1 is added and anneals to oligonucleotide 1 on the microarray device and then extends by appropriate polymerase enzyme into product complementary to oligonucleotide 1 (called complementary oligonucleotide 1). At the second step of the process the product complementary to oligonucleotide 1 is melted from oligonucleotide 1, primer Pr1 is annealed again to the oligonucleotide 1 as well as product complementary to oligonucleotide 1 is partially re-anneals to oligonucleotide 1 and partially anneals to oligonucleotide 2 due to an overlapping sequence region between oligonucleotide 1 and oligonucleotide 2. Extension of Pr1 leads to production of an additional amount of Pr1 extension product (complementary oligonucleotide 1). The annealing of the complementary oligonucleotide 1 to oligonucleotide 2 followed by its extension leads to product complementary to oligonucleotides 1+2 (called complementary oligonucleotides 1+2). Similarly, at step 3 of the process melting, re-annealing and extension lead to the same products as at step 2 plus a product complementary to oligonucleotides 1+2+3. These cycles of melting, annealing and extension are repeated until full-length polynucleotide is formed. The number of cycles should be equal or more than the number of oligos on microarray device. After formation, the final target polynucleotide molecule is amplified by a PCR process with two primers complementary to the ends of this molecule to the desirable amounts.
In a second embodiment, a plurality of oligonucleotides that together comprise (with overlapping regions) the target polynucleotide sequence are synthesized on a microarray device (or can be synthesized on beads as a solid substrate), wherein each oligonucleotide sequence further comprises flanking short sequence regions, wherein each flanking sequence region comprises one or a plurality of sequence sites for restriction endonuclease, preferably endonuclease class II (ERII) enzymes. Each oligonucleotide is amplified by PCR using appropriate oligonucleotide primers to the flanking sequence regions to form a preparation of a plurality of oligonucleotides. The preparation of oligonucleotides is treated then with appropriate REII enzyme(s) (specific to the restriction sequences in the flanking sequence regions) to produce flanking fragments and overlapping oligonucleotides that, together comprise the desired polynucleotide sequence. Flanking fragments and PCR primers are removed from the mixture, if desired, by different methods based on size or specific labeling of the PCR primers. The oligonucleotides resembling the desired target polynucleotide then assembled into the final target polynucleotide molecule using repetition of the primer extension method and PCR amplification of the final molecule.
Specifically, in the second embodiment, the assembly process initially uses oligonucleotides immobilized on a microarray device or beads, via immobilization techniques, such as spotting or ink-jet printing or by direct <i>in situ</i> synthesis of the microarray device using various techniques, such as photolithography or electrochemical synthesis. The overlapping oligonucleotide sequences are designed to have an overlapping region and one or two flanking sequence regions comprising a restriction class II recognition site (Figure 2A). The assembled oligonucleotides together comprise the target polynucleotide sequence.
The length of flanking sequences is at least the length of REII recognition site. The flanking sequences are designed to have minimal homology to the specific oligonucleotide sequences regions on the microarray device. The flanking sequences can be the same for each oligonucleotide fragment, or be two or more different sequences. For example, a pair of appropriate primers, called Pr1 and Pr2, was designed to amplify each oligonucleotide on a microarray device (<figref idref="f0004">Figure 2</figref>) by PCR. Each primer may contain a binding moiety, such as biotin, that does not affect their ability to serve as primers. After PCR amplification the amplified ds copy of each oligonucleotide was present in the reaction mixture. This reaction mixture was treated with the appropriate REII enzyme or enzymes specific for the restriction sites in the flanking sequence regions. The digestion sites for REII were designed, after cleavage, to produce the desired specific oligonucleotide sequence fragments that, when assembled will form the target polynucleotide sequence. As a result of digestion a mixture of specific double stranded (ds) overlapping oligonucleotide sequence fragments resembling the structure of desired target polynucleotide, and ds flanking sequences were formed. If desired, these flanking sequences and residual primers are removed from the mixture using specific absorption through specific moieties introduced in the primers (such as, for example, by absorption on avidin beads for biotin-labeled primers), or based on the size difference of the specific oligos and flanking sequences and primers. The mixture of specific oligonucleotide sequences resembling target gene sequence is used to assemble the final target polynucleotide molecule using repeated cycles of melting, self-annealing and polymerase extension followed by PCR amplification of the final target polynucleotide molecule with appropriate PCR primers designed to amplify. This final PCR amplification step is routinely done in the art and described in, for example,<nplcit id="ncit0007" npl-type="s"><text> Mullis et al., Cold Spring Harb. Symp. Quant. Biol. 51 Pt 1:263-73, 1986</text></nplcit>; and <nplcit id="ncit0008" npl-type="s"><text>Saiki et al., Science 239:487-91, 1988</text></nplcit>. PCR amplification steps generally follow manufacturer's instructions. Briefly, a process for amplifying any target nucleic acid sequence contained in a nucleic acid or mixture thereof comprises treating separate complementary strands of the nucleic acid with a molar excess of two oligonucleotide primers and extending the primers with a thermostable enzyme to form complementary primer extension products which act as templates for synthesizing the desired nucleic acid sequence. The amplified sequence can be readily detected. The steps of the reaction can be repeated as often as desired and involve temperature cycling to effect hybridization, promotion of activity of the enzyme, and denaturation of the hybrids formed.
In another embodiment for the assembly step, oligonucleotide sequences that together comprise the target polynucleotide molecule, are assembled using a ligase chain reaction as described in <nplcit id="ncit0009" npl-type="s"><text>Au et al., Biochem. Biophys. Res. Commun. 248:200-3, 1998</text></nplcit>. Briefly, short oligonucleotides are joined through ligase chain reaction (LCR) in high stringency conditions to make "unit fragments" (Fifty microliters of reaction mixture contained 2.2 mM of each oligo, 8 units Pfu DNA ligase (Stratagene La Jolla, CA) and reaction buffer provided with the enzyme. LCR was conducted as follows: 95 °C 1 min; 55 °C 1.5 min, 70 °C 1.5 min, 95 °C 30 sec for 15 cycles; 55 °C 2 min; 70 °C 2 min, which are then fused to form a full-length gene sequence by polymerase chain reaction.
In another embodiment the ds oligonucleotide sequences are assembled after preparation by chain ligation cloning as described in <nplcit id="ncit0010" npl-type="s"><text>Pachuk et al., Gene 243:19-25, 2000</text></nplcit>; and <patcit id="pcit0007" dnum="US6143527A"><text>U.S. Patent 6,143,527</text></patcit> (the disclosure of which is incorporated by reference herein). Briefly, chain reaction cloning allows ligation of double-stranded DNA molecules by DNA ligases and bridging oligonucleotides. Double-stranded nucleic acid molecules are denatured into single-stranded molecules. The ends of the molecules are brought together by hybridization to a template. The template ensures that the two single-stranded nucleic acid molecules are aligned correctly. DNA ligase joins the two nucleic acid molecules into a single, larger, composite nucleic acid molecule. The nucleic acid molecules are subsequently denatured so that the composite molecule formed by the ligated nucleic acid molecules and the template cease to hybridize to each. Each composite molecule then serves as a template for orienting unligated, single-stranded nucleic acid molecules. After several cycles, composite nucleic acid molecules are generated from smaller nucleic acid molecules. A number of applications are disclosed for chain reaction cloning including site-specific ligation of DNA fragments generated by restriction enzyme digestion, DNAse digestion, chemical cleavage, enzymatic or chemical synthesis, and PCR amplification.
With regard to the second embodiment of the described process (illustrated in <figref idref="f0004">Figure 2</figref>), a target polynucleotide gene sequence (either strand) is divided into number of overlapping oligonucleotide sequences by hand or with a software program, as shown in <figref idref="f0001 f0002 f0003">Figure 1</figref>. These oligonucleotide sequences, plus flanking sequences A and B (having one or a plurality of restriction enzyme sites in the flanking region sequence), are synthesized <i>(in situ)</i> on a microarray device, or on a bead said surface using standard <i>in situ</i> synthesis techniques, or spotted (pre-synthesized) onto a microarray device using standard oligonucleotide synthesis procedures with standard spotting (<i>e.g</i>., computer-aided or ink jet printing) techniques. The oligonucleotide sequences are amplified, preferably using a PCR process with a pair of primers (Prl and Pr2). The primers are optionally labeled with specific binding moieties, such as biotin. The resulting amplified mixture of different amplified oligonucleotide sequences are double stranded (ds). The mixture of ds oligonucleotide sequences are treated with an appropriate restriction enzyme, such as an REII restriction enzyme (<i>e</i>.<i>g</i>., Mly I enzyme), to produce mixture of different double stranded (ds) overlapping oligonucleotide sequences that can be assembled into the structure of the desired polynucleotide (gene) and ds flanking sequences. Optionally, the flanking sequences and residual primers are removed from the ds sequences oligonucleotide sequences mixture, preferably by a process of specific absorption using specific binding moieties introduced in the primers (<i>e.g.</i>, biotin), or by a process of size fractionation based on the size differences of the specific oligonucleotide sequences and flanking sequences. The mixture of specific oligonucleotide sequences is assembled, for example, by a process of repeated cycles of melting, self-annealing and polymerase extension followed by PCR amplification of the final molecule with appropriate PCR primers designed to amplify this complete molecule (<i>e.g.,</i> as described in <nplcit id="ncit0011" npl-type="s"><text>Mullis et al., Cold Spring Harb. Symp. Quant. Biol. 51 Pt 1:263-73, 1986</text></nplcit>; and <nplcit id="ncit0012" npl-type="s"><text>Saiki et al., Science 239:487-91, 1988</text></nplcit>).
In yet another embodiment of the described process (illustrated in <figref idref="f0005">Figure 3</figref>), the oligonucleotide sequences comprising the target polynucleotide sequence are synthesized on a microarray device or bead solid support, each oligonucleotide having a cleavable linker moiety synthesized within the sequence, such that after synthesis, oligonucleotides can be cleaved from the microarray device into a solution. Examples of appropriate cleavable linker moieties are shown <figref idref="f0006">Figure 3A</figref>. In addition to this method of cleavage, a sequence containing RE enzyme site can be synthesized at the ends of oligonucleotides attached to the microarray device. These oligonucleotides on the microarray device then hybridize with an oligonucleotide complementary to this additional flanking sequence and treated with an RE enzyme specific for the RE enzyme site. This process releases oligonucleotide fragments resembling the structure of the target polynucleotide. This set of oligonucleotides then can be assembled into the final polynucleotide molecule using any one of the methods or combination of the methods of ligation, primer extension and PCR.
In a third embodiment of the described process, a plurality of oligonucleotides that can be assembled into a full length polynucleotide are synthesized on a microarray device (or beads having a solid surface) having specific cleavable linker moieties(<figref idref="f0006">Figure 3A</figref>) or capable of being cleaved from the solid support of the microarray device or beads by a chemical treatment. The net effect is to recreate the functional 3' ends and 5' ends of each specific oligonucleotide sequence. After treatment to cleave them, the oligonucleotides (each having overlapping regions) are released into a mixture and used for full-length polynucleotide gene assembly using any of the gene assembly processes described herein.
Specifically, in the third embodiment and as illustrated in <figref idref="f0005">Figure 3</figref>, a target polynucleotide sequence is dissected into number of overlapping oligonucleotide sequences by a software program or on paper, but not necessarily physically in a laboratory. These oligonucleotide sequences are physically synthesized on a microarray device. In alternative A, the oligonucleotide sequences are connected to the microarray device through cleavable linker moiety. Chemical cleavage under basic conditions (e.g., through addition of ammonia), at cleavable linker CL recreates the usual 3' end of the specific oligonucleotide sequences 1 through N. Oligonucleotide sequences 1 through N are released into a mixture. The mixture of oligonucleotide sequences is used for polynucleotide assembly.
In alternative B, oligonucleotide sequences are connected to a microarray device through additional flanking sequence regions containing a restriction enzyme (RE) sequence site. A second oligonucleotide fragment, complementary to the flanking sequence, is hybridized to the oligonucleotides on the microarray device. This recreates a ds structure at the flanking sequence region, including the RE recognition site. Digestion of this ds DNA structure with RE enzyme specific to the RE recognition site in the flanking sequence region will release specific oligonucleotides 1 through N into a mixture solution. The oligonucleotides 1 through N are able to assemble into a polynucleotide molecule in solution.
In another example of alternative B, oligonucleotides that together assemble into the polynucleotide, are synthesized on a microarray device, each having a flanking sequence on the microarray side. The flanking sequence further comprises a restriction endonuclease (RE) recognition site (see Figure 3B). Oligonucleotides complementary to the flanking sequence region are added and hybridized to the oligonucleotides on microarray device. After hybridization a RE (restriction enzyme specific to the RE sequence in the flanking region) is added to the microarray device. Specific oligonucleotide sequences are released from the microarray device as a result of RE digestion into a mixture. The mixture of specific oligonucleotide sequences assembled into the full-length polynucleotide sequence.
Example 1
This example illustrates assembly of 172-mer polynucleotide sequence from non-cleavable oligonucleotide sequences synthesized on a microarray device according to the first embodiment inventive process (<figref idref="f0007">Figures 4</figref> and <figref idref="f0008">5</figref>). Three oligonucleotides (sequences shown in <figref idref="f0008">Figure 5</figref>) were synthesized <i>in situ</i> on a microarray device according to an electrochemical process (see <patcit id="pcit0008" dnum="US6093302A"><text>U.S. Patent 6,093,302</text></patcit>, the disclosure of which is incorporated by reference herein). The oligonucleotide sequences synthesized were amplified by a PCR reaction with primers X (complementary to the strand of oligo#1) and Z (same strand as oligo#3) (<figref idref="f0008">Figure 5</figref>). After 45 cycles of PCR using a PCR kit with AmplyGold® enzyme (Applied Biosystems) a correct DNA fragment of 172 bp was synthesized (<figref idref="f0007">Figure 4</figref>). Its subsequent digestion confirmed the specificity of this enzyme with <i>Hpa</i>II producing two fragments of 106 bp and 68 bp.
Example 2
This example illustrates the second embodiment of the inventive process for preparing oligonucleotides for assembly into full-length polynucleotides by PCR and REII (restriction enzyme) digestion. A single oligonucleotide sequence was synthesized on a microarray device according to the procedure in Example 1 (see <figref idref="f0004">Figures 2</figref> and <figref idref="f0009">6</figref>). The oligonucleotide sequence further comprised 2 flanking sequences, each having a recognition site for a <i>Mly</i>I restriction enzyme. This microarray device was subject to a PCR (25 cycles) reaction with two primers (shown in <figref idref="f0010">Figure 7</figref>) to produce an amplified PCR fragment mixture. The amplified PCR fragment obtained was digested by <i>Mly</i>I restriction enzyme and purified by a PCR purification kit (Qiagen) to produce specific oligonucleotides ready for assembly (<figref idref="f0010">Figure 7</figref>). Similarly, this specific oligonucleotide was purified from the flanking sequences by absorption of the digestion mixture by Streptavidin-agarose (Sigma).
Example 3
This example illustrates the assembly of a 290 bp polynucleotide sequence from 9 oligonucleotide sequences, each having flanking sequences containing a <i>Mly</i>I restriction site. Each of the nine different oligonucleotide sequences was synthesized on a microarray device through an <i>in situ</i> electrochemistry process as described in example 1 herein.
The microarray device containing the nine specific oligonucleotide sequences (with flanking sequences as shown in Figure 8) was used for PCR amplification of each oligonucleotide sequence using two primers, Primer 1 and 2, described in <figref idref="f0009">Figure 6</figref> to form a mixture of ds oligonucleotide sequences. The primers were complementary to the flanking sequences. The mixture of the amplified ds oligonucleotide sequences was digested by <i>Mly</i>I enzyme. Specific ds oligonucleotide sequences were purified and then assembled into the final 290 bp polynucleotide sequence in two steps as described in <figref idref="f0004">Figure 2</figref> and shown schematically in <figref idref="f0012">Figure 9</figref>. At the first step of assembly 20 cycles of melting-annealing-extension were used. The final product was amplified using two primers FP1 and FP2 (<figref idref="f0012">Figure 9</figref>) in 25 cycles of PCR into a 290 bp polynucleotide DNA.
Example 4
This example illustrates the creation of a cDNA polynucleotide sequence capable of coding on expression for fusion protein MIP-GFP-FLAG (Macrophage Inflammation Protein - Green Fluorescence Protein - FLAG peptide) using thirty-eight overlapping oligonucleotide sequences (<figref idref="f0013 f0014">Figure 10</figref>). The 38 oligonucleotides were synthesized on a microarray device using an electrochemical <i>in situ</i> synthesis approach, as described in example 1. Each oligonucleotide sequence contained a cleavable linker moiety (see <figref idref="f0006">Figure 3A</figref>) at their 3' end. After simultaneous deprotection and cleavage of these oligonucleotide sequences by concentrated ammonia, the mixture of oligonucleotide sequences was purified by gel-filtration through the spin column. The purified oligonucleotide sequences were assembled into a polynucleotide by a process shown schematically in <figref idref="f0005">Figure 3</figref>. The resulting DNA polynucleotide was 965 bp and contained both a T7 RNA-polymerase promoter and a coding sequence for MIP-GFP-FLAG fusion protein. The polynucleotide assembled in this example was used in a standard transcription/translation reaction and produced the appropriate MIP-GFP-FLAG fusion protein. The translated protein was purified from the reaction mixture using anti-FLAG resin (Sigma). The functional protein possessed green fluorescence signal in appropriate blue light. Accordingly, this experiment demonstrated that the inventive gene assembly process provided the correct DNA sequence coding for the functional protein.
Sequence Listing
<ul id="ul0002" list-style="none" compact="compact"><li><110> Oleinikov Andrew V.</li><li><120> MICROARRAY SYNTHESIS AND ASSEMBLY OF GENE-LENGTH POLYNUCLEOTIDES</li><li><130> 0601WO</li><li><140> <patcit id="pcit0009" dnum="WO10243367A"><text>10/243,367</text></patcit></li><li><160> 51</li><li><210> 1 <211> 82 <212> DNA <213> Artificial Sequence</li><li><220> <223> Primer X #1 <figref idref="f0008">Figure 5</figref></li><li><400> 1 <img file="EP1546387B1_D0001.tif" /></li><li><210> 2 <211> 84 <212> DNA <213> Artificial Sequence</li><li><220> <223> Primer X #2 <figref idref="f0008">Figure 5</figref></li><li><400> 2 <img file="EP1546387B1_D0002.tif" /></li><li><210> 3 <211> 86 <212> DNA <213> Artificial Sequence</li><li><220> <223> Primer Z #3 <figref idref="f0008">Figure 5</figref></li><li><400> 3 <img file="EP1546387B1_D0003.tif" /></li><li><210> 4 <211> 172 <212> DNA <213> Artificial Sequence</li><li><220> <223> Final assembled product <figref idref="f0008">Figure 5</figref></li><li><400> 4 <img file="EP1546387B1_D0004.tif" /></li><li><210> 5 <211> 89 <212> DNA <213> Artificial Sequence</li><li><220> <223> Fragment #1 Figure 8</li><li><400> 5 <img file="EP1546387B1_D0005.tif" /></li><li><210> 6 <211> 85 <212> DNA <213> Artificial Sequence</li><li><220> <223> Fragment #2 Figure 8</li><li><400> 6 <img file="EP1546387B1_D0006.tif" /></li><li><210> 7 <211> 87 <212> DNA <213> Artificial Sequence</li><li><220> <223> Fragment #3 Figure 8</li><li><400> 7 <img file="EP1546387B1_D0007.tif" /></li><li><210> 8 <211> 81 <212> DNA <213> Artificial Sequence</li><li><220> <223> Fragment #4 Figure 8</li><li><400> 8 <img file="EP1546387B1_D0008.tif" /></li><li><210> 9 <211> 130 <212> DNA <213> Artificial Sequence</li><li><220> <223> Fragment #5 Figure 8</li><li><400> 9 <img file="EP1546387B1_D0009.tif" /></li><li><210> 10 <211> 83 <212> DNA <213> Artificial Sequence</li><li><220> <223> Fragment #6 Figure 8</li><li><400> 10 <img file="EP1546387B1_D0010.tif" /></li><li><210> 11 <211> 84 <212> DNA <213> Artificial Sequence</li><li><220> <223> Fragment #7 Figure 8</li><li><400> 11 <img file="EP1546387B1_D0011.tif" /></li><li><210> 12 <211> 84 <212> DNA <213> Artificial Sequence</li><li><220> <223> Fragment #8 Figure 8</li><li><400> 12 <img file="EP1546387B1_D0012.tif" /></li><li><210> 13 <211> 88 <212> DNA <213> Artificial Sequence</li><li><220> <223> Fragment #9 Figure 8</li><li><400> 13 <img file="EP1546387B1_D0013.tif" /></li><li><210> 14 <211> 50 <212> DNA <213> Artificial Sequence</li><li><220> <223> Fragment #1 <figref idref="f0013 f0014">Figure 10</figref></li><li><400> 14 tacgtaatac gactcactat agggaaagtc gccaccatgg acacgccgac 50</li><li><210> 15 <211> 46 <212> DNA <213> Artificial Sequence</li><li><220> <223> Fragment #2 <figref idref="f0013 f0014">Figure 10</figref></li><li><400> 15 cgcctgctgc ttcagctaca cctcccggca gattccacag aatttc 46</li><li><210> 16 <211> 48 <212> DNA <213> Artificial Sequence</li><li><220> <223> Fragment #3 <figref idref="f0013 f0014">Figure 10</figref></li><li><400> 16 atagctgact actttgagac gagcagccag tgctccaagc ccggtgtc 48</li><li><210> 17 <211> .42 <212> DNA <213> Artificial Sequence</li><li><220> <223> Fragment #4 <figref idref="f0013 f0014">Figure 10</figref></li><li><400> 17 atcttcctaa ccaagcgaag ccggcaggtc tgtgctgacc cc 42</li><li><210> 18 <211> 47 <212> DNA <213> Artificial Sequence</li><li><220> <223> Fragment #5 <figref idref="f0013 f0014">Figure 10</figref></li><li><400> 18 agtgaggagt gggtccagaa atatgtcagc gacctagagc tgagtgc 47</li><li><210> 19 <211> 44 <212> DNA <213> Artificial Sequence</li><li><220> <223> Fragment #6 <figref idref="f0013 f0014">Figure 10</figref></li><li><400> 19 atatttctgg acccactcct cactggggtc agcacagacc tgcc 44</li><li><210> 20 <211> 45 <212> DNA <213> Artificial Sequence</li><li><220> <223> Fragment #7 <figref idref="f0013 f0014">Figure 10</figref></li><li><400> 20 ggcttcgctt ggttaggaag atgacaccgg gcttggagca ctggc 45</li><li><210> 21 <211> 45 <212> DNA <213> Artificial Sequence</li><li><220> <223> Fragment #8 <figref idref="f0013 f0014">Figure 10</figref></li><li><400> 21 tgctcgtctc aaagtagtca gctatgaaat tctgtggaat ctgcc 45</li><li><210> 22 <211> 49 <212> DNA <213> Artificial Sequence</li><li><220> <223> Fragment #9 <figref idref="f0013 f0014">Figure 10</figref></li><li><400> 22 gggaggtgta gctgaagcag caggcggtcg gcgtgtccat ggtggcgac 49</li><li><210> 23 <211> 54 <212> DNA <213> Artificial Sequence</li><li><220> <223> Fragment #1F <figref idref="f0013 f0014">Figure 10</figref></li><li><400> 23 <img file="EP1546387B1_D0014.tif" /></li><li><210> 24 <211> 52 <212> DNA <213> Artificial Sequence</li><li><220> <223> Fragment #2F <figref idref="f0013 f0014">Figure 10</figref></li><li><400> 24 catggtgagc aagggcgagg agctgttcac cggggtggtg cccatcctgg tc 52</li><li><210> 25 <211> 50 <212> DNA <213> Artificial Sequence</li><li><220> <223> Fragment #3F <figref idref="f0013 f0014">Figure 10</figref></li><li><400> 25 ttgtggccgt ttacgtcgcc gtccagctcg accaggatgg gcaccacccc 50</li><li><210> 26 <211> 51 <212> DNA <213> Artificial Sequence</li><li><220> <223> Fragment #4F <figref idref="f0013 f0014">Figure 10</figref></li><li><400> 26 gagctggacg gcgacgtaaa cggccacaag ttcagcgtgt ccggcgaggg c 51</li><li><210> 27 <211> 45 <212> DNA <213> Artificial Sequence</li><li><220> <223> Fragment #5F <figref idref="f0013 f0014">Figure 10</figref></li><li><400> 27 ttgccgtagg tggcatcgcc ctcgccctcg ccggacacgc tgaac 45</li><li><210> 28 <211> 48 <212> DNA <213> Artificial Sequence</li><li><220> <223> Fragment #6F <figref idref="f0013 f0014">Figure 10</figref></li><li><400> 28 gagggcgatg ccacctacgg caagctgacc ctgaagttca tctgcacc 48</li><li><210> 29 <211> 48 <212> DNA <213> Artificial Sequence</li><li><220> <223> Fragment #7F <figref idref="f0013 f0014">Figure 10</figref></li><li><400> 29 cagggcacgg gcagcttgcc ggtggtgcag atgaacttca gggtcagc 48</li><li><210> 30 <211> 54 <212> DNA <213> Artificial Sequence</li><li><220> <223> Fragment #8F <figref idref="f0013 f0014">Figure 10</figref></li><li><400> 30 <img file="EP1546387B1_D0015.tif" /></li><li><210> 31 <211> 55 <212> DNA <213> Artificial Sequence</li><li><220> <223> Fragment #9F <figref idref="f0013 f0014">Figure 10</figref></li><li><400> 31 <img file="EP1546387B1_D0016.tif" /></li><li><210> 32 <211> 48 <212> DNA <213> Artificial Sequence</li><li><220> <223> Fragment #10F <figref idref="f0013 f0014">Figure 10</figref></li><li><400> 32 gtgcagtgct tcagccgcta ccccgaccac atgaagcagc acgacttc 48</li><li><210> 33 <211> 51 <212> DNA <213> Artificial Sequence</li><li><220> <223> Fragment #11F <figref idref="f0013 f0014">Figure 10</figref></li><li><400> 33 gtagccttcg ggcatggcgg acttgaagaa gtcgtgctgc ttcatgtggt c 51</li><li><210> 34 <211> 51 <212> DNA <213> Artificial Sequence</li><li><220> <223> Fragment #12F <figref idref="f0013 f0014">Figure 10</figref></li><li><400> 34 ttcaagtccg ccatgcccga aggctacgtc caggagcgca ccatcttctt c 51</li><li><210> 35 <211> 49 <212> DNA <213> Artificial Sequence</li><li><220> <223> Fragment #13F <figref idref="f0013 f0014">Figure 10</figref></li><li><400> 35 gggtcttgta gttgccgtcg tccttgaaga agatggtgcg ctcctggac 49</li><li><210> 36 <211> 48 <212> DNA <213> Artificial Sequence</li><li><220> <223> Fragment #14F <figref idref="f0013 f0014">Figure 10</figref></li><li><400> 36 aaggacgacg gcaactacaa gacccgcgcc gaggtgaagt tcgagggc 48</li><li><210> 37 <211> 49 <212> DNA <213> Artificial Sequence</li><li><220> <223> Fragment #15F <figref idref="f0013 f0014">Figure 10</figref></li><li><400> 37 agctcgatgc ggttcaccag ggtgtcgccc tcgaacttca cctcggcgc 49</li><li><210> 38 <211> 51 <212> DNA <213> Artificial Sequence</li><li><220> <223> Fragment #16F <figref idref="f0013 f0014">Figure 10</figref></li><li><400> 38 gacaccctgg tgaaccgcat cgagctgaag ggcatcgact tcaaggagga c 51</li><li><210> 39 <211> 51 <212> DNA <213> Artificial Sequence</li><li><220> <223> Fragment #17F <figref idref="f0013 f0014">Figure 10</figref></li><li><400> 39 tccagcttgt gccccaggat gttgccgtcc tccttgaagt cgatgccctt c 51</li><li><210> 40 <211> 51 <212> DNA <213> Artificial Sequence</li><li><220> <223> Fragment #18F <figref idref="f0013 f0014">Figure 10</figref></li><li><400> 40 ggcaacatcc tggggcacaa gctggagtac aactacaaca gccacaacgt c 51</li><li><210> 41 <211> 52 <212> DNA <213> Artificial Sequence</li><li><220> <223> Fragment #19F <figref idref="f0013 f0014">Figure 10</figref></li><li><400> 41 gttcttctgc ttgtcggcca tgatatagac gttgtggctg ttgtagttgt ac 52</li><li><210> 42 <211> 51 <212> DNA <213> Artificial Sequence</li><li><220> <223> Fragment #20F <figref idref="f0013 f0014">Figure 10</figref></li><li><400> 42 tatatcatgg ccgacaagca gaagaacggc atcaaggtga acttcaagat c 51</li><li><210> 43 <211> 50 <212> DNA <213> Artificial Sequence</li><li><220> <223> Fragment #21F <figref idref="f0013 f0014">Figure 10</figref></li><li><400> 43 acgctgccgt cctcgatgtt gtggcggatc ttgaagttca ccttgatgcc 50</li><li><210> 44 <211> 49 <212> DNA <213> Artificial Sequence</li><li><220> <223> Fragment #22F <figref idref="f0013 f0014">Figure 10</figref></li><li><400> 44 cgccacaaca tcgaggacgg cagcgtgcag ctcgccgacc actaccagc 49</li><li><210> 45 <211> 51 <212> DNA <213> Artificial Sequence</li><li><220> <223> Fragment #23F <figref idref="f0013 f0014">Figure 10</figref></li><li><400> 45 acggggccgt cgccgatggg ggtgttctgc tggtagtggt cggcgagctg c 51</li><li><210> 46 <211> 51 <212> DNA <213> Artificial Sequence</li><li><220> <223> Fragment #24F <figref idref="f0013 f0014">Figure 10</figref></li><li><400> 46 agaacacccc catcggcgac ggccccgtgc tgctgcccga caaccactac c 51</li><li><210> 47 <211> 49 <212> DNA <213> Artificial Sequence</li><li><220> <223> Fragment #25F <figref idref="f0013 f0014">Figure 10</figref></li><li><400> 47 tttgctcagg gcggactggg tgctcaggta gtggttgtcg ggcagcagc 49</li><li><210> 48 <211> 50 <212> DNA <213> Artificial Sequence</li><li><220> <223> Fragment #26F <figref idref="f0013 f0014">Figure 10</figref></li><li><400> 48 tgagcaccca gtccgccctg agcaaagacc ccaacgagaa gcgcgatcac 50</li><li><210> 49 <211> 51 <212> DNA <213> Artificial Sequence</li><li><220> <223> Fragment #27F <figref idref="f0013 f0014">Figure 10</figref></li><li><400> 49 ggcggtcacg aactccagca ggaccatgtg atcgcgcttc tcgttggggt c 51</li><li><210> 50 <211> 51 <212> DNA <213> Artificial Sequence</li><li><220> <223> Fragment #28F <figref idref="f0013 f0014">Figure 10</figref></li><li><400> 50 atggtcctgc tggagttcgt gaccgccgcc gggatcactc tcggcatgga c 51</li><li><210> 51 <211> 49 <212> DNA <213> Artificial Sequence</li><li><220> <223> Fragment #29F <figref idref="f0013 f0014">Figure 10</figref></li><li><400> 51 ggcggccgct ttacttgtac agctcgtcca tgccgagagt gatcccggc 49</li></ul>
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Every citation, both waysCites: the store holds 8 of 9
| Document | Relation | Office |
|---|---|---|
| EP1180548A | Cites | European Patent Office (EPO) |
| WO9000626A | Cites | World Intellectual Property Organization (WIPO) |
| US5641658A | Cites | United States of America |
| US6017696A | Cites | United States of America |
| US6136568A | Cites | United States of America |
| US2001031483A1 | Cites | United States of America |
| US2001049125A1 | Cites | United States of America |
| US6322971B1 | Cites | United States of America |
36 members in 7 offices
Priority claims9
| Document | Office | Kind | Date |
|---|---|---|---|
| 243367 | United States of America | – | |
| 24336702 | United States of America | A | |
| 24336702 | United States of America | A | |
| 0328946 | United States of America | W | |
| 0328946 | United States of America | W | |
| 2003028946 | – | – | – |
| 243367 | – | – | – |
| US20020243367 | – | – | – |
| WO2003US28946 | – | – | – |
Members36
| Document | Office | Kind | |
|---|---|---|---|
| CA2498746A1 | Canada | A1 | |
| CA3020587A1 | Canada | A1 | |
| WO2004024886A2 | World Intellectual Property Organization (WIPO) | A2 | |
| AU2003270666A1 | Australia | A1 | |
| WO2004024886A3 | World Intellectual Property Organization (WIPO) | A3 | |
| EP1546387A2 | European Patent Office (EPO) | A2 | |
| JP2005538725A | Japan | A | |
| US2005287585A1 | United States of America | A1 | |
| US2006035218A1 | United States of America | A1 | |
| EP1546387A4 | European Patent Office (EPO) | A4 | |
| US7323320B2 | United States of America | B2 | |
| US7563600B2 | United States of America | B2 | |
| AU2003270666B2 | Australia | B2 | |
| US2010124767A1 | United States of America | A1 | |
| EP2330216A1 | European Patent Office (EPO) | A1 | |
| JP4783874B2 | Japan | B2 | |
| US8058004B2 | United States of America | B2 | |
| US2012270750A1 | United States of America | A1 | |
| US2013017977A1 | United States of America | A1 | |
| US9023601B2 | United States of America | B2 | |
| US9051666B2 | United States of America | B2 | |
| EP2330216B1 | European Patent Office (EPO) | B1 | |
| EP1546387B1This record | European Patent Office (EPO) | B1 | |
| US2016001247A1 | United States of America | A1 | |
| EP3059321A1 | European Patent Office (EPO) | A1 | |
| US2017240886A1 | United States of America | A1 | |
| CA2498746C | Canada | C | |
| US10450560B2 | United States of America | B2 | |
| US10640764B2 | United States of America | B2 | |
| US2020181603A1 | United States of America | A1 | |
| EP3059321B1 | European Patent Office (EPO) | B1 | |
| US10774325B2 | United States of America | B2 | |
| DK3059321T3 | Denmark | T3 | |
| EP3770270A1 | European Patent Office (EPO) | A1 | |
| US2021062185A1 | United States of America | A1 | |
| CA3020587C | Canada | C |
69 legal events, as 8 offices reported them to INPADOC
Over the term
Point at a mark for the eventEvents
| Event | Code | Office | |
|---|---|---|---|
| Lapsed in a contracting state [announced via postgrant information from national office to epo]LapsedPG25 | PG25 | EP | |
| Patent expired after termination of 20 yearsExpiredPE20 | PE20 | GB | |
| Patent ceasedCeasedPL | PL | CH | |
| Patent expired because of reaching the maximum lifetime of a patentExpiredMK | MK | NL | |
| Expiry of rightR071 | R071 | DE | |
| Opt-out of the competence of the unified patent court (upc) registeredP01 | P01 | EP | |
| Annual fee paid to national office [announced via postgrant information from national office to epo]GrantedPGFP | PGFP | EP | |
| Annual fee paid to national office [announced via postgrant information from national office to epo]GrantedPGFP | PGFP | EP | |
| Annual fee paid to national office [announced via postgrant information from national office to epo]GrantedPGFP | PGFP | EP | |
| Annual fee paid to national office [announced via postgrant information from national office to epo]GrantedPGFP | PGFP | EP | |
| Annual fee paid to national office [announced via postgrant information from national office to epo]GrantedPGFP | PGFP | EP | |
| Fee paymentPLFP | PLFP | FR | |
| Lapsed in a contracting state [announced via postgrant information from national office to epo]LapsedPG25 | PG25 | EP | |
| Lapsed in a contracting state [announced via postgrant information from national office to epo]LapsedPG25 | PG25 | EP | |
| Lapsed in a contracting state [announced via postgrant information from national office to epo]LapsedPG25 | PG25 | EP | |
| Lapsed in a contracting state [announced via postgrant information from national office to epo]LapsedPG25 | PG25 | EP | |
| Fee paymentPLFP | PLFP | FR | |
| Lapsed in a contracting state [announced via postgrant information from national office to epo]LapsedPG25 | PG25 | EP | |
| Patent lapsedLapsedMM4A | MM4A | IE | |
| Lapsed in a contracting state [announced via postgrant information from national office to epo]LapsedPG25 | PG25 | EP | |
| Lapsed in a contracting state [announced via postgrant information from national office to epo]LapsedPG25 | PG25 | EP | |
| Lapsed in a contracting state [announced via postgrant information from national office to epo]LapsedPG25 | PG25 | EP | |
| Lapsed in a contracting state [announced via postgrant information from national office to epo]LapsedPG25 | PG25 | EP | |
| No opposition filedOpposition26N | 26N | EP | |
| Lapsed in a contracting state [announced via postgrant information from national office to epo]LapsedPG25 | PG25 | EP | |
| Lapsed in a contracting state [announced via postgrant information from national office to epo]LapsedPG25 | PG25 | EP | |
| Lapsed in a contracting state [announced via postgrant information from national office to epo]LapsedPG25 | PG25 | EP | |
| No opposition filed within time limitOppositionORIGINAL CODE: 0009261PLBE | PLBE | EP | |
| Information on the status of an ep patent application or granted ep patentGrantedSTATUS: NO OPPOSITION FILED WITHIN TIME LIMITSTAA | STAA | EP | |
| Lapsed in a contracting state [announced via postgrant information from national office to epo]LapsedPG25 | PG25 | EP | |
| Lapsed in a contracting state [announced via postgrant information from national office to epo]LapsedPG25 | PG25 | EP | |
| No opposition filed against granted patent, or epo opposition proceedings concluded without decisionGrantedR097 | R097 | DE | |
| Lapsed in a contracting state [announced via postgrant information from national office to epo]LapsedPG25 | PG25 | EP | |
| Lapsed in a contracting state [announced via postgrant information from national office to epo]LapsedPG25 | PG25 | EP | |
| Lapsed in a contracting state [announced via postgrant information from national office to epo]LapsedPG25 | PG25 | EP | |
| Fee paymentPLFP | PLFP | FR | |
| Lapsed in a contracting state [announced via postgrant information from national office to epo]LapsedPG25 | PG25 | EP | |
| Lapsed in a contracting state [announced via postgrant information from national office to epo]LapsedPG25 | PG25 | EP | |
| Lapsed in a contracting state [announced via postgrant information from national office to epo]LapsedPG25 | PG25 | EP | |
| Lapsed in a contracting state [announced via postgrant information from national office to epo]LapsedPG25 | PG25 | EP | |
| Name/firm changedPFA | PFA | CH | |
| Deletion acc. to par. 5 (withdrawal of the translation of the ep patent)MK05 | MK05 | AT | |
| Translation for ep filed (entry of ep into country)FP | FP | NL | |
| Dpma publication of mentioned ep patent grantGrantedR096 | R096 | DE | |
| Reference to at number (ep patent validated in austria)REF | REF | AT | |
| European patents granted designating irelandGrantedFG4D | FG4D | IE | |
| New agentNV | NV | CH | |
| European patent takes effect as a national patent in ch/liEP | EP | CH | |
| Designated contracting statesAK | AK | EP | |
| European patent grantedGrantedFG4D | FG4D | GB | |
| (expected) grantORIGINAL CODE: 0009210GRAA | GRAA | EP | |
| Grant fee paidORIGINAL CODE: EPIDOSNIGR3GRAS | GRAS | EP | |
| Intention to grant announcedINTG | INTG | EP | |
| Despatch of communication of intention to grant a patentORIGINAL CODE: EPIDOSNIGR1GRAP | GRAP | EP | |
| Intention to grant announcedINTG | INTG | EP | |
| Despatch of communication of intention to grant a patentORIGINAL CODE: EPIDOSNIGR1GRAP | GRAP | EP | |
| Intention to grant announcedINTG | INTG | EP | |
| Despatch of communication of intention to grant a patentORIGINAL CODE: EPIDOSNIGR1GRAP | GRAP | EP | |
| Intention to grant announcedINTG | INTG | EP | |
| Despatch of communication of intention to grant a patentORIGINAL CODE: EPIDOSNIGR1GRAP | GRAP | EP | |
| Party data changed (applicant data changed or rights of an application transferred)RAP1 | RAP1 | EP | |
| Intention to grant announcedINTG | INTG | EP | |
| Despatch of communication of intention to grant a patentORIGINAL CODE: EPIDOSNIGR1GRAP | GRAP | EP | |
| Party data changed (applicant data changed or rights of an application transferred)RAP1 | RAP1 | EP | |
| First examination report despatched17Q | 17Q | EP | |
| Supplementary search report drawn up and despatchedA4 | A4 | EP | |
| Request for examination filed17P | 17P | EP | |
| Designated contracting statesAK | AK | EP | |
| Public reference made under article 153(3) epc to a published international application that has entered the european phaseORIGINAL CODE: 0009012PUAI | PUAI | EP |
Numbers
- Publication
- 1546387
- Publication, DOCDB
- 1546387
- Publication, EPODOC
- EP1546387
- Application
- 37523735
- Application, DOCDB
- 03752373
- Application, EPODOC
- EP20030752373
Titles3
- German
- MIKROARRAY-SYNTHESE UND -ZUSAMMENBAU VON GENLÄNGE AUFWEISENDEN POLYNUKLEOTIDEN
- English
- MICROARRAY SYNTHESIS AND ASSEMBLY OF GENE-LENGTH POLYNUCLEOTIDES
- French
- SYNTHESE ET ASSEMBLAGE EN MICRORESEAUX DE POLYNUCLEOTIDES DE LA LONGUEUR D'UN GENE
Classification
- CPC, 26
- B82Y30/00
- C12N15/1068
- B01J19/0046
- B01J2219/00378
- B01J2219/00385
- B01J2219/00432
- B01J2219/00454
- B01J2219/005
- B01J2219/00527
- B01J2219/00585
- B01J2219/00596
- B01J2219/00605
- B01J2219/00626
- B01J2219/00608
- B01J2219/00639
- B01J2219/00641
- B01J2219/00659
- B01J2219/00675
- B01J2219/00677
- B01J2219/00689
- B01J2219/00713
- B01J2219/00722
- C40B40/06
- C40B80/00
- C40B50/14
- C12Q1/6837
- IPC, 8
- C12Q1 68
- C12P19 34
- C07H21 02
- C07H21 04
- G01N37 00
- B01J19 00
- C12N
- C12N15 09
Designated states27
- Contracting states, 27
- Austria
- Belgium
- Bulgaria
- Switzerland
- Cyprus
- Czechia
- Germany
- Denmark
- Estonia
- Spain
- Finland
- France
- United Kingdom
- Greece
- Hungary
- Ireland
- Italy
- Liechtenstein
- Luxembourg
- Monaco
- Netherlands (Kingdom of the)
- Portugal
- Romania
- Sweden
and 3 moreShow fewer
- Slovenia
- Slovakia
- Türkiye
