Process for preparing 2-pyridylmethylsulphinylbenzimidazoles
6 claims: 6 independent, 0 dependent
- 1OBJECT OF THE INVENTION A process for the preparation of 2-pyridylmethylsulphinylenzimidazoles of formula III PREDMET >íý'Způsob výroby 2-pyridylmethylsulfinylenzimidazolů obecného vzorce III R1 a R2, které jsou shodné nebo rozdílné, jsou vybrány ze souboru zahrnujícího vodík, halogen, alkyl s 1 až 7 atomy uhlíku, methoxykarbonyl, ethoxy.karbonyl, alkoxyskupinu s 1 až 5 atomy uhlíku a alkanoyil s 1 až 4 atomy uhlíku v libovolné poloze, R1 and R2which are identical or different are selected from the group consisting of hydrogen, halogen, alkyl of 1 to 7 carbon atoms, methoxycarbonyl, ethoxycarbonyl, alkoxy of 1 to 5 carbon atoms and alkanoyil of 1 to 4 carbon atoms in any position, R(B) represents a group selected from the group consisting of hydrogen, methyl and ethyl, RB znamená skupinu vybranou ze souboru zahrnujícího vodík, methyl a ethyil, R3, R4 a R5, které jsou shodné nebo rozdílné, jsou vybrány ze souboru zahrnujícího vodík, methyl, methoxyskupinu, ethoxyskuVYNÁLEZU pinu, methoxyethoxyskupinu a ethoxyethoxyskupinu, přičemž R3, R4 a R5 neznačí současně atom vodíku a značí-li dva ze substituentů R3, R4 a R5 atom vodíku, třetí z těchto substituentů R3, R4 a R5 má jiný význam než methyl, jakož i jejich terapeuticky vhodných solí, vyznačující se tím, že se sloučenina obecného vzorce kde R3, R4 and R5which are identical or different are selected from the group consisting of hydrogen, methyl, methoxy, ethoxy of the invention, methoxyethoxy and ethoxyethoxy, wherein R is3, R4 and R5 does not simultaneously represent a hydrogen atom and when it represents two of the substituents R3, R4 and R5 a hydrogen atom, the third of these R substituents3, R4 and R5 has a meaning other than methyl, as well as therapeutically acceptable salts thereof, characterized in that the compound of the formula wherein:R1, R2 a Rb mají výše uvedené významy a M znamená kov vybraný ze souboru zahrnujícího draslík, sodík a lithium, nechá reagovat se sloučeninou obecného vzorce R1, R2 and Rb are as defined above and M is a metal selected from the group consisting of potassium, sodium and lithium, reacted with a compound of the formula R ' R’ Z N ZN R kde R where R3, R4 a R5 mají výše uvedené významy a R3, R4 and R5 have the above meanings;and Z is a reactive esterified hydroxy group to form a compound of formula III which, if present as a base, can be converted to an acid addition salt, or, if present as a salt, can be converted to its base. Z znamená reaktivní esterifikovanou hydroxyskupinu, za vzniku sloučeniny obecného vzorce III, která pokud je přítomna jako báze, může se převést na adiční sůl s kyselinou, nebo je-li přítomna jako sůl, může se převést na svou bázi.
- 2The method of item 1, for. preparing 2-pyridylmethylsuilfinylbenzoimidazoles of formula III wherein 2. Způsob podle bodu 1, pro. výrobu 2-pyridylmethylsuilfinylbenzoimidazolů obecného vzorce III kde R1 represents a group selected from hydrogen, alkyl of 1 to 7 carbon atoms, methoxycarbonyl, alkoxy of 1 to 5 carbon atoms and alkanoyl of 1 to 4 carbon atoms in any position, R1 znamená skupinu vybranou ze souboru zahrnujícího vodík, alkyl s 1 až 7 atomy uhlíku, methoxykarbonyl, alkoxyskupinu s 1 až 5 atomy uhlíku a alkanoyl s 1 až 4 atomy uhlíku v libovolné poloze, R2 represents a group selected from alkyl of 1 to 7 carbon atoms, methoxycarbonyl, alkoxy of 1 to 5 carbon atoms and alkanoyl of 1 to 4 carbon atoms in any position, R2 znamená skupinu vybranou ze souboru zahrnujícího alkyl s 1 až 7 atomy uhlíku, methoxykarbonyl, alkoxyskupinu s 1 až 5 atomy uhlíku a alkanoyl s 1 až 4 atomy uhlíku v libovolné poloze, R(B) means hydrogen, RB znamená vodík, R3, R4 a R5 jsou shodné a nebo rozdílné a jsou vybrány ze souboru zahrnujícího vodík, methyl, methoxyskupinu a ethoxyskupinu, přičemž značí-li dva ze substituentů R3, R4 a R5 atom vodíku, třetí ze substituentů R3, R4 a R5 má jiný význam než methyl, jakož i jejich terapeuticky vhodných sedí vyznačující se tím, že se sloučenina obecného vzorce R3, R4 and R5 are the same or different and are selected from the group consisting of hydrogen, methyl, methoxy and ethoxy, when two of R are3, R4 and R5 a hydrogen atom, the third of R?3, R4 and R5 has a meaning other than methyl as well as a therapeutically suitable compound thereof, characterized in that the compound of formula (I) is used O O S-CH-M i , kde S-CH-M1, where R1, R2 a RB mají výše uvedený význam a M znamená kov vybraný ze souboru zahrnujícího' draslík, sodík a lithium, nechá reagovat se sloučeninou obecného vzorce kde R1, R2 and R(B) are as defined above and M is a metal selected from the group consisting of potassium, sodium and lithium, reacted with a compound of the formula wherein:R3, R4 a R5 mají výše uvedené významy a R3, R4 and R5 have the above meanings;and Z is a reactive esterified hydroxy group, to form a compound of formula III which, if present as a base, can be converted to an acid addition salt, or, if present as a salt, can be converted to its base. Z znamená reaktivní esterifikovanou hydroxyskupinu, za vzniku sloučeniny obecného vzorce III, která pekud je přítomna jako báze, může se převést na adiční sůl s kyselinou, nebo je-li přítomna jako sůl, může se převést na svou bázi.
- 32. The method of claim 1, wherein the corresponding starting materials are used to form a compound of formula (III) wherein 3. Způsob podle bodu 1, vyznačující se tím, že se použijí odpovídající výchozí látky za vzniku sloučeniny obecného vzorce III, kde R1 represents hydrogen, chlorine, methyl, ethyl, ethoxy, acetyl, ethoxycarbonyl or methoxycarbonyl, R1 znamená vodík, chlor, methyl, ethyl, ethoxyskupinu, acetyl, ethoxykarbonyl nebo methoxykarbonyl, R2 is hydrogen or methyl;RE represents hydrogen, methyl or ethyl, R2 znamená vodík nebo methyl, . Re znamená vodík, methyl nebo ethyl, R3 a R5 značí methyl a R3 and R5 denotes methyl and R4 represents a methoxy group, or a therapeutically acceptable salt thereof. R4 znamená methoxyskupinu, nebo její terapeuticky vhodné soli.
- 42. The method of claim 1, wherein the corresponding starting materials are used to form a compound of formula (III) wherein 4. Způsob podle bodu 1, vyznačující se tím, že se použijí odpovídající výchozí látky za vzniku sloučeniny obecného vzorce III, kde R1 represents hydrogen, chlorine, methyl, ethyl, acetyl, methoxy, ethoxycarbonyl or methoxycarbonyl, R1 znamená vodík, chlor, methyl, ethyl, acetyl, methoxyskupinu, ethoxykarbonyl nebo methoxykarbonyl, R2 represents hydrogen, methyl or ethyl, R2 znamená vodík, methyl nebo' ethyl, R6 represents hydrogen, methyl or ethyl, R6 znamená vodík, methyl nebo ethyl, R4 denotes a methoxy group, R4 značí methoxyskupinu, R3 is hydrogen and R3 značí vodík a R5 is methyl or R5 znamená methyl nebo R3 denotes methyl and R3 značí methyl a R5 represents hydrogen, or therapeutically acceptable salts thereof. R5 znamená vodík, nebo její terapeuticky vhodné soli.
- 52. The method of claim 1, wherein the corresponding starting materials are used to form 5. Způsob podle bodu 1, vyznačující se tím, že se použijí odpovídající výchozí látky za vzniku 2- (2- (3,4-dimethylpyridylmethylsulfinyl) - (5-acetyl-6-methyl) benzimidazole, 2- [2- (3,5-dimethyl) pyridylmethylsulfinyl] - (4,6-dimethyl) benzimidazole, 2-( 2-(3,4-dimethyl jpyridylmethylsuilfinyl ] - (5-acetyl-6-methyl) benzimidazolu, ,2 - [ 2 - (3,5-dimethyl) pyridylmethylsulf inyl ] - (4,6-dimethy 1 j benzimidazolu, 2- (2- (4,5-dimethyl) pyridylmethylsulfinyl) - (5-methoxycarbonyl) benzimidazole, 2-(2-( 4,5-dimethyl) pyridylmethy lsulf inyl ] - (5-methoxykarbonyl) benzimidazolu, 2- (2- (4,5-dimethyl) pyridylmethylsulphinyl) - (5-acetyl-6-methyl) benzimidazole, 2-(2-( 4,5-dimethyl) pyridylmethylsulf inyl j - (5-acetyl-6-methyl) benzimidazolu, 2- (2- (4,5-dimethyl) pyridylmethylsulfinyl) - (5-methoxycarbonyl-6-methyl) benzimidazoil, 2-(2-( 4,5-dimethyl) pyridylmethy lsulf inyl ] - (5-methoxykarbonyl-6-methyl) benzimidazoilu, 2- (2- (3,4-dimethyl} pyridylmethylsulfinyl) - (5-methoxycarbonyl-6-methyl) benzimidazole, 2-(2-( 3,4-dimethyl} pyridylmethylsulf inyl ] - (5-methoxykarbonyl-6-methy 1) benzimidazolu, 2- (2- (3,5-dimethyl) pyridylmethylsulfinyl) - (5 acetyl-6-methyl) benzimidazole, 2-(2-( 3,5-dimethyl) pyridylmethylsulf inyl ] - (5 acetyl-6-methyl) benzimidazolu, 2- (2- (3,4,5-trimethyl) pyridylmethyilsulfinyd ] - (5-acetyl-6-methy 1) benzimidazolu, 2- (2- (3,4,5-trimethyl) pyridylmethyilsulfinyl) - (5-acetyl-6-methyl) benzimidazole, 2- [ 2- (4-methoxy) pyridylmethylsulf inyl j - (5-acetyl-6-methyl) benzimidazolu, 2- [2- (4-methoxy) pyridylmethylsulfinyl] - (5-acetyl-6-methyl) benzimidazole, 2- [ 2- (4-methoxy) pyridylmethylsulf ony 1 ] - (4 6-methyl] benzimidazolu, 2- [2- (4-methoxy) pyridylmethylsulfonyl] - (4,6-methyl) benzimidazole, 2- [ 2- (3,5-dimethyl-4-methoxy) pyridylmethylsulf inyl J - (5-acetyl-6-methyl) benzimidazolu, 2- [2- (3,5-dimethyl-4-methoxy) pyridylmethylsulphinyl] -N- (5-acetyl-6-methyl) benzimidazole, 2- (2- (3,5-dimethyl) pyridylmethylsulphinyl) N- (5-methoxycarbonyl-6-methyl) benzimidazole, 2-(2-( 3,5-dimethyl) pyridylmethy lsulf inyl J -(5-methoxykarbonyl-6-methyl) benzimidazolu, 2- [2- (3,4,5-trimethyl) pyridylmethylsulfinyl] (5-methoxycarbonyl-6-methyl) benzimidazole, 2-[2-(3,4,5-trimethyl) pyridylmethy lsulf inyl j (5-methoxykarbonyl-6-methyl) benzimidazolu, 2- (2- (4-methoxy) pyridylmethylsulfinyl) - (5-methoxycarbonyl-6-methyl) benzimidazole, 2-(2-( 4-methoxy) pyridylmethylsulf inyl ] - (5-methoxykarbonyl-6-methyl) benzimidazolu, 2- (2- (4-ethoxy) pyridylmethylsulfinyl) - (5-methoxycarbonyl-6-methyl) benzimidazole;2- [2- (3-methyl-4-methoxypyridylmethylsulfinyl) - (5-methoxycarbonyl) -bonyl -6-methyl) benzimidazole, 2-(2-( 4-ethoxy) pyridylmethy lsulf inyl ] - (5-methoxykarbonyl-6-methyl) benzimidazolu, •2- [ 2- (3-methyl-4-methoxy Jpyridylmethylsulf inyl ] - (5-methoxyka,rbonyl-6-methyl) benzimidazolu, 2- (2- (3,5-dimethyl-4-methoxy) pyridylmethylsulfinyl) - (5-methoxycarbonyl-6-methyl) benzimidazole, 2-(2-( 3,5-dimethyl-4-methoxy) pyridylmethy lsulf inyl ] - (5-methoxykar bonyl-6-methyl) benzimidazolu, 2- [2- (4-methoxy-5-methylpyridylmethylsulfinyl) -, (5-methoxycarbonyl-6-methyl) benzimidazole, 2-[ 2- (4-methoxy-5-methyl jpyridyimethylsulfinyl]- ,(5-methoxykarbonyl-6-methyl) benzimidazolu, 2- (2- (3,5-dimethyl] pyridylmethylsulfinyl) - (5-methoxycarbonyl) benzimidazole, 2-(2-( 3,5-dimethyl ] pyridylmethylsulf inyl ] - (5-methoxykarbonyl) benzimidazolu, 2- (2- (3,5-dimethyl-4-methoxy) pyridylmethylsulfinyl) - (5-methoxycarbonyl) benzimidazole, 2-(2-( 3,5-dimethyl-4-methoxy) pyridylme thylsulfinyl ] - (5-methoxykarbonyl J benzimidazolu, 2- (2- (3,5-dimethyl-4-methoxy) -pyridylmethylsulfinyl] - (5-acetyl) benzimidazole, 2-(2-( 3,5-dimethyl-4-methoxy) -pyridylmethylsulfinyl]-(5-acetyl)benzimidazolu, 2- (2- (4-methoxy-5-methyl) pyridylmethylsulfinyl) - (5-methoxy) benzimidazole, 2-(2-( 4-methoxy-5-methyl) pyridylmethylsulfinyl ]- (5-methoxy jbenzimidazolu, 2- (2- (3,5-dimethyl-4-methoxy) pyridylmethylsulfinyl) - (5-methoxy) benzimidazole, 2-(2-( 3,5-dimethyl-4-methoxy) pyridylmethylsulf inyl ] - (5-methoxy) benzimidazolu, 2- [ 2- (3,5-dimethyl-4-methoxy} pyridylmethylsulf inyl ] - (5-methyl) benzimidazolu, 2- [2- (3,5-dimethyl-4-methoxy} pyridylmethylsulphinyl) - (5-methyl) benzimidazole, 2- [ 2- (3,5-dimethyl-4-methoxy J pyridylmethylsulf inyl] benzimidazolu nebo 2- [2- (3,5-dimethyl-4-methoxy) pyridylmethylsulfinyl] benzimidazole;or 2- (2- (3,5-dimethyl-4-methoxy) pyridylmethylsulfinyl) - (5-chloro) benzimidazole. 2-(2-( 3,5-dimethyl-4-methoxyj pyridylmethylsulf inyl ] - (5-chlor) benzimidazolu.
- 65. The method of claim 1, wherein the corresponding starting materials are used to give 2- [2- (3,5-dimethyl-4-methoxy) pyridylmethylsulfinyl] - (5-methoxy) benzimidazoil. 6. Způsob podle bodu 1, vyznačující se tím, že se použijí odpovídající výchozí látky za vzniku 2-[2-(3,5-dimethyl-4-methoxyjpyridylmethylsulf inyl ] - (5-methoxy ] benzimidazoilu.
Independent claims6
154 paragraphs, as filed
R<sup>1</sup> and R<sup>of</sup> denotes a group selected from hydrogen, alkyl, halogen, cyano, carboxy, carboxyalkyl, alkoxycarbonylcarbamoyl, alkoxycarbonylalkyl, kanbamoyloxy, hydroxy, alkoxy, hydroxyalkyl, trifluoromethyl and acyl at any position,
R<sup>3</sup> represents a group selected from hydrogen, alkyl, acyl, alkoxycarbonyl, carbamoyl, alkoxycarbonylmethyl, alkylcarbamoyl, dialkylcarbamoyl, alkylcarbonylmethyl and alkylsulfonyl; and
R<sup>4</sup> denotes a group selected from the group consisting of straight and branched alkylene groups having 1 to 4 carbon atoms,
281872 wherein at most one methylene group is present between the sulfur atom and the pyridyl group and wherein the pyridyl group is optionally further substituted by alkyl or halogen, they have an inhibitory effect on gastric acid secretion.
However, it has now surprisingly been found that the compounds described below have an even greater inhibitory effect than the compounds mentioned above.
The compounds of the invention have the general formula III
<img file="CS261872B2_D0001.tif" />
where
R<sup>1</sup> and R<sup>2</sup>which are identical or different are selected from hydrogen, halogen, alkyl of 1 to 7 carbon atoms, methoxycarbonyl, ethoxycarbonyl, alkoxy of 1 to 5 carbon atoms and alkanoyil of 1 to 4 carbon atoms in any position,
R<sup>E</sup> represents a group selected from the group consisting of hydrogen, methyl and ethyl,
R<sup>3</sup>, R<sup>4</sup> and R<sup>5</sup>which are identical or different are selected from the group consisting of hydrogen, methyl, methoxy, ethoxy, methoxyethoxy and ethoxyethoxy, wherein R is<sup>3</sup>, R<sup>4</sup> and R<sup>5</sup> does not simultaneously represent a hydrogen atom and when it represents two of the substituents R<sup>4</sup>, R<sup>3 </sup>and R<sup>5</sup> a hydrogen atom, the third of these R substituents<sup>3</sup>, R<sup>4</sup> and R<sup>5</sup> is other than methyl.
Alkyl R<sup>1</sup> and R<sup>2</sup> in formula III, it is suitably alkyl of up to 7 carbon atoms, preferably up to 4 carbon atoms. Such an alkyl R 1<sup>1</sup> or R<sup>2</sup> is, for example, methyl, ethyl, n-propyl, isopropyl, n-butyl or isobutyl.
Halogenem R<sup>1</sup> and R<sup>2</sup> is chlorine, bromine, fluorine or iodine.
Alkoxy groups<sup>1</sup> and R<sup>of</sup> suitably form alkoxy groups with up to 5 carbon atoms, preferably up to 3 carbon atoms, such as methoxy, ethoxy, n-propoxy or isopropoxy.
Alkanoyl R<sup>1</sup> and R<sup>2</sup> suitably have up to 4 carbon atoms and are, for example, formyl, acetyl or proplonyl, preferably acetyl.
A preferred group of compounds of formula (III) are those wherein R @ 1<sup>1</sup> and R<sup>2</sup> are the same or different and are selected from the group consisting of hydrogen, alkyl, methoxycarbonyl, alkoxy and alkanoyl, wherein R is<sup>1</sup> and R<sup>2</sup> they do not simultaneously denote hydrogen,<sup>E</sup> is hydrogen and R is<sup>3</sup>, R<sup>4</sup> and R<sup>5</sup> are the same or different and are selected from the group consisting of hydrogen, methyl, methoxy and ethoxy, wherein R is<sup>3</sup>, R<sup>4</sup> and R<sup>5</sup> they should not always simultaneously denote a hydrogen atom and if they denote two substituents from R<sup>3</sup>, R<sup>4</sup> and R<sup>5</sup> hydrogen, the third of these substituents R @ 1<sup>3</sup>, R<sup>4</sup> and R<sup>5 </sup>not methyl.
Another preferred group of compounds of formula (III) are those wherein R is<sup>1</sup> and R<sup>2</sup> are the same or different and each is selected from the group consisting of hydrogen, alkyl, halogen, methoxycarbonyl, ethoxycarbonyl, alkoxy and alkanoyl;<sup>6 </sup>is selected from the group consisting of hydrogen, methyl and ethyl;<sup>3</sup> denotes methyl, R<sup>4</sup> is methoxy and R is<sup>5</sup> denotes methyl.
A third preferred group of compounds of formula (III) are those wherein R 1 is R 2<sup>1</sup> and R<sup>2 </sup>are the same or different and are selected from the group consisting of hydrogen, alkyl, halogen, methoxycarbonyl, ethoxycarbonyl, alkoxy, and alkanoyl;<sup>6</sup> is selected from the group consisting of hydrogen, methyl and ethyl;<sup>3 </sup>R is hydrogen;<sup>4</sup> is methoxy and R is<sup>5</sup> is methyl or R 1<sup>3</sup> denotes methyl, R<sup>4</sup> denotes methoxy and R<sup>5</sup> represents hydrogen.
A fourth preferred group of compounds of formula (III) are those wherein R is<sup>1 </sup>and R<sup>2</sup> are the same or different and are selected from the group consisting of hydrogen, alkyl, halogen, methoxycarbonyl, ethoxycarbonyl, alkoxy and alkanoyl;<sup>with</sup> represents hydrogen, methyl or ethyl;<sup>3</sup> and R<sup>5</sup> represents a hydrogen atom and R<sup>4</sup> represents a methoxy group.
A fifth preferred group of compounds of formula (III) are those wherein R 1<sup>1</sup> and R<sup>2 </sup>are the same or different and are selected from the group consisting of hydrogen, alkyl, halogen, methoxycarbonyl, ethoxycarbonyl, alkoxy and alkanoyl;<sup>with</sup> is selected from the group consisting of hydrogen, methyl and ethyl and R 1<sup>3</sup> and R<sup>5</sup> denotes methyl groups and R @ 1<sup>4</sup> is hydrogen.
A sixth preferred group of compounds of formula (III) are those wherein R is<sup>1</sup> and R<sup>2</sup> are the same or different and are selected from the group consisting of hydrogen, alkyl, halogen, methoxycarbonyl, ethoxycarbonyl, alkoxy and alkanoyl;<sup>(B)</sup> is selected from the group consisting of hydrogen, methyl and ethyl;<sup>3 </sup>and R<sup>5</sup> represents a hydrogen atom and R<sup>4</sup> represents ethoxy, methoxyethoxy or ethoxyethoxy.
A seventh preferred group of compounds of formula (III) are those wherein R 1<sup>1 </sup>and R<sup>2</sup> are the same or different and are selected from the group consisting of hydrogen, alkyl, halogen, methoxycarbonyl, alkoxy and alkenoyl;<sup>6</sup> is selected from the group consisting of hydrogen, methyl and ethyl and R 1<sup>3</sup>, R<sup>4</sup> and R<sup>5 </sup>is methyl.
The compounds of formula (III) according to the invention are prepared by producing a compound of formula (III)
<img file="CS261872B2_D0002.tif" />
where
R<sup>1</sup>, R<sup>2</sup> and R<sup>fi</sup> are as defined above and M is a metal selected from the group consisting of potassium, sodium, and lithium, reacted with a compound of formula
<img file="CS261872B2_D0003.tif" />
where
R<sup>3</sup>, R<sup>4</sup> and R<sup>5</sup> have the above meanings; and
Z is a reactive esterified hydroxy group to form a compound of formula III which, if present as a base, can be converted to an acid addition salt, or, if present as a salt, can be converted to its base.
The above-mentioned substituent Z is a reactive esterified hydroxy group, such as a hydroxy group esterified with saliva with an inorganic or organic acid, preferably a hydrohalic acid such as hydrochloric acid, hydrobromic acid or hydroiodic acid, sulfuric acid or a strong organic sulfonic acid such as a strong aromatic acid such as benzenesulfonic acid, 4-bromobenzenesulfonic acid or 4-toluenesulfonic acid.
Depending on the process conditions and starting materials, the end product is obtained either as the free base or as an acid addition salt, which are included within the scope of the invention. Thus, basic, neutral or mixed salts as well as hemi-, mono-, sesqui, or polyhydrates can be obtained. The acid addition salts of the novel compounds can be converted into the free bases in a known manner using basic agents such as alkali or ion exchangers.
On the other hand, the free bases obtained can form salts with organic or inorganic acids. In the preparation of acid addition salts, preferably those acids which form therapeutically acceptable salts are used. These acids include hydrohalic acids, sulfuric, phosphoric, nitric and perchloric acids, aliphatic, alicyclic, aromatic, heterocyclic carboxylic acids or sulfonic acids such as formic, acetic, propionic, succinic, glycolic, lactic, malic, tartaric, citric, ascorbic acids. , maleic, hydroxymalein, pyruvic, phenylacetic, benzoic, p-aminobenzoic, anthranilic, p-hydroxybenzoic, salicylic, or p-aminosailicylic, embonic, methanesulfonic, ethanesulfonic, hydroxyethanesulfonic, ethylenesulfonic, halobenzenesulfonic, toluenesulfonic, naphthylsulfonic or sulfanilic acids, methionine, tryptophan, lysine or arginine.
These or other salts of the novel compounds, such as picrates, can serve as cleaning agents of the free bases obtained. Base salts can be formed, separated from solution, and then the free base can be recovered from the solution of the new salt in a purer state. Because of the relationship between the new free base compounds and their salts, it is to be understood that the corresponding salts are included within the scope of the invention.
Some of the novel compounds, depending on the choice of starting material and process, may be present as optical isomers or racemate, or if they contain at least 2 asymmetric carbon atoms, may be present as a mixture of isomers (racemic mixture).
The obtained isomeric mixtures (racemic mixtures) can be separated into two stereoisomerically (diastereomerically) pure racemates by chromatography or fractional crystallization.
The racemates obtained can be separated by known methods, for example by recrystallization from an optically active solvent, using microorganisms, by reaction with optically active acid-forming salts which can be separated, by separation based on the different solubility of the diastereomers. Suitable optically active acids are the L- and D-forms of tartaric acid, di-o-tolyltartaric acid, malic acid, mandelic acid, camphorsulfonic acid, quinic acid. Preferably, the more active portion is isolated from both antipodes.
The starting materials are known or, if new, can be obtained in a manner known per se.
In clinical use, the compounds of the invention are administered orally, rectally or by injection in the form of a pharmaceutical composition containing the active ingredient either as a free base or as a pharmaceutically acceptable non-toxic acid addition salt such as hydrochloride, lactate, acetate, sulfamate, in combination with a pharmaceutically acceptable carrier. The carrier may be in solid form, semi-solid form, or in the form of a liquid solvent or as a capsule. Usually, the amount of active ingredient is 0.1 to 95% by weight. 0.5 to 20 wt. for injectables and 2 to 50 wt. compositions for oral administration.
In preparing pharmaceutical compositions comprising a compound of this invention in the form of a dosage unit for oral administration, the selected compound may be admixed with a solid powder carrier such as lactose, sucrose, sorbitol, mannitoil, starch, amylopectin, cellulose derivatives or gelatin. is magnesium stearate, calcium stearate and polyethylene glycol waxes. The mixture is then compressed into tablets. In preparing the coated tablets, the core thus prepared is coated with a concentrated sugar solution, which may contain gum arabic, gelatin, talc, titanium dioxide or varnish dissolved in a volatile organic solvent or solvent mixture. Various coloring agents may be added to this coating to distinguish tablets with different active compounds or different amounts of active compound present.
Soft gelatin capsules can be prepared which contain a mixture of the active compound or compounds of the invention and a vegetable oil. The hard gelatin capsules may contain granules of the active compound in combination with a solid powdered carrier such as lactose, sucrose, sorbitol, mannitol, potato starch, corn starch, amylopectin, cellulose derivatives or gelatin.
Dosage units for rectal administration may be presented in the form of suppositories containing the active ingredient in admixture with a neutral fat base or may be prepared in the form of gelatin rectal capsules containing the active ingredient in admixture with vegetable or paraffin oil.
Liquid compositions for oral administration may be prepared in the form of syrups or suspensions, for example as solutions containing 0.2 to 20% by weight of the composition. active ingredient, the remainder consisting of sugar and a mixture of ethanol, water, gilycerol and propylene glycol. If desired, such liquid compositions may contain coloring agents, flavoring agents, saccharin, and carboxymethylcellulose as a thickening agent.
Solutions for parenteral administration by injection may be prepared as aqueous solutions of the pharmaceutically acceptable water-soluble salt of the active compound, preferably at a concentration of 0.5 to 10% by weight. These solutions may also contain stabilizing agents and / or buffers and may be prepared in ampoules with different dosage units.
Pharmaceutical tablets for oral use are prepared as follows:
The solids are ground or sieved to a certain particle size and the binder is homogenized and suspended in a suitable solvent. The therapeutically active compounds and excipients are mixed with a binder solution. The resulting mixture is moistened to form a uniform suspension of wet snow consistency. Moistening causes the particles to clump a little and the resulting mass is passed through a stainless steel sieve with a mesh size of about 1 mm. The mixture layer is dried in carefully controlled drying chambers for approximately 10 hours to achieve the desired particle size and consistency. The granules of the dried mixture are sieved to remove any dust. Tablet disintegrating aids, reducing friction and preventing adhesion are added to this mixture. Finally, the mixture is compressed into tablets using a suitable punch and die machine to obtain a suitable tablet size. The pressure applied affects the size of the tablet, its strength and its water solubility. This pressure should be in the range of 49 to 490 MPa. Tablets are produced at a rate of 20,000 to 200,000 pieces per hour. Tablets, especially those that are coarse and bitter, may be coated with a layer of sugar or other palatable substance. The tablets are then packaged using machines with electronic counting equipment. The different types of packaging consist of glass or plastic cups, boxes, tubes, and other containers for special dosing.
The usual daily dose of the active ingredient varies according to the individual need and the mode of administration. In general, oral dosages range from 100 to 400 mg per day of active ingredient and intravenous dosages range from 5 to 20 mg per day.
The following examples illustrate the practice of the invention without being limited thereto. Temperatures are given in degrees Celsius.
In the following examples, starting materials are prepared by the following methods:
1]
The 1,2-diamino compound, such as o-phenylenediamine, is reacted with potassium ethylxanthate, according to Org. Synth., Vol. 30, p. 56, to give 2-mercapto-benzimidazole.
2)
2-Chloromethylpyridine is prepared by reacting 2-hydroxymethylpyridine with thionyl chloride, according to Arch. Pharm., Vol. 26, pp. 448-451 (1956).
3) ’
2-Chloromethylbenzimidazoil is prepared by condensing o-phenylenediamine with chloroacetic acid.
Example 1
Dissolve 0.1 mol of 2- (Li-methylsulfinyl) - (5-acetyl-6-methyl) benzimidazole in 150 ml of benzene, then add 0.1 mol of 2-chloro- (3,5-dimethyl) pyridine and The resulting lithium chloride was filtered off and the solution was evaporated under reduced pressure, and the residue was crystallized from acetonitrile and recrystallized from the same solvent to yield 0.82 mol of 2- [2- (3,5-dimethyl) pyridylmethylsulfinyl] -i ( 171 DEG C. 5-acetyl-6-methylbenzimidazoil.
Examples 2 to 30
The process for preparing the other compounds of formula (III) is carried out as in the example above. The prepared compounds are summarized in Table 1, where they are also labeled with substituents in these compounds.
Table 1
<img file="CS261872B2_D0004.tif" />
<td>Example number</td><td>R<sup>1</sup></td><td>R<sup>2</sup></td><td>R<sup>with</sup></td><td>R<sup>3</sup></td><td>R<sup>4</sup></td><td>R<sup>5</sup></td><td>Temperature thaw Deň: 32 ° C</td>
<td> 1</td><td>5-COCH3</td><td>6-CH3</td><td>H</td><td>H</td><td>CH3</td><td>CH3</td><td> 158</td>
<td> 2</td><td>5-COOCH 3</td><td>6-CH3</td><td>H</td><td>H</td><td>CH3</td><td>CH3</td><td> 163</td>
<td> 3</td><td>5-COOCH 3</td><td>H</td><td>H</td><td>H</td><td>CH3</td><td>CH3</td><td> 141</td>
<td> 4</td><td>5-COCH3</td><td>6-CH3</td><td>H</td><td>CH3</td><td>CH3</td><td>H</td><td> 160</td>
<td> 5</td><td>5-COOCH 3</td><td>6-CH3</td><td>H</td><td>CH3</td><td>CHs</td><td>H</td><td> 163</td>
<td> 6</td><td>4-CH3</td><td>6-CH3</td><td>H</td><td>CH3</td><td>H</td><td>CH3</td><td> 50 — 55</td>
<td> 7</td><td>5-COCHs</td><td>6-CH3</td><td>H</td><td>CH3</td><td>H</td><td>CHS</td><td> 171</td>
<td> 8</td><td>5-COCH3</td><td>6-CH3</td><td>H</td><td>CH3</td><td>CH3</td><td>CHs</td><td> 190</td>
<td> 9</td><td>5-COCH3</td><td>6-CH3</td><td>H</td><td>H</td><td>OCH3</td><td>H</td><td> 65</td>
<td> 10</td><td>4-CH3</td><td>6-CH3</td><td>H</td><td>H</td><td>OCH3</td><td>H</td><td> 122</td>
<td> 11</td><td>5-COCH3</td><td>6-CH3</td><td>H</td><td>CH3</td><td>OCH3</td><td>CH3</td><td> 156</td>
<td> 12</td><td>5-COOCHs</td><td>6-CH3</td><td>H</td><td>CH3</td><td>H</td><td>CH3</td><td> 144</td>
<td> 13</td><td>5-COOCHs</td><td>6-CH3</td><td>H</td><td>CH3</td><td>CH3</td><td>CH3</td><td> 185</td>
<td> 14</td><td>5-COOCH 3</td><td>6-CH3</td><td>H</td><td>H</td><td>OCH3</td><td>H</td><td> 169</td>
<td> 15</td><td>5-COOCH 3</td><td>6-CH3</td><td>H</td><td>H</td><td>OC2H5</td><td>H</td><td> 148</td>
<td> 16</td><td>5-COOCHs</td><td>6-CH3</td><td>H</td><td>CH3</td><td>OCH3</td><td>H</td><td> 175</td>
<td> 17</td><td>5-COOCH 3</td><td>6-CH3</td><td>H</td><td>CH3</td><td>OCHs</td><td>CH3</td><td> 155</td>
<td> 18</td><td>5-COOCH 3</td><td>6-CH3</td><td>H</td><td>H</td><td>OCH3</td><td>CHs</td><td> 158</td>
<td> 19</td><td>5-COOCH 3</td><td>H</td><td>H</td><td>CH3</td><td>H</td><td>CHs</td><td> 141</td>
<td> 20</td><td>5-COOCH 3</td><td>H</td><td>H</td><td>CH3</td><td>OCH3</td><td>CHs</td><td> 142</td>
<td> 21</td><td>5-COCH3</td><td>H</td><td>H</td><td>CH3</td><td>OCH3</td><td>CH3</td><td> 162</td>
<td> 22</td><td>5-OCH3</td><td>H</td><td>H</td><td>H</td><td>OCH3</td><td>CH3</td><td> 178</td>
<td> 23</td><td>5-OCH3</td><td> 11</td><td>H</td><td>CH3</td><td>OCH3</td><td>CH3</td><td> 156</td>
<td> 24</td><td>5-CH3</td><td>H</td><td>H</td><td>CH3</td><td>OCH3</td><td>CH3</td><td> 181</td>
<td> 25</td><td>II</td><td>H</td><td>H</td><td>CH3</td><td>OCH3</td><td>CH3</td><td> 165</td>
<td> 26</td><td>5-C1</td><td>H</td><td>H</td><td>CH3</td><td>OCH3</td><td>CHs</td><td> 185</td>
<td> 27</td><td>5-CH3</td><td>H</td><td>H</td><td>H</td><td>OC2H4OCH3</td><td>H</td><td> 119</td>
<td> 28</td><td>5-COOC2H5</td><td>H</td><td>H</td><td>CH3</td><td>OCH3</td><td>CH3</td><td> 150—155</td>
<td> 29</td><td>5-COOCH 3</td><td>H</td><td>CH3</td><td>CH3</td><td>H</td><td>CH3</td><td> 130</td>
<td> 30</td><td>5-CH3</td><td>H</td><td>CH3</td><td>CH3</td><td>H</td><td>CHs</td><td> 152</td>
<td colspan="2">Biological effect</td><td></td><td></td><td>čenin.</td><td colspan="3">After 18 hours of fasting, it was administered</td>
The compounds of the invention have valuable therapeutic properties as inhibitors of gastric acid secretion, as shown in the following tests. To determine the ability to inhibit gastric acid secretion, conscious experiments were performed on dogs with gastric fistula of the usual type and duodenal fistula, which is used for direct intraduodenal administration of test conduits, given to dogs. subcutaneously by infusion of pentagastrin (1-4 nmol / kg.h] lasting 6-7 hours. Gastric juice was collected in samples at 30 minute intervals. An aliquot of each sample was titrated with 0.1N sodium hydroxide to pH 7.0 to determine the titratable acid concentration, using an automatic titrator and pH meter (Radiometer, Copenhagen, Denmark). For 261872 the acid addition was calculated as mmol H<sup>+</sup>/60 minutes. The percent inhibition compared to the control was calculated for each compound and the highest inhibitory effect is given in Table 2. Test compounds suspended in 0.5% methylcellulose (Methocel)<sup>R</sup>), were administered intraduodenally at doses of 4 to 20 µmol / kg when the secretory response to pentagastrin reached a steady state level.
In the tests, the known compounds were compared with the compounds of the invention as shown in Table 2.
The following data on the effect of gastric acid inhibition were obtained for compounds tested by the method described.
<img file="CS261872B2_D0005.tif" />
<td>Example number</td><td>R<sup>1</sup></td><td>R<sup>2</sup></td><td>R<sup>6</sup></td><td>R<sup>3</sup></td><td>R<sup>4</sup></td><td>R<sup>5</sup></td><td>Dose μΐηοΐ / kg</td><td>Effect % inhibition</td>
<td> 1</td><td>5-COCH3</td><td>6-CH3</td><td>H</td><td>H</td><td>CH3</td><td>CH3</td><td> 2</td><td> 90</td>
<td> 4</td><td>5-COCHs</td><td>6-CH3</td><td>H</td><td>CH3</td><td>CH3</td><td>H</td><td> 1</td><td> 60</td>
<td> 7</td><td>5-COCH3</td><td>6-CH3</td><td>H</td><td>CH3</td><td>H</td><td>CH3</td><td> 2</td><td> 100</td>
<td> 8</td><td>5-COCH3</td><td>6-CH3</td><td>H</td><td>CHS</td><td>CHs</td><td>CH3</td><td> 4</td><td> 100</td>
<td> 9</td><td>5-COCH3</td><td>6-CH3</td><td>H</td><td>H</td><td>OCH3</td><td>H</td><td> 2</td><td> 95</td>
<td> 11</td><td>5-COCH3</td><td>6-CH3</td><td>H</td><td>CH3</td><td>OCH3</td><td>CH3</td><td> 0,5</td><td> 70</td>
<td>X</td><td>5-OOCH3</td><td>6-CH3</td><td>H</td><td>H</td><td>CH3</td><td>H</td><td> 20</td><td> 30</td>
<td>X</td><td>5-COCH3</td><td>6-CH3</td><td>H</td><td>H</td><td>H</td><td>CH3</td><td> 8</td><td> 80</td>
<td> 2</td><td>5-COOCH 3</td><td>6-CH3</td><td>H</td><td>H</td><td>CH3</td><td>CH3</td><td> 2</td><td> 60</td>
<td> 5</td><td>5-COOCH 3</td><td>6-CH3</td><td>H</td><td>CH3</td><td>CH3</td><td>H</td><td> 2</td><td> 90</td>
<td> 12</td><td>5-COOCH 3</td><td>6-CH3</td><td>H</td><td>CH3</td><td>H</td><td>CH3</td><td> 2</td><td> 70</td>
<td> 13</td><td>5-COO.CH3</td><td>6-CH3</td><td>H</td><td>CH3</td><td>CH3</td><td>CH3</td><td> 4</td><td> 80</td>
<td> 14</td><td>5-COOCH 3</td><td>6-CH3</td><td>H</td><td>H</td><td>OCH3</td><td>H</td><td> 2</td><td> 100</td>
<td> 15</td><td>5-COOCH 3</td><td>6-CH3</td><td>H</td><td>H</td><td>OC2H5</td><td>H</td><td> 4</td><td> 75</td>
<td> 16</td><td>5-COOCH 3</td><td>6-CH3</td><td>H</td><td>CH3</td><td>OCH3</td><td>H</td><td> 0,5</td><td> 65</td>
<td> 17</td><td>5-COOCH 3</td><td>6-CH3</td><td>H</td><td>CH3</td><td>OCHs</td><td>CH3</td><td> 0,5</td><td> 90</td>
<td> 18</td><td>5-COOCH 3</td><td>6-CH3</td><td>H</td><td>H</td><td>OCII3</td><td>CH3</td><td></td><td></td>
<td>X</td><td>5-COOCH 3</td><td>6-CH3</td><td>H</td><td>H</td><td>H</td><td>CH3</td><td> 4</td><td> 50</td>
<td>X</td><td>5-COOCH 3</td><td>6-CH3</td><td>H</td><td>Br</td><td>H</td><td>H</td><td> 4</td><td> 0</td>
<td> 6</td><td>4-CH3</td><td>6-CH3</td><td>H</td><td>CHs</td><td>H</td><td>CHs</td><td> 4</td><td> 40</td>
<td> 10</td><td>4-CH3</td><td>6-CH3</td><td>H</td><td>H</td><td>OCH3</td><td>H</td><td> 2</td><td> 40</td>
<td>X</td><td>4-CH3</td><td>6-CH3</td><td>H</td><td>H</td><td>H</td><td>H</td><td> 4</td><td> 30</td>
<td>X</td><td>4-CH3</td><td>6-CH3</td><td>H</td><td>H</td><td>H</td><td>CHs</td><td> 12</td><td> 50</td>
<td> 3</td><td>5-COOCH 3</td><td>H</td><td>H</td><td>H</td><td>CH3</td><td>CH3</td><td> 4</td><td> 100</td>
<td> 19</td><td>5-COOCH 3</td><td>H</td><td>H</td><td>CH3</td><td>H</td><td>CH3</td><td> 2</td><td> 60</td>
<td> 20</td><td>5-COOCH 3</td><td>H</td><td>H</td><td>CH3</td><td>OCH3</td><td>CH3</td><td> 0,5</td><td> 65</td>
<td>X</td><td>5-COOCH 3</td><td>H</td><td>H</td><td>H</td><td>H</td><td>CH3</td><td> 20</td><td> 90</td>
<td>X</td><td>5-COOCH 3</td><td>H</td><td>H</td><td>H</td><td>H</td><td>H</td><td> 20</td><td> 50</td>
<td> 21</td><td>5-COCH3</td><td>H</td><td>H</td><td>CH3</td><td>OCH3</td><td>CHs</td><td> 0,5</td><td> 60</td>
<td>X</td><td>5-COCH3</td><td>H</td><td>H</td><td>H</td><td>H</td><td>C2H5</td><td> 20</td><td> 40</td>
<td> 22</td><td>5-OCH3</td><td>H</td><td>H</td><td>H</td><td>OCH3</td><td>CHs</td><td></td><td></td>
<td> 23</td><td>5-OCH3</td><td>H</td><td>H</td><td>CH3</td><td>OCH3</td><td>CH3</td><td> 0,5</td><td> 65</td>
<td>X</td><td>5-OCH3</td><td>H</td><td>H</td><td>H</td><td>CH3</td><td>H</td><td> 20</td><td> 10</td>
<td> 24</td><td>5-CH3</td><td>H</td><td>H</td><td>CH3</td><td>OCH3</td><td>CH3</td><td> 0,5</td><td> 50</td>
<td>X</td><td>5-CH3</td><td>H</td><td>H</td><td>H</td><td>H</td><td>CH3</td><td> 4</td><td> 50</td>
<td> 25</td><td>H</td><td>H</td><td>H</td><td>CHs</td><td>OCH3</td><td>CH3</td><td> 0,5</td><td> 60</td>
<td>X</td><td>H</td><td>H</td><td>H</td><td>H</td><td>H</td><td>H</td><td> 4</td><td> 50</td>
<td> 28</td><td>5-COOC2H5</td><td>H</td><td>H</td><td>CH3</td><td>OCH3</td><td>CH3</td><td> 0,5</td><td> 50</td>
<td> 26</td><td>5-C1</td><td>H</td><td>H</td><td>CH3</td><td>OCH3</td><td>CH3</td><td> 0,5</td><td> 25</td>
<td> 27</td><td>5-CH3</td><td>H</td><td>H</td><td>H</td><td>OC2H4OCH3</td><td>H</td><td> 0,5</td><td> 30</td>
<td> 29</td><td>5-COOCH 3</td><td>H</td><td>CHS</td><td>CH3</td><td>H</td><td>CHs</td><td> 0,5</td><td> 40</td>
x - designation for a previously known compound
Example 31
Syrup containing 2 wt. by volume of the active substance are prepared from the following components:
2- [2- (4,5-dimethyl) pyridyllmethylsulfinyl] - (5-acetyl-6-methyl) benzimidazole hydrochloride saccharin sugar glycerin flavor ethanol, 96% distilled water
2.0 g 0.6 g
30.0 g 5.0 g 0.1 g
10.0 ml ad 100 mil
The sugar, saccharin and acid addition salt are dissolved in 60 g of warm water. After cooling, glycerin and a flavoring solution dissolved in ethanol are added. Water was added to the final volume of 100 ml.
The above active ingredient may be replaced by another pharmaceutically acceptable acid addition salt.
is compressed into a total of 10,000 tablets, each containing 25 mg of active ingredient. Tablets can be prepared which contain any desired amount of active ingredient.
Example 33
The granules are prepared from 250 g of 2- (3,5-trimethyl) pyridylmethylsulphinyl] - (5-acetyl-6-methyl) benzimidazoil-p-hydroxybenzoate, 175.9 g of lactose and an alcohol solution of 25 g of polyvinylpyrrolidone. For drying, the granules are mixed with 25 g of talc, 40 g of potato starch and 2.50 g of magnesium stearate and compressed into 10,000 tablets, which are first coated with a 10% alcoholic shellac solution followed by an aqueous solution containing 4'5% sucrose. % gum arabic, 4% gelatin and 0.2% dye. Talc and powdered sugar are used for dusting after the first five layers. The coating is then coated with 66% sugar syrup and polished with a solution of 10% carnauba wax in carbon tetrachloride.
Example 32
Example 34
250 g 2- [2- (3,4-dimethyl) pyridylmethylsulfinyl] - (5-acetyil-6-methyl) benzimidazole hydrochloride is mixed with 175.8 g lactose, 169.7 g potato starch and 32 g colloidal silicic acid. The mixture is moistened with a 10% gelatin solution and passed through a 1.41 mm sieve. After drying, 160 g of potato starch, 50 g of talc and 5 g of magnesium stearate are added, and the thus obtained mixture of g of 2- [2- (3,5-dimethyl) pyridylmethylsulfinyl] - (5-acetyl-6-methyl) benzimidazole hydrochloride, 0.6 g of sodium chloride and 0.1 g of ascorbic acid are dissolved in such quantity of distilled water as to obtain 100 ml of solution, which solution containing 10 mg / ml of the active substance is used to fill ampoules which are sterilized by heating to 120 ° C for 20 minutes.
5 sheets
Sheet 1 Sheet 2 Sheet 3 Sheet 4 Sheet 5
89 members in 27 offices
Priority claims5
| Document | Office | Kind | Date |
|---|---|---|---|
| 7804231 | Sweden | A | |
| 254979 | Czechoslovakia (until 1993) | A | |
| 787804231 | – | – | – |
| CS19790002549 | – | – | – |
| SE19780004231 | – | – | – |
Members89
| Document | Office | Kind | |
|---|---|---|---|
| IE790785L | Ireland | L | |
| DK151179A | Denmark | A | |
| FI791219A | Finland | A | |
| SE7804231L | Sweden | L | |
| NO791227L | Norway | L | |
| NO840112L | Norway | L | |
| AU4602779A | Australia | A | |
| EP0005129A1 | European Patent Office (EPO) | A1 | |
| JPS54141783A | Japan | A | |
| ZA791586B | South Africa | B | |
| DD142882A5 | German Democratic Republic (until 1990) | A5 | |
| US4255431A | United States of America | A | |
| EP0005129B1 | European Patent Office (EPO) | B1 | |
| DE2960293D1 | Germany | D1 | |
| SU873879A3 | Soviet Union (until 1991) | A3 | |
| SU873880A3 | Soviet Union (until 1991) | A3 | |
| SU878196A3 | Soviet Union (until 1991) | A3 | |
| SU895292A3 | Soviet Union (until 1991) | A3 | |
| US4337257A | United States of America | A | |
| CA1127158A | Canada | A | |
| CA1129417A | Canada | A | |
| HU179022B | Hungary | B | |
| DK420982A | Denmark | A | |
| AU529654B2 | Australia | B2 | |
| FI832220A0 | Finland | A0 | |
| FI832220L | Finland | L | |
| ATA100683A | Austria | A | |
| ATA100783A | Austria | A | |
| ATA273279A | Austria | A | |
| JPS58192880A | Japan | A | |
| FI65067B | Finland | B | |
| ATA100583A | Austria | A | |
| HK15284A | Hong Kong, China | A | |
| FI65067C | Finland | C | |
| NZ190203A | New Zealand | A | |
| NZ198425A | New Zealand | A | |
| NZ198426A | New Zealand | A | |
| NZ198427A | New Zealand | A | |
| AT374471B | Austria | B | |
| AT374472B | Austria | B | |
| AT374473B | Austria | B | |
| CY1232A | Cyprus | A | |
| AT375365B | Austria | B | |
| SG63383G | Singapore | G | |
| IE48370B1 | Ireland | B1 | |
| US4508905A | United States of America | A | |
| NO152216B | Norway | B | |
| JPS6034956B2 | Japan | B2 | |
| NO152785B | Norway | B | |
| NO152216C | Norway | C | |
| NO152785C | Norway | C | |
| MY8500074A | Malaysia | A | |
| FI70214B | Finland | B | |
| FI70214C | Finland | C | |
| DK150510B | Denmark | B | |
| DK150510C | Denmark | C | |
| DK151802B | Denmark | B | |
| DK151802C | Denmark | C | |
| CS254979A2 | Czechoslovakia (until 1993) | A2 | |
| CS576784A2 | Czechoslovakia (until 1993) | A2 | |
| CS576884A2 | Czechoslovakia (until 1993) | A2 | |
| CS576984A2 | Czechoslovakia (until 1993) | A2 | |
| JPS6353191B2 | Japan | B2 | |
| CS261851B2 | Czechoslovakia (until 1993) | B2 | |
| CS261872B2This record | Czechoslovakia (until 1993) | B2 | |
| CS261873B2 | Czechoslovakia (until 1993) | B2 | |
| CS261874B2 | Czechoslovakia (until 1993) | B2 | |
| ATA290483A | Austria | A | |
| AT389995B | Austria | B | |
| NL930074I1 | Netherlands (Kingdom of the) | I1 | |
| NL930075I1 | Netherlands (Kingdom of the) | I1 | |
| LT2274B | Lithuania | B | |
| LT2275B | Lithuania | B | |
| LT2276B | Lithuania | B | |
| LT2277B | Lithuania | B | |
| NL930074I2 | Netherlands (Kingdom of the) | I2 | |
| NL930075I2 | Netherlands (Kingdom of the) | I2 | |
| LV5487A3 | Latvia | A3 | |
| LV5488A3 | Latvia | A3 | |
| LV5489A3 | Latvia | A3 | |
| LV5502A3 | Latvia | A3 | |
| LU88305I2 | Luxembourg | I2 | |
| LU88307I2 | Luxembourg | I2 | |
| NO1994027I1 | Norway | I1 | |
| NO1995005I1 | Norway | I1 | |
| NO1995006I1 | Norway | I1 | |
| BG61492B2 | Bulgaria | B2 | |
| ATA141189A | Austria | A | |
| AT406119B | Austria | B |
Numbers
- Publication, DOCDB
- 261872
- Publication, EPODOC
- CS261872
- Application
- 845767
- Application, DOCDB
- 576784
- Application, EPODOC
- CS19840005767
Titles2
- Czech
- Zpusob výroby 2-pyridylmethylsulfinylbenzimidazolu
- English
- PROCESS FOR PREPARING 2-PYRIDYLMETHYLSULPHINYLBENZIMIDAZOLES
Classification
- IPC, 1
- C07D401 12
