EP1525451A1

Method of analysing a catalytic system using an integrated microfluidic device

Abstract

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Projected expiry passed 29 April 2023, 3.4 years ago.

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22 claims: 16 independent, 6 dependent

  1. 1
    Claims of equivalent WO 03093802 A1 C L A I M S 1. A method for characterizing an uncharacterized aspect of the components Ani, An2 ....Ann (analytes) of a plurality of equal or different catalytic systems CSi, CS .... CSn, respectively, characterized in comprising the steps of:i) providing a microfluidic device which comprises a plurality (n) of essentially identical microchannel structures, each of the microchannel structures comprising in the downstream direction (a) an inlet aπangement IA with at least one inlet port;(b) a catalytic microcavity MCI, which comprises an immobilized component Clm of the catalytic system CS used in the microchannel structure, and (c) a detection zone (DZ);ii) distributing to MCI of each of the microchannel structures the remaining components of the CS used in the microchannel structure by a) dispensing to the inlet aπangement LA of each of the microchannel structures said remaining components;and b) transporting coπesponding components for the microchannel structures in parallel to load the MCI in each of the microchannel structures;iii) performing the catalytic reaction in MCI of each of the microchannel structures;iv) transporting in parallel the product formed in step (iii) from MCI to DZ of each of the microchaimel structures, if DZ and MCI do not coincide;v) detecting and characterizing for each of the microchannel structures the result of the catalytic reaction performed in MCI in DZ;and vi) characterizing for each of the microchannel structures the uncharacterized aspect of Ani, An2 ....Ann from the results of step (v).
  2. 3
    The method of any of claims 1-2, characterized in that the catalytic system is selected amongst biocatalytic systems for instance amongst a) enzyme systems in which at least one of the components is a protein and/or a synthetic variant micking a protein enzyme, and/or b) polynucleotide based catalytic systems.
  3. 4
    The method of any of claims 1-3, characterized in that the catalytic system is an enzyme system.
  4. 5
    The method of any of claims 1-4, characterized in that the catalytic system is an enzyme system selected amongst hydrolases (esterases, carbohydrases, proteases etc), phosphorylases, oxidoreductases (dehydrogenases, oxidases etc), transferases, decarboxylases, hydrases, isomerases etc.
  5. 6
    The method of any of claims 1-5, characterized in that the immobilized form is selected from catalysts, substrates, cosubstrates, cocatalysts, cofactors, cocatalyts etc.
  6. 7
    The method of any of claims 1-6, characterized in that the immobilized fonn comprises a matrix which is a) the inner walls of MCI , or b) a packed bed of non-porous or porous particles, or c) a porous monolith, e.g. in the form of a membrane or a porous plug.
  7. 8
    The method of any of claims 1-7, characterized in that a) DZ comprises I) a retaining microcavity MC2, which comprises an adsorption media that is capable of adsorbing at least partially excess substrate, the digestion product or contaminants in the excess substrate or the digestion product, and II) a detection microcacity MC3 downstream to or overlapping and/or coinciding with MC2, and b) step (iii) comprises parallel adsorption of the digestion product, excess substrate or the contaminants to the adsorbent in MC2.
  8. 10
    The method of any of claims 8-9, characterized in that there is an overlap between MC3 and MCI.
  9. 11
    The method of any of claims 8-10, characterized in that there is an overlap between MC3 and MC2.
  10. 12
    The method of any of claims 1-11, characterized in that DZ comprises an interface permitting spectrometric analysis of the result of the catalytic reaction taking place in MCI, and that step (v) comprises recording in DZ a spectra reflecting the result of the catalytic reaction. 5
  11. 16
    The method of any of claims 1-15, characterized in that microconduits leading to or from a microcavity, in particular at least one of MCI, MC2 and MC3, comprises anti- 5 wicking means.
  12. 17
    The method of any of claims 1-16, characterized in that an aqueous liquid is used for transporting the components within the microchannel structures and that the inner walls are wettable by this liquid. 0
  13. 19
    The method of any of claims 17-18, characterized in that the device has an axis of symmetry and that the liquid transport in at least a part of each microchannel structure is driven by centrifugal force created by spinning the device around its axis of symmetry.
  14. 20
    The method of any of claims 1-19, characterized in that the device is in the form of a disc, and, if present, said axis of symmetry is perpendicular to the plane of the disc.
  15. 21
    The method of any of claims 1-20, characterized in that there is a passive valve in association with the outlet of the catalytic microcavity and/or if a retaining microcavity and/or a detection microcavity is/are present also with the outlet of each of these microcavities.
  16. 22
    The method of any of claims 1-20, characterized in that at least one of MCI, MC2 and MC3 has a volume in the nl-range.