Nova Patents
EP1577010A2

Microsystem platform and its use

Abstract

A microsystem platform comprises a substrate in the form of a disc, which has a first flat, planar surface (31) comprising a multiplicity of microchannels and at least one sample input means (11) embedded therein. The disc has also a second flat, planar surface (27) opposite to the first surface. The sample input means (11) of the disc and its microchannels are connected and in fluidic contact with each other and with air vents (29,33,34,35). The disc has a centrally located aperture that is designed to be engaged by a spindle of a micromanipulation device that induces rotational motion to the microsystem platform when that is placed on the spindle. By such rotational motion, a volume of a fluid within the microchannels of the platform is moved through said microchannels by centripetal force arising from rotational motion of the platform sufficient to move the fluid through the microchannels. Also disclosed are important elements of a microsystem platform, such as reaction chambers (16,22,24), microvalves (15,17,19,21, 23,25), inlet and outlet ports (11,32), as well as a system for performing microanalytical and microsynthetic assays of biological, chemical, environmental and industrial samples. This system comprises a microsystem platform and a micromanipulation device designed to rotate the first.

EP1577010A2, drawing sheet 1
Sheet 1 of 82

Term

Term ended

Projected expiry passed 5 December 2016, 9.8 years ago.

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28 claims: 19 independent, 9 dependent

  1. 1
    A microsystem platform that comprises a substrate, which has a first flat, planar surface (31) comprising a multiplicity of microchannels and at least one sample input means (11) embedded therein, the sample input means (11) and the microchannels being connected and in fluidic contact with each other and with air vents (29,33,34,35), and which substrate has a second flat, planar surface (27) opposite to the first surface, wherein the first flat, planar surface and second flat, planar surface of the microsystem platform form a disk with a centrally located aperture that is designed to be engaged by a spindle of a micromanipulation device that induces rotational motion to the microsystem platform when that is placed on the spindle, a volume of a fluid within the microchannels of the platform being moved through said microchannels by centripetal force arising from rotational motion of the platform sufficient to move the fluid through the microchannels.
  2. 3
    The microsystem platform of claims 1 or 2, wherein the air vents (29,33,34,35) extend in a direction inclined to the radius of the microsystem platform, the opening at the first flat, planar surface (31) being closer to the spindle than the opening that mouths into a microchannel or into a reaction chamber (16,22,24).
  3. 4
    The microsystem platform of claims 2 or 3, wherein the reagent reservoirs (12,14,18,20) are controlled by valves (13,15,17,19,21,23,25) connected thereto.
  4. 5
    The microsystem platform of any one of the preceding claims, wherein the second flat, planar surface opposite to the first flat planar surface of the platform is encoded with an eletromagnetically-readable instruction set for controlling rotational speed, duration, or direction of the platform.
  5. 6
    The microsystem platform of any one of the preceding claims, which further comprises a material selected from the group consisting of silicon, silica, quartz, a ceramic, a metal or a plastic.
  6. 7
    The microsystem platform of any one of the preceding claims, wherein the radius of the disc is 1 to 25 cm and the thickness of the disc is 0.1 to 100 mm.
  7. 10
    The microsystem platform of any one of the preceding claims, wherein the microsystem platform comprises a multiplicity of sample input means (11), reagent reservoirs (12,14,18,20), reaction chambers (16,22,24) and microchannels.
  8. 11
    The microsystem platform of any one of the preceding claims, wherein the microsystem platform comprises an optically transparent detecting chamber embedded within the first planar surface (31) of the platform and connected to a microchannel.
  9. 12
    The microsystem platform of any one of the preceding claims, wherein the microsystem platform comprises at least one selected from a group comprising filtering means, mixing elements, and a static mixer comprising a textured surface, linked to a reaction reservoir or a microchannel.
  10. 14
    The microsystem platform of any one of the preceding claims, wherein the second flat, planar surface (27) of the microsystem platform is encoded with machine language instructions, readable with a compact disc reader.
  11. 16
    The microsystem platform of any one of the preceding claims, wherein the microsystem platform comprises a multiplicity of sample inlet ports (11), arranged concentrically around the center of the platform, and wherein each of the sample inlet ports (11) is operatively linked to a multiplicity of microchannels arrayed radially away from the center of the platform, said microchannels being operatively linked to a multiplicity of reagent reservoirs containing a reagent specific for the analyte to be measured, wherein release of the reagent from each of the reservoirs is controlled by a valve, and wherein the multiplicity of microchannels is also operatively linked to a multiplicity of analyte detection chambers arranged peripherally around the outer edge of the microplatform, wherein movement of the biological sample from the sample inlet port and through the microchannel, and movement of the reagent from the reagent reservoir and through the microchannel, is motivated by centripetal force generated by rotational motion of the microsystem platform.
  12. 17
    A system for performing microanalytical and microsynthetic assays of biological, chemical, environmental and industrial samples, the system comprising a microsystem platform according one of the preceding claims and a micromanipulation device, wherein the micromanipulation device comprises a base, a rotating means with a spindle, a power supply, a user interface and operations controlling means, wherein the rotating means is operatively linked to the microsystem platform and in rotational contact therewith, to induce rotational motion of the microsystem platform that is placed on the spindle, a volume of a fluid within the microchannels of the platform being thereby moved through said microchannels by centripetal force arising from rotational motion of the platform sufficient to move the fluid through the microchannels.
  13. 20
    The system of claims 18 or 19, wherein the detecting means comprises a light source and a photodetector, and wherein the detecting means is designed to detect absorbance, fluorescence, chemiluminescence, light-scattering or radioactivity.
  14. 21
    The system of any one of claims 17 to 20, wherein the micromanipulation device comprises a temperature controlling element and a thermal detecting unit in thermal contact with the microsystem platform.
  15. 22
    The system of any one of claims 17 to 21, wherein the micromanipulation device comprises a microprocessor, a memory connected thereto and a compact disc reading/writing means.
  16. 23
    The system of any one of claims 17 to 22, comprising first and second microsystem platforms in contact with one another across one planar surface of each microsystem platform.
  17. 26
    The method of one of claims 24 or 25, wherein the biological sample is blood, urine, cerebrospinal fluid, plasma, saliva, semen, or amniotic fluid.
  18. 27
    The method of one of claims 24 to 26, wherein the signal detected in the analyte detection chamber is detected at a frequency equal to the frequency of rotation of the platform or multiples thereof, and wherein the signal detected is selected form a group comprising, a monochromatic light signal, a fluorescence signal, a chemiluminescence signal and a colorimetric signal.
  19. 28
    The method of one of claims 24 or 25, wherein the sample is an environmental sample comprising particles, and wherein the particles are detected by coherent light scattering.
Independent claims19