Claims
- 1. A system for analyzing a large number of sample compounds, the system comprising:
a plurality of arrays, each array having a plurality of regions for holding samples; an array transport system for translating the arrays sequentially along an array path; at least one microfluidic device disposed off the array path, the microfluidic device having a sample input port and a channel system with a channel cross sectional dimension in a range from about 0.1 μm to about 500 μm; and a transportation mechanism which moves each array from the array path and sequentially aligns the regions of the array with the port of the microfluidic device.
- 2. The system of claim 1, further comprising a microfluidic device interface structure supporting the microfluidic device at a fixed position.
- 3. The system of claim 2, wherein the interface structure comprises a fixed base and a lid, the lid being pivotally coupled to the base so that the microfluidic device is removably restrainable therebetween, at least one of the lid and the base defining a window, and wherein an optical detection system is optically coupled to the channel system through the window for monitoring an optical characteristic of a reaction within the channel system.
- 4. The system of claim 2, wherein the interface structure further comprises at least one electrode extending fixedly from one of the base and the lid for coupling an electrical potential source to fluid within the channel system.
- 5. The system of claim 1, wherein the arrays comprise plates and the regions comprise wells wherein a group of the wells on each plate are aligned along a first well alignment axis, and wherein the transportation mechanism can translate the plate with a first degree of freedom along the first well axis to sequentially introduce samples from the group into the sample input port.
- 6. The system of claim 5, wherein the wells of the plate define an array having a second well alignment axis between a plurality of groups, and wherein the transportation mechanism can translate the plate with a second degree of freedom along the second well axis to introduce samples from the groups into the sample input port.
- 7. The system of claim 5, wherein the transportation mechanism can move the plate horizontally along the first degree of freedom so that the wells are aligned sequentially with the sample input port, and can lift the plate so that the sample input port extends into the samples within the aligned well, the sample input port comprising a pipettor rigidly coupled to the channel system of the microfluidic device.
- 8. The system of claim 5, wherein the transportation system comprises a robotic arm having at least two degrees of freedom.
- 9. The system of claim 1, wherein each array comprises a plate having a top surface defining an upward orientation, two pairs of horizontally opposed edge surfaces, and a lower surface, the regions defining wells and the lower surface defining a recess between the wells and an edge surface, and wherein the transportation mechanism comprises a rigid support bracket having a beam extending from a proximal pair of horizontally spaced sidewalls to an upwardly oriented tab, wherein the recess of the plate fittingly receives the tab and the sidewalls fittingly receive a pair of the edge surfaces when the plate rests on the bracket.
- 10. The system of claim 9, wherein the plate transport system comprises a conveyor, wherein the transportation mechanism further comprises a plurality of lifting pins disposed along the plate path to engage the bottom surfaces of the plates, and wherein the pins receive the beam therebetween so as to facilitate transferring the plates between the conveyor and the bracket.
- 11. The system of claim 1, further comprising a dilution station disposed along the array path before the transportation mechanism for diluting the samples.
- 12. A system for analyzing a large number of samples, the system comprising:
a plurality of plates, each plate having an array of wells; a plate conveyor for translating the plates along a plate path; at least one test station disposed along the plate path, the at least one test station comprising:
a microfluidic substrate having a sample input port in fluid communication with at least one channel disposed within the substrate, the channel having a cross sectional dimension in a range from about 0.1 μm to about 500 μm; a plurality of lifting pins to sequentially lift the plates from the conveyor; and a plate transportation mechanism which moves the lifted plates from the plate path with at least two degrees of freedom to sequentially align the wells of the plate with the input port of the substrate, wherein the transportation mechanism comprises a rigid plate support bracket which fittingly receives the plate when the plate rests on the bracket.
- 13. The system of claim 12, wherein the bracket comprises a beam extending from adjacent a proximal pair of horizontally spaced sidewalls to an upwardly oriented distal tab, wherein the pins receive the beam and tabs therebetween, and wherein a recess of the plate fittingly receives the tab and the sidewalls fittingly receive a pair of horizontally opposed edge surfaces of the plate when the beam lifts the plate.
- 14. A method for testing a large number of samples, the method comprising:
arranging the samples at a plurality of regions, the regions disposed on a plurality of arrays; transporting the arrays along an array path; removing the arrays from the path and sequentially aligning the regions of the removed array with a fluid inflow port of a microfluidic device so that the samples are transferred sequentially from the regions into a channel system, the channel system having a channel cross sectional dimension in a range from about 0.1μ to about 500 μm.
- 15. A system for analyzing a large number of sample compounds, the system comprising;
a plurality of arrays, each array having a plurality of regions for holding samples; an array transport system to translate the arrays sequentially along an array path; a batch process station disposed along the array path for simultaneously processing the samples of an array; at least one sample test device disposed off the array path, the test device having a sample input port; and a transportation mechanism which moves each array from the array path and sequentially aligns the regions of the array with the port of the test device.
- 16. A system for analyzing samples, the system comprising:
a microfluidic device having a channel system with a channel cross sectional dimension in a range from about 0.1 μm to about 500 μm; an interface structure supporting the microfluidic device, the structure comprising a base and a lid movably coupled to the base so that the microfluidic device is restrainable therebetween, at least one of the lid and the base defining a window; and an optical detection system optically coupled to the channel system through the window of the interface structure for monitoring an optical characteristic of a reaction within the channel system.
- 17. The system of claim 16, wherein the lid rotatably engages the base so as to move between an open position and a closed position, and further comprising at least one electrode mounted within the lid, the at least one electrode extending into the channel system of the microfluidic device when the lid is disposed in the closed position, the at least one electrode being clear of the microfluidic device so that the microfluidic device is removable from the support structure when the lid is in the open configuration.
- 18. A system for analyzing samples, the system comprising:
at least one microfluidic device having a channel system with a channel cross sectional dimension in range from about 0.1 μm to about 500 μm; a support structure supporting the microfluidic device, the support structure comprising a base and a lid, wherein the lid rotatably engages the base so as to move between an open position and a closed position; and at least one electrode mounted within the lid, the at least one electrode extending into the channel system of the microfluidic device when the lid is disposed in the closed position, the at least one electrode being clear of the microfluidic device so that the microfluidic device is removable from the support structure when the lid is in the open position.
- 19. A system for testing a large number of sample compounds, the system comprising:
at least one sample array; a sample transfer mechanism to distribute the samples from the sample array to a plurality of reusable arrays; an array transport system translates the reusable arrays sequentially along an array path from the sample transfer mechanism; at least one microfluidic device disposed along the array path, the device having a sample input port that admits the samples from the reusable arrays into a channel system with a channel cross sectional dimension in a range from about 0.1 μm to about 500 μm; and a cleaning system disposed along the array path for removing the samples from the arrays.
- 20. A system as claimed in claim 19, wherein the reusable arrays comprise a conductive material exposed to the regions so as to facilitate coupling an electrical potential to the samples.
- 21. A system for screening a large number of test compounds in a screening assay, comprising:
a first sample array or set of sample arrays, comprising at least 1,000 different test compounds, each of the test compounds disposed in a separate region of the first sample array or set of sample arrays; a dilution system for separately sampling each of the different test compounds, and delivering each of the different test compounds to a different region on a second sample array or set of sample arrays, the second sample array or set of sample arrays comprising a plurality of different regions for retaining a sample; a screening apparatus for contacting each different test compound with a biochemical system, and monitoring an effect, if any, of the test compound on the biochemical system; a sampling system for sampling each of the test compounds from the second sample array or set of sample arrays, and delivering each of the test compounds to the screening apparatus; and a sample array recycling system for removing the different test compounds from the second sample array or set of sample arrays, drying the second sample array or set of sample arrays, and moving the second sample array or set of sample arrays into position to receive test compounds from the dilution system.
- 22. In a screening system for screening a large number of test compounds for an effect on a biochemical system, an intermediate sample dilution array, comprising:
a dilution system for sampling each of a plurality of different test compounds and delivering at least a first dilution of the test compound to an intermediate sample array, the intermediate sample array comprising a plurality of sample arrays each comprising a plurality of different regions, each region being capable of retaining a different test compound solution therein; a sample array recycling system for removing the different test compound solutions from each of the different regions on the sample array, drying the sample array and placing the sample array in a position to receive additional diluted test compounds from the dilution system.
- 23. A method of screening a range of dilutions of a plurality of different test compounds for an effect on a biochemical system, comprising:
sampling each test compound in a library comprising a plurality of test compounds; delivering each test compound as a diluted test compound to a separate region in an intermediate sample array; sampling each diluted test compound from the intermediate sample array and containing the diluted test compound with at least one component of a biochemical system to detect an effect of the test compound on the biochemical system; and recycling the intermediate sample array by removing each diluted test compound from the intermediate sample array, and placing the intermediate sample array in a position to receive additional diluted test compounds.
- 24. A system for testing a large number of sample compounds, the system comprising:
at least one reusable sample array, the reusable array having a plurality of regions for holding the samples, the reusable array comprising a conductive material exposed to the regions; at least one microfluidic device, the device having a channel system with a channel cross sectional dimension in a range from about 0.1 μm to about 500 μm; and a sample transfer mechanism for transferring samples from the sample array to a plurality of reusable arrays, the sample transfer mechanism comprising a fluid inflow port in fluid communication with the channel system, the port alignable with the regions of the reusable arrays, and at least one electrode exposed to the channel system so as to form an electrical circuit through the port to the conductive material of the reusable array.
- 25. The system of claim 24, wherein the at least one sample array comprises a metal multi-well plate having a plurality of wells, the wells defining the regions, the plate operatively coupled to an electrical power supply so as to apply a voltage to the wells of the plate.
- 26. The system of claim 25, wherein the at least one sample array comprises a conductive layer disposed over a non-conductive plate material defining a plurality of wells so that the conductive layer operatively couples an electrical power supply to the well.
CROSS-REFERENCES TO RELATED APPLICATIONS
[0001] The present application is a divisional patent application of and claims the benefit of priority from U.S. patent application Ser. No. 09/132,096 filed Aug. 10, 1998, the full disclosure of which is incorporated herein by reference.
Divisions (2)
|
Number |
Date |
Country |
Parent |
09545241 |
Apr 2000 |
US |
Child |
10244227 |
Sep 2002 |
US |
Parent |
09132096 |
Aug 1998 |
US |
Child |
09545241 |
Apr 2000 |
US |