Claims
- 1. A method for loading a test plate with a sample of biomolecular analyte that is disposed about a bead that is magnetically attractable, the method comprising the steps of:
activating an electromagnetic loading device to electromagnetically attract and carry the bead; positioning the electromagnetic loading device adjacent an opening of the test plate; and deactivating the electromagnetic loading device to release the bead at the opening of the test plate such that the sample of biomolecular analyte is loaded on the test plate.
- 2. The method of claim 1 further comprising the step of:
activating an electromagnetic unloading device that provides a force on the bead in a direction away from the electromagnetic loading device and toward the opening of the test plate.
- 3. The method of claim 1 wherein the step of positioning the electromagnetic loading device includes the step of:
actuating a robotic assembly that supports the electromagnetic loading device such that the electromagnetic loading device moves to a programmed position relative to the test plate.
- 4. A method for loading a test plate with a sample of biomolecular analyte that is disposed within a solution, comprising the steps of:
positioning a capillary adjacent an opening of the test plate; activating an electrokinetics device coupled to a capillary such that the sample is drawn through the capillary onto the test plate using electrokinetics; and deactivating the electrokinetics device such that the sample is no longer drawn through the capillary.
- 5. The method of claim 4 wherein the step of activating includes the step of:
dispensing a fluid droplet of the sample onto the test plate.
- 6. A test module assembly, comprising:
a dielectric plate member having an upper planar surface and a lower planar surface that is spaced apart from and coplanar with the upper planar surface, the dielectric plate member having at least one set of channels that includes an injection channel and a separation channel, the injection channel extending from the upper planar surface to the lower planar surface, the separation channel extending within the dielectric plate member in a plane parallel with the upper and lower planar surfaces and intersecting the injection channel.
- 7. The test module assembly of claim 6 wherein the injection channel intersects the separation channel at a right angle.
- 8. The test module assembly of claim 7 wherein the injection channel terminates at the upper and lower planar surfaces at right angles to the upper and lower planar surfaces.
- 9. The test module assembly of claim 6 wherein the injection channel terminates at the upper and lower planar surfaces at right angles to the upper and lower planar surfaces.
- 10. The test module assembly of claim 6 wherein the dielectric plate member is wedge shaped.
- 11. The test module assembly of claim 6 further comprising:
a housing that attaches to the dielectric plate member, the housing providing (i) a first opening over the upper planar surface such that a first end of the injection channel is accessible through the first opening, and (ii) a second opening over the lower planar surface such that a second end of the injection channel is accessible through the second opening.
- 12. The test module assembly of claim 11 wherein the housing further provides a third opening over the upper planar surface such that the separation channel is accessible to a detection device through the third opening.
- 13. The test module assembly of claim 11 further comprising:
a heating device, supported by the housing, that provides heat to the dielectric plate member when power is provided to the heating device.
- 14. The test module assembly of claim 11 further comprising:
a first porous membrane that covers the first end of the injection channel and a second porous membrane that covers the second end of the injection channel to retain a matrix within the injection and separation channels, the first and second porous membranes being adhered to the dielectric plate member.
- 15. The test module assembly of claim 11 further comprising:
an electromagnetic unloading device, coupled to the housing, that draws magnetic material towards the dielectric plate member when the electromagnetic unloading device is activated.
- 16. The test module assembly of claim 6 wherein the dielectric plate member includes multiple sets of channels, each set of channels including an injection channel and a separation channel, the injection channel of each set extending from the upper planar surface to the lower planar surface, the separation channel of each set extending within the dielectric plate member in a plane parallel with the upper and lower planar surfaces and intersecting the injection channel of that set.
- 17. The test module assembly of claim 16 wherein the injection channels of the multiple sets of channels are parallel with each other.
- 18. A method for separating a sample of biomolecular analyte, comprising the steps of:
drawing the sample along a longitudinal axis of an injection channel of a test plate using electrokinetics, the test plate being planar in shape along an orthogonal axis to the longitudinal axis; and subsequently drawing the sample along the orthogonal axis through a separation channel of the test plate using electrokinetics, the separation channel intersecting the injection channel within the test plate.
- 19. The method of claim 18 further comprising the steps of:
drawing multiple samples along the longitudinal axes of multiple other injection channels using electrokinetics simultaneously with the step of drawing the sample; and drawing the multiple samples along other orthogonal axes through multiple other separation channels using electrokinetics, the multiple other separation channels respectively intersecting the multiple other injection channels.
- 20. The method of claim 19 further comprising the step of:
scanning a respective portion of the separation channel and the multiple other separation channels with a detection device.
- 21. A test module assembly, comprising:
a rotatable dielectric plate member having an upper planar surface and a lower planar surface that is spaced apart from and coplanar with the upper planar surface, the rotatable dielectric plate member having multiple separation channels that extend within the rotatable dielectric plate member in a plane parallel with the upper and lower planar surfaces, the multiple separation channels extending radially from an inner portion of the rotatable dielectric plate member to an outer portion of the rotatable dielectric plate member.
- 22. The test module assembly of claim 21 wherein the rotatable dielectric plate member is disk shaped and further includes multiple injection channels, each of the multiple injection channels intersecting a corresponding one of the multiple separation channels within the outer portion of the rotatable dielectric plate member.
RELATED APPLICATIONS
[0001] This application is a divisional of application Ser. No. 09/153,215, filed Sep. 14, 1998, which claims the benefit of U.S. Provisional Application No. 60/058,798, filed on Sep. 15, 1997.
[0002] The entire teachings of the above application(s) are incorporated herein by reference.
GOVERNMENT SUPPORT
[0003] The invention was supported, in whole or in part, by Grant No. RO1 HG01389 from the National Institutes of Health and Grant No. F49620-95-1-0165 from the Defense Advanced Research Projects Agency/Air Force Office of Scientific Research. The Government has certain rights in the invention.
Provisional Applications (1)
|
Number |
Date |
Country |
|
60058798 |
Sep 1997 |
US |
Divisions (1)
|
Number |
Date |
Country |
Parent |
09153215 |
Sep 1998 |
US |
Child |
09768075 |
Jan 2001 |
US |