Claims
- 1. A microfluidic device comprising:
first and second substrates; a microfluidic cavity formed in one of the first and second substrates, the microfluidic cavity having a width (W) and a depth (D), wherein the other of the first and second substrates encloses the microfluidic cavity and a width (W) to depth (D) ratio is at least 100 with the depth (D) being from about 10 μm to about 150 μm; and a plurality of ports formed in the other of the first and second substrates to permit access to the microfluidic cavity.
- 2. The microfluidic device of claim 1, further including:
a third substrate disposed on the second substrate and including microchannels formed therein, the microchannels being formed so that a plurality of ports formed in the second substrate for sample selection and sample output communicate therewith.
- 3. The microfluidic device of claim 2, wherein the plurality of ports formed in the second substrate for sample selection and sample output are arranged in rows, each microchannel in communication with and extending between one port formed in one row and another port in a next adjacent row.
- 4. The microfluidic device of claim 1, further including:
a plurality of capillaries that are disposed within a plurality of ports formed in the second substrate for sample selection and sample output.
- 5. A microfluidic device for achieving protein separation based on charge and molecular weight or size, the device comprising:
a first substrate having a raised structure protruding from a first face of the first substrate, the raised structure partially defining a microfluidic cavity; a second substrate having a raised section protruding from a first face of the second section, the raised section having a shape and dimensions complementary to the microfluidic cavity to permit the raised section to be received between the raised structure to enclose the microfluidic cavity, the raised section sealing with the raised structure in a liquid tight manner while still permitting removal of the first and second substrates from one another, the microfluidic cavity having a width (W) and a depth (D); and sample inlet and outlet ports formed in the second substrate in communication with the microfluidic cavity; buffer and gel input and output ports formed in the second substrate in communication with the microfluidic cavity; and a plurality of ports formed in the second substrate for sample selection and sample output.
- 6. The microfluidic device of claim 5, wherein the raised structure comprises a raised wall arranged to have a preselected shape that is the same shape as the raised section.
- 7. The microfluidic device of claim 6, wherein the preselected shape is rectangular.
- 8. The microfluidic device of claim 5, wherein the raised structure has an upper edge that seats against the first face of the second substrate when the first and second substrates mate together, the depth (D) being defined as the distance from a face of the raised section to the first face of the first substrate.
- 9. The microfluidic device of claim 5, wherein there is a single microfluidic cavity.
- 10. The microfluidic device of claim 5, wherein the buffer and gel input port extends substantially the width of the microfluidic cavity and is formed at one end thereof, the buffer and gel input port extending substantially the width of the microfluidic cavity at an opposite end thereof.
- 11. The microfluidic device of claim 10, wherein the plurality of ports formed in the second substrate for sample selection and sample output is disposed between the buffer and gel input and output ports.
- 12. The microfluidic device of claim 11, wherein the plurality of ports formed in the second substrate for sample selection and sample output is arranged in at least two rows, each row being staggered from each next adjacent row.
- 13. The microfluidic device of claim 5, wherein a width (W) to depth (D) ratio of the microfluidic cavity is at least 100 with the depth (D) being from about 10 μm to about 150 μm.
- 14. The microfluidic device of claim 5, further including:
a plurality of UV transmission ports formed in the second substrate between the buffer and gel input and output ports; and one or more polymer films that transmit UV light being disposed within or across the UV transmission ports.
- 15. The microfluidic device of claim 14, wherein one or more of the polymer films transmits ultraviolet light down to 200 nm.
- 16. A microfluidic kit for performing protein separation based on charge and molecular weight or size, the microfluidic kit comprising:
a microfluidic device according to claim 5; and a cartridge for applying pressure to the microfluidic device to ensure sealing of the microfluidic cavity, the cartridge having a body including a cavity formed therein, the body having an opening forming an entrance to the cavity for receiving the microfluidic device, wherein a plurality of longitudinal and transverse rails are formed within the cavity and are arranged according to the construction of the raised wall of the microfluidic device such that when the microfluidic device is received within the cartridge, the longitudinal and transverse rails exert mechanical pressure on areas of the raised structure of the microfluidic device to ensure a liquid tight sealing of the microfluidic cavity.
- 17. The microfluidic kit of claim 16, wherein the cartridge includes a window formed in one wall opening into the microfluidic cavity to permit access to the second substrate of the microfluidic device so that materials can be introduced and withdrawn from the microfluidic cavity and detection techniques can be performed.
- 18. The microfluidic kit of claim 16, wherein the body includes a top wall and bottom wall and two end walls with the top wall having a first pair of longitudinal rails formed thereon and the bottom wall having a second pair of longitudinal rails formed thereon and wherein a pair of transverse rails extend across each of the top and bottom walls between respective longitudinal rails, the microfluidic device being received between the pairs of longitudinal and transverse rails.
- 19. The microfluidic kit of claim 18, wherein each longitudinal rail has a chamfered section near the open end of the body to assist in receiving the microfluidic device into the cartridge cavity.
- 20. A microfluidic kit for performing protein separation based on charge and molecular weight or size, the microfluidic kit comprising:
a microfluidic device according to claim 5; and a cartridge for applying pressure to the microfluidic device to ensure sealing of the microfluidic cavity, the cartridge having a first part and a second part hingedly connected to the first part to permit the cartridge to be positionable between open and closed positions, the first part having a raised feature formed on one face thereof and arranged according to the construction of the raised structure of the microfluidic device such that when the microfluidic device is received on a face of the second part and the first and second parts are closed together, the raised feature exerts mechanical pressure on areas of the raised structure of the microfluidic device to ensure a liquid tight sealing of the microfluidic cavity between the first and second substrates.
- 21. The microfluidic kit of claim 20, wherein the first part has a window formed therein within the boundaries of the raised feature so that materials can be introduced and withdrawn from the microfluidic cavity and detection techniques can be performed.
- 22. A method for separating protein molecules that are free of any chemical stain, the method comprising the steps of:
providing the microfluidic device of claim 5 in a disassembled state where the first and second substrates are separated from one another; placing a pKa strip within the raised structure of the first substrate such that it extends across the width (W) of the microfluidic cavity; assembling the first and second substrates such that the raised section is received within boundaries of the raised structure to define and seal the microfluidic cavity; inserting the microfluidic device into the cartridge of claim 16 to create the liquid-tight seal of the microfluidic cavity; disposing gel and buffer material through at least one of the gel and buffer input and output ports so that it travels into the microfluidic cavity; and applying a voltage difference to the buffer and gel input port and the buffer and gel output port to begin separation of the protein molecules based on molecular sizes.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application claims the benefit of U.S. patent application Ser. No. 60/338,696, filed Dec. 11, 2001 and U.S. patent application Ser. No. 60/378,881, filed May 8, 2002, both of which are hereby incorporated by reference in their entirety.
Provisional Applications (2)
|
Number |
Date |
Country |
|
60338696 |
Dec 2001 |
US |
|
60378881 |
May 2002 |
US |