Device and method for isolating extracellular vesicles from biofluids
A device and method for isolating extracellular vesicles from biofluids is disclosed. A nanoporous silicon nitride membrane is provided with a tangential flow of biofluid. A pressure gradient through the nanoporous silicon nitride membrane facilitates capture of extracellular vesicles from the tangential flow vector of biofluid. Reversal of the pressure gradient results in the release of the extracellular vesicles for subsequent collection.
1. A device for isolating extracellular vesicles from biofluids, the device comprising:
a nanoporous membrane comprising a first surface with a plurality of pores;
wherein the pores have a generally circular shape and a range of pore diameters between 20 nanometers and 120 nanometers and are configured to size selectively capture and retain the extracellular vesicles;
a tangential fluid flow device for creating a tangential fluid flow velocity of a biofluid across the surface of the nanoporous membrane having a plurality of pores;
a pressure gradient device in fluid communication with the biofluid wherein the pressure gradient device creates a pressure gradient through the nanoporous membrane;
wherein the pressure gradient device is selected from the group consisting of a pump, a diaphragm, a vacuum device, a thermoelectric device, and a peltier device; and wherein the device for isolating extracellular vesicles from biofluids promotes blocking of the pores with extracellular vesicles to create an intentionally fouled nanoporous membrane.
2. The device of claim 1 , further comprising a pressure gradient reversal device in communication with the pressure gradient device, wherein the pressure gradient reversal device is selected from the group consisting of a pump controller, a switch, a valve, a fluid diversion structure, and a vacuum controller.
3. The device of claim 1 , wherein the nanoporous membrane is nanoporous silicon nitride.
4. The device of claim 1 , wherein the density of pores of the nanoporous membrane is at least 10 7 pores per square millimeter.
5. The device of claim 1 , wherein the magnitude of the created tangential flow velocity is between 100 micrometers per second and 10 centimeters per second.
6. The device of claim 1 , wherein the magnitude of the created pressure gradient through the nanoporous membrane is between 1 pascal and 1 atmosphere.
7. The device of claim 1 , wherein the nanoporous membrane is configured as a channel having a channel length and a channel height for containing the tangential flow of a biofluid.
8. The device of claim 7 , wherein the channel length along the principal direction of flow is between 1 millimeter and 1 meter.
9. The device of claim 7 , wherein the channel height is between 100 nanometers and 1 millimeter.
10. The device of claim 1 , wherein the nanoporous membrane further comprises a coating.
11. The device of claim 1 , wherein the nanoporous membrane further comprises a defined surface chemistry.
12. The device of claim 1 , wherein the nanoporous membrane further comprises a carbenylated monolayer.
13. The device of claim 1 , wherein the nanoporous membrane further comprises an aliphatic coating.
14. The device of claim 1 , wherein the nanoporous membrane further comprises polyethylene glycol.
15. The device of claim 1 , wherein the nanoporous membrane further comprises a zwitterionic species.
16. The device of claim 1 , wherein the nanoporous membrane further comprises an aminated interface.
17. The device of claim 1 , wherein the nanoporous membrane further comprises a second surface having a plurality of pores extending therethrough; where the plurality of pores from the first surface extend through the second surface and where the plurality of pores of the first surface are of a greater diameter than the plurality of pores that extend through the second surface.
18. The device of claim 1 , wherein the pores are tapered.
19. A device for isolating cell free DNA from biofluids, the device comprising:
a nanoporous membrane comprising a surface with a plurality of pores;
wherein the pores have a generally circular shape and a range of pore diameters between 20 nanometers and 120 nanometers and are configured to size selectively capture and retain the cell free DNA;
a tangential fluid flow device for creating a tangential fluid flow velocity of a biofluid across the surface of the nanoporous membrane having a plurality of pores;
a pressure gradient device in fluid communication with the biofluid wherein the pressure gradient device creates a pressure gradient through the nanoporous membrane;
wherein the pressure gradient device is selected from the group consisting of a pump, a diaphragm, a vacuum device, a thermoelectric device, and a peltier device; and wherein the device for isolating cell free DNA from biofluids promotes blocking of the pores with cell free DNA to create an intentionally fouled nanoporous membrane.
20. The device of claim 19 , further comprising a pressure gradient reversal device in communication with the pressure gradient device, wherein the pressure gradient reversal device is selected device is selected from the group consisting of a pump controller, a switch, a valve, a fluid diversion structure, and a vacuum controller.
21. The device of claim 19 , wherein the nanoporous membrane is nanoporous silicon nitride.
22. The device of claim 19 , wherein the density of pores of the nanoporous membrane is at least 10 7 pores per square millimeter.
23. The device of claim 19 , wherein the magnitude of the created tangential flow velocity is between 100 micrometers per second and 10 centimeters per second.
24. The device of claim 19 , wherein the magnitude of the created pressure gradient through the nanoporous membrane is between 1 pascal and 1 atmosphere.
25. The device of claim 19 , wherein the nanoporous membrane is configured as a channel having a channel length and a channel height for containing tangential flow of a biofluid.
26. The device of claim 25 , wherein the channel length along the principal direction of flow is between 1 millimeter and 1 meter.
27. The device of claim 25 , wherein the channel height is between 100 nanometers and 1 millimeter.
28. The device of claim 19 , wherein the nanoporous membrane further comprises a coating.
29. The device of claim 19 , wherein the nanoporous membrane further comprises a defined surface chemistry.
30. The device of claim 19 , wherein the nanoporous membrane further comprises a carbenylated monolayer.
31. The device of claim 19 , wherein the nanoporous membrane further comprises an aliphatic coating.
32. The device of claim 19 , wherein the nanoporous membrane further comprises polyethylene glycol.
33. The device of claim 19 , wherein the nanoporous membrane further comprises a zwitterionic species.
34. The device of claim 19 , wherein the nanoporous membrane further comprises an aminated interface.
35. The device of claim 19 , wherein the pores are tapered.