IP Library Granted Patent US 10,443,074
Granted Patent B2
US 10,443,074 · App. 16/147,353 · Granted Oct 15, 2019

Modification of cells by introduction of exogenous material

Inventors: Jorge Bernate (Boulder, CO); Don Masquelier (Boulder, CO)
Assignee: Inscripta, Inc.
C12N15/87C12M23/44C12M35/02C12M41/48C12N15/70C12N15/81
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Quick Facts
Patent No.
US 10,443,074
App. No.
16/147,353
Granted
Oct 15, 2019
Kind
B2
Abstract

The present disclosure provides methods and devices for rapid and efficient modification of a variety of cell types, including mammalian cells, plant cells, archaea, yeasts, and bacteria, by novel methods of introducing exogenous materials, e.g. nucleic acids.

Claims (31)

1. A method of electroporating cells comprising:

providing a flow-through electroporation (FTEP) device comprising a top surface and a bottom surface, wherein the flow-through electroporation device comprises an inlet coupled to an inlet reservoir and an inlet channel for receiving a fluid comprising electrocompetent cells and exogenous material into the FTEP device, wherein the inlet reservoir originates from the top surface of the FTEP device; an outlet coupled to an outlet reservoir and an outlet channel for removing a fluid comprising transformed cells and exogenous material from the FTEP device, wherein the outlet reservoir originates from the top surface of the FTEP device; a flow channel intersecting and positioned between the inlet channel and the outlet channel, wherein the flow channel decreases in width to a dimension no smaller than at least 2× diameter of the cells being electroporated to form a constriction of the flow channel between the inlet channel and the outlet channel; and a first electrode and a second electrode each positioned in an electrode channel, wherein the electrode channels originate from the top surface of the FTEP device, wherein the first electrode is positioned between the inlet channel and the constriction, wherein the second electrode is positioned between the constriction and the outlet channel, and wherein the electrodes are in fluid and electrical communication with fluid in the flow channel but not directly in the path of the cells traveling through the flow channel;

pulling the cells and exogenous material into the inlet reservoir, inlet, inlet channel, flow channel, and past the two electrodes;

providing electrical pulses to the cells as the cells are pulled through the flow channel past the electrodes producing electroporated cells;

collecting the electroporated cells in the outlet reservoir;

detecting an increase in air flow indicative of fluid being drained from the inlet reservoir;

reversing pressure to push the electroporated cells through the outlet reservoir, outlet, outlet channel, flow channel and past the two electrodes;

providing electrical pulses to the cells as the cells are pushed through the flow channel past the electrodes producing twice-electroporated cells; and

collecting the twice-electroporated cells in the inlet reservoir.

2. The method of electroporating cells of claim 1 , wherein the flow channel decreases in width to between 10 μm and 5 mm.

3. The method of electroporating cells of claim 2 , wherein the flow channel decreases in width to between 50 μm and 2 mm.

4. The method of electroporating cells of claim 1 , wherein the flow channel decreases in width to 3 mm to 7 mm.

5. The method of electroporating cells of claim 1 , wherein the electrodes are configured to deliver a voltage of 1-25 Kv/cm.

6. The method of electroporating cells of claim 5 , wherein the electrodes are configured to deliver a voltage of 5-20 Kv/cm.

7. The method of electroporating cells of claim 6 , wherein the electrodes are configured to deliver a voltage of 10-20 Kv/cm.

8. The method of electroporating cells of claim 1 , wherein the flow rate of the FTEP device is between 0.1 mL to 5 mL per minute.

9. The method of electroporating cells of claim 8 , wherein the flow rate of the FTEP device is between 0.5 mL to 3 mL per minute.

10. The method of electroporating cells of claim 1 , further comprising the steps of

detecting an increase in air flow indicative of fluid being drained from the outlet reservoir;

reversing the pressure to pull the twice-electroporated cells through the inlet reservoir, inlet, inlet channel, flow channel and past the two electrodes;

providing electrical pulses to the twice-electroporated cells in the fluid as the twice-electroporated cells are pulled through the flow channel past the electrodes producing thrice-electroporated cells; and

collecting the thrice-electroporated cells in the outlet reservoir.

11. The method of electroporating cells of claim 10 , wherein the electrodes are between 0.5 mm to 10 mm apart.

12. The method of electroporating cells of claim 11 , wherein the electrodes are between 3 mm to 7 mm apart.

13. The method of electroporating cells of claim 10 , wherein the electrodes are between 10 μm to 5 mm apart.

14. The method of electroporating cells of claim 13 , wherein the electrodes are between 25 μm to 2 mm apart.

15. The method of electroporating cells of claim 1 , wherein the FTEP device further comprises at least one filter disposed within the flow channel.

16. The method of electroporating cells of claim 15 , wherein the filter is integrally-formed as part of the FTEP device.

17. The method of electroporating cells of claim 15 , wherein the filter is a gradient filter.

18. The method of electroporating cells of claim 17 , wherein the gradient comprises large pores proximal to the inlet channel, and small pores proximal to the electrodes.

19. The method of electroporating cells of claim 1 , wherein the FTEP device comprises a second inlet and a second inlet channel and further comprises a reservoir connected to the second inlet for introducing exogenous material into the FTEP device.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 31, 2018
From: BERNATE, JORGE; MASQUELIER, DON
To: INSCRIPTA, INC.
Reel/Frame 047366/0867 →
Continuity (12)
Provisional Application 62689068 · Jun 23, 2018
Provisional Application 62671385 · May 14, 2018
Provisional Application 62657651 · Apr 13, 2018
Provisional Application 62657654 · Apr 13, 2018
Provisional Application 62649731 · Mar 29, 2018
Provisional Application 62648130 · Mar 26, 2018
Provisional Application 62620370 · Jan 22, 2018
Provisional Application 62567697 · Oct 3, 2017
Provisional Application 62566688 · Oct 2, 2017
Provisional Application 62566374 · Sep 30, 2017
Provisional Application 62566375 · Sep 30, 2017
Related Publication 20190100774A1 · Apr 4, 2019
Cited By (1)
US 12,570,945