IP Library › Granted Patent US 12,311,093
Granted Patent B2
US 12,311,093 · App. 17/687,912 · Granted May 27, 2025

Manual clot aspiration and filtration system and method of removing a clot

Inventors: Peter J. Sunenshine (Paradise Valley, AZ); Kevin Hirsch (Phoenix, AZ); Joseph Barrett (Tempe, AZ)
Assignee: First Pass, LLC
A61M1/3659A61M1/367
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Quick Facts
Patent No.
US 12,311,093
App. No.
17/687,912
Filed
Mar 7, 2022
Granted
May 27, 2025
Kind
B2
Art Unit
1779
USPC
604/33
Abstract

A manual clot aspiration and filtration system enables a method of removing a clot without general anesthesia and the expense of an operating room. An aspiration and filtration system for bodily fluid utilizes a syringe coupled with a filter unit to draw bodily fluid through the filter unit to collect debris on the filter. A flow valve may then be turned and the plunger depressed to force the filtered fluid back into the body. The filter may be configured to capture particles such as blood clots and plaque. The filter unit has a cover that can be removed for inspection and/or removal of the collected debris. When the cover is replaced, trapped air may be removed by turning the flow-valve to a purge direction and pressing the plunger into the syringe to force fluid back toward the filter unit to purge the trapped air through the purge valve.

Claims (49)

1. An aspiration and filtration system for bodily fluid comprising:

a) an inlet-sheath;

b) an inlet one-way valve coupled to the inlet-sheath;

c) a return-sheath;

d) a filter unit comprising:

i) a filter housing having an inlet and an outlet;

ii) a filter configured in the filter housing between the inlet and the outlet;

iii) a cover that is detachably attachable to the filter housing and configured over a top of the filter housing;

wherein the filter unit is configured to receive said bodily fluid into the inlet from a patient and wherein said bodily fluid is configured to flow through the filter to the outlet of the filter unit, wherein the filter filters particles from the bodily fluid between the inlet and the outlet within the filter housing;

wherein the filter is separate from the filter housing and the cover;

wherein the filter is removable from the filter housing by removing the cover;

e) a purge valve coupled to the filter cover and having an outlet opening configured above the filter housing to enable purging trapped air from the filter unit with said bodily fluid contained within the filter unit;

f) a pump configured to force said bodily fluid into the filter unit;

g) a flow-valve coupled with the pump;

wherein the flow-valve is configured for turning from an inlet flow configuration to a purge flow configuration;

wherein the flow-valve has said inlet flow configuration for drawing said bodily fluid through the inlet-sheath, through the filter housing and into a syringe, whereby debris from the bodily fluid is collected by the filter;

wherein the flow-valve has said purge flow configuration for forcing said bodily fluid from the syringe into the filter unit and the air out of the outlet opening of the purge valve; and

wherein the flow-valve has a return flow configuration for forcing said bodily fluid from the syringe into the return-sheath; wherein the return-sheath is a separate sheath from the inlet-sheath, and wherein the return-sheath is configured between the outlet of the filter housing and said patient; and

wherein the cover of the filter unit is configured to be removed from said top of the filter housing for inspection and removal of said particles, and wherein said filter within the filter housing is configured to be removed from the filter housing and replaced with a new filter.

2. The aspiration and filtration system of claim 1 , wherein the pump is a powered pump configured between the filter unit and the return sheath.

3. The aspiration and filtration system of claim 2 , further comprising a reservoir coupled to the pump to receive said bodily fluid from the filter unit.

4. The aspiration and filtration system of claim 1 , wherein the pump comprises a directional switch to control a direction of pumping, wherein the pump is configured to pump said bodily fluid into a reservoir or from the reservoir.

5. The aspiration and filtration system of claim 4 , wherein the reservoir has a reservoir purge valve.

6. The aspiration and filtration system of claim 5 , wherein the filter housing has a volume that is less than a volume of the reservoir.

7. The aspiration and filtration system of claim 1 , wherein the pump is configured between the flow valve and a reservoir.

8. The aspiration and filtration system of claim 1 , wherein the pump is configured between the inlet sheath and the filter unit.

9. The aspiration and filtration system of claim 8 , wherein the pump has a on/off switch.

10. The aspiration and filtration system of claim 1 , wherein the bodily fluid is blood and the debris comprises thrombus.

11. A method of aspiration and filtration of particles from blood comprising:

a) providing the aspiration and filtration system of claim 1 ;

b) coupling the inlet-sheath to an artery of the patient;

c) setting the flow-valve to the inlet flow configuration;

d) pumping said blood from the artery, through the inlet-sheath, through the inlet one-way valve, into the filter housing;

e) filtering the particles on the filter and producing a volume of filtered blood;

f) stopping the pump and removing the filter cover;

g) replacing the filter cover on the filter unit;

h) setting the flow-valve to prevent said blood from flowing into the return sheath;

i) turning on the pump to pump said blood into the filter housing to purge said air from the filter unit;

j) again, setting the flow-valve to the inlet flow configuration; and

k) pumping said blood to the return sheath.

12. The method of claim 11 , wherein the pump is a powered pump configured between the filter unit and the return sheath.

13. The method of claim 12 , further comprising a reservoir coupled to the pump to receive said blood from the filter unit.

14. The method of claim 13 , wherein the pump comprises a directional switch to control a direction of pumping, wherein the pump is configured to pump said blood into the reservoir or from the reservoir.

15. The method of claim 14 , wherein the reservoir has a reservoir purge valve.

16. The method of claim 15 , wherein the filter housing has a volume that is less than a volume of the reservoir.

17. The method of claim 16 , wherein the blood is pumped into the reservoir and after the filter cover is removed, said blood within the reservoir is pumped back into the filter housing when the pump is used to pump said blood into the filter housing to purge said air from the filter unit.

18. The method of claim 17 , wherein the pump is configured between the flow valve and the reservoir.

19. The method of claim 11 , wherein the pump is configured between the inlet sheath and the filter unit.

20. The method of claim 19 , wherein the pump has an on/off switch.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 5, 2025
From: SUNENSHINE, PETER J.; HIRSCH, KEVIN; BARRETT, JOSEPH
To: FIRST PASS, LLC.
Reel/Frame 071165/0850 →
Continuity (2)
Continuation In Part 16960847
Related Publication 20220226555A1 · Jul 21, 2022
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