IP Library Granted Patent US 12,251,119
Granted Patent B2
US 12,251,119 · App. 17/580,592 · Granted Mar 18, 2025

Aspiration systems, devices and methods for treating ischemic stroke

Inventors: Brett E. Naglreiter (Boca Raton, FL); Eduardo Ampuero (Miami, FL); Alejandro Espinosa (Miami, FL)
A61B17/22F04B43/1253A61B2017/22079A61B2217/005A61B2217/007
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Quick Facts
Patent No.
US 12,251,119
App. No.
17/580,592
Granted
Mar 18, 2025
Kind
B2
Abstract

The present invention relates to methods, devices and systems for performing the removal of thrombus from a vessel lumen. More particularly the present invention relates to a thrombectomy system that includes an elongate catheter and a disposable aspiration pump and methods of performing medical procedures to remove clots, thrombus and emboli to re-establish the normal intravascular flow of blood.

Claims (33)

1. A method of removing thrombus from a vessel using a thrombus removal system comprising:

providing an elongate catheter having proximal and distal ends and an inner diameter;

providing an aspiration pump having a sensor, an aspiration container, a non-dampening extension tube and a microprocessor controller, said aspiration pump further having an operable mode that generates a cyclic pressure waveform such that when said aspiration pump is coupled to said catheter positioned within a vessel adjacent a thrombus and operated, said pump controllably cycles supplying negative pressure to said catheter to aspirate a thrombus through the catheter to the pump aspiration container;

positioning the distal end of the catheter within a vessel lumen adjacent a thrombus;

coupling the aspiration pump extension tube to the catheter;

operating the aspiration pump to provide a pressure waveform which includes providing cyclic negative and positive pressure to a lumen of the catheter thereby suctioning thrombus through the catheter lumen and into the aspiration container.

2. The method of removing thrombus according to claim 1 , including coupling the catheter to said aspiration pump where said aspiration pump includes a calibration mode, initiating said calibration mode such that the aspiration pump performs a calibration with said catheter and uncoupling said catheter from said aspiration pump prior to positioning the distal end of the catheter within a vessel lumen adjacent a thrombus.

3. The method of removing thrombus according to claim 1 , wherein operating the aspiration pump includes initiating a first embedded program in said microprocessor controller whereby said aspiration pump provides steady vacuum pressure until said sensor detects pressure at a first preset limit and a restricted catheter fluid flow state.

4. The method of removing thrombus according to claim 3 , wherein upon when said sensor detects a pressure reaching said first preset limit, said operating the aspiration pump includes terminating said first embedded program and initiating a second embedded program in said microprocessor controller whereby said aspiration pump provides a series of cyclic pressure waveforms until said sensor detects a pressure at a second preset limit.

5. The method of removing thrombus according to claim 4 , wherein said series of cyclic pressure waveforms range from low amplitude and low frequency to high amplitude and high frequency until the sensor detects an unrestricted catheter fluid flow state.

6. A method of removing thrombus from a vessel using a thrombus removal system comprising:

providing an elongate catheter having proximal and distal ends and an inner diameter;

providing an aspiration pump having a sensor, an aspiration container, a non-dampening extension tube and a microprocessor controller, said aspiration pump further having an operable mode that generates a cyclic pressure waveform such that when said aspiration pump is coupled to said catheter positioned within a vessel adjacent a thrombus and operated, said pump controllably cycles supplying negative pressure to said catheter to aspirate a thrombus through the catheter to the pump aspiration container;

positioning the distal end of the catheter within a vessel lumen adjacent a thrombus;

coupling the aspiration pump extension tube to the catheter;

operating the aspiration pump to provide a pressure waveform to a lumen of the catheter thereby suctioning thrombus through the catheter lumen and into the aspiration container including initiating a first embedded program in said microprocessor controller whereby said aspiration pump provides steady vacuum pressure until said sensor detects pressure at a first preset limit and a restricted catheter fluid flow state.

7. The method of removing thrombus according to claim 6 , wherein upon when said sensor detects a pressure reaching said first preset limit, said operating the aspiration pump includes terminating said first embedded program and initiating a second embedded program in said microprocessor controller whereby said aspiration pump provides a series of cyclic pressure waveforms until said sensor detects a pressure at a second preset limit.

8. The method of removing thrombus according to claim 7 , wherein initiating a second embedded program is initiated by said aspiration pump.

9. The method of removing thrombus according to claim 7 , wherein said series of cyclic pressure waveforms range from low amplitude and low frequency to high amplitude and high frequency until the sensor detects an unrestricted catheter fluid flow state.

10. The method of removing thrombus according to claim 6 , wherein upon when said sensor detects a pressure reaching said first preset limit, said operating the aspiration pump includes terminating said first embedded program and initiating a second embedded program in said microprocessor controller whereby said aspiration pump provides a series of cyclic pressure waveforms until said sensor detects an unrestricted catheter fluid flow state.

11. The method of removing thrombus according to claim 10 , wherein initiating a second embedded program is initiated by said aspiration pump.

12. The method of removing thrombus according to claim 10 , wherein said series of cyclic pressure waveforms range from low amplitude and low frequency to high amplitude and high frequency until the sensor detects an unrestricted catheter fluid flow state.

13. The method of removing thrombus according to claim 6 , including coupling the catheter to said aspiration pump where said aspiration pump includes a calibration mode, initiating said calibration mode such that the aspiration pump performs a calibration with said catheter and uncoupling said catheter from said aspiration pump prior to positioning the distal end of the catheter within a vessel lumen adjacent a thrombus.

14. A method of removing thrombus from a vessel using a thrombus removal system comprising:

providing an elongate catheter having proximal and distal ends and an inner diameter;

providing an aspiration pump having a sensor, an aspiration container, a non-dampening extension tube and a microprocessor controller, said aspiration pump further having an operable mode that generates a cyclic pressure waveform such that when said aspiration pump is coupled to said catheter positioned within a vessel adjacent a thrombus and operated, said pump controllably cycles supplying negative pressure to said catheter to aspirate a thrombus through the catheter to the pump aspiration container;

positioning the distal end of the catheter within a vessel lumen adjacent a thrombus;

coupling the aspiration pump extension tube to the catheter;

operating the aspiration pump to provide a pressure waveform to a lumen of the catheter thereby suctioning thrombus through the catheter lumen and into the aspiration container including terminating said provided pressure waveform if said sensor does not detect a pressure at a preset limit within 30 seconds.

15. The method of removing thrombus according to claim 14 , wherein operating the aspiration pump includes initiating a first embedded program in said microprocessor controller whereby said aspiration pump provides steady vacuum pressure until said sensor detects pressure at a first preset limit and a restricted catheter fluid flow state.

16. The method of removing thrombus according to claim 15 , wherein upon when said sensor detects a pressure reaching said first preset limit, said operating the aspiration pump includes terminating said first embedded program and initiating a second embedded program in said microprocessor controller whereby said aspiration pump provides a series of cyclic pressure waveforms until said sensor detects a pressure at a second preset limit.

17. The method of removing thrombus according to claim 16 , wherein said series of cyclic pressure waveforms range from low amplitude and low frequency to high amplitude and high frequency until the sensor detects an unrestricted catheter fluid flow state.

18. The method of removing thrombus according to claim 14 , including coupling the catheter to said aspiration pump where said aspiration pump includes a calibration mode, initiating said calibration mode such that the aspiration pump performs a calibration with said catheter and uncoupling said catheter from said aspiration pump prior to positioning the distal end of the catheter within a vessel lumen adjacent a thrombus.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 30, 2024
From: AMPUERO, EDUARDO; ESPINOSA, ALEJANDRO; NAGLREITER, BRETT E.
To: POSEYDON MEDICAL LLC
Reel/Frame 068451/0603 →
Continuity (9)
Continuation In Part 17075805 · Oct 21, 2020
Provisional Application 63277578 · Nov 9, 2021
Provisional Application 63235104 · Aug 19, 2021
Provisional Application 63232151 · Aug 11, 2021
Provisional Application 63173921 · Apr 12, 2021
Provisional Application 63173937 · Apr 12, 2021
Provisional Application 63173927 · Apr 12, 2021
Provisional Application 62949477 · Dec 18, 2019
Related Publication 20220168002A1 · Jun 2, 2022
References Cited (9)
US 3955574A · Rubenstein · 1976 [cited by applicant]
US 10531883B1 · Deville · 2020 [cited by applicant]
US 11096712B2 · Teigen · 2021 [cited by applicant]
US 20070060834A1 · Odland · 2007 [cited by examiner]
US 20120138833A1 · Matteo · 2012 [cited by applicant]
US 20170056032A1 · Look · 2017 [cited by examiner]
US 20170238953A1 · Yang · 2017 [cited by applicant]
US 20220040394A1 · Saroha · 2022 [cited by examiner]
WO 2014151209 · 2014 [cited by applicant]
Cited By (5)
US 12,575,844 US 12,582,433 US 12,599,397 US 12,642,542 US 12,642,543