IP Library Granted Patent US 11,471,164
Granted Patent B2
US 11,471,164 · App. 17/485,390 · Granted Oct 18, 2022

Methods of occluding a cerebral aneurysm by inserting embolic members or material into an intrasacular implant

Inventor: Robert A. Connor (St. Paul, MN)
Assignee: Aneuclose LLC
A61B17/12181A61B17/12113A61B17/12172
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Quick Facts
Patent No.
US 11,471,164
App. No.
17/485,390
Granted
Oct 18, 2022
Kind
B2
Abstract

Disclosed herein is a method for occluding a cerebral aneurysm which includes: delivering a flexible implant in a compressed first configuration to a cerebral aneurysm through a catheter; inserting the flexible implant into the aneurysm sac wherein the flexible implant self-expands to a second configuration; and then delivering embolic members and/or embolic material into the flexible implant to expand further the flexible implant into a third configuration which conforms to the walls of even an irregularly-shaped aneurysm sac.

Claims (17)

1. A method for occluding a cerebral aneurysm can comprise:

delivering a flexible implant through a longitudinal lumen to a cerebral aneurysm, wherein the flexible implant has a compressed first configuration as it is delivered through the lumen;

inserting the flexible implant into the aneurysm sac from the lumen, wherein the flexible implant self-expands into an expanded second configuration in the aneurysm sac;

delivering embolic members through an opening in the flexible implant into an interior of the flexible implant, wherein accumulation of embolic members inside the flexible implant causes the flexible implant to further expand into a third configuration in the aneurysm sac, wherein the third configuration is larger than the second configuration, and wherein the third configuration conforms to the walls of the aneurysm sac more closely than the second configuration; wherein a first subset of the embolic members is delivered into the implant at a first time during expansion of the implant from the second configuration to the third configuration; wherein embolic members in the first subset are made from a first material with a first durometer level; wherein shapes of embolic members in the first subset are selected from the group consisting of: spherical, ellipsoidal, globular, oblate spheroid, ovaloid, prolate-spheroid-shaped, cubic, hexahedron, octahedron, polyhedron-shaped, pyramidal, and tetrahedronal; wherein a second subset of the embolic members is delivered into the implant at a second time during expansion of the implant from the second configuration to the third configuration; wherein embolic members in the second subset are made from a second material with a second durometer level; wherein the second durometer level is less than the first durometer level; wherein shapes of embolic members in the second subset are selected from the group consisting of: spherical, ellipsoidal, globular, oblate spheroid, ovaloid, prolate-spheroid-shaped, cubic, hexahedron, octahedron, polyhedron-shaped, pyramidal, and tetrahedronal;

closing the opening through the flexible implant; and

detaching and withdrawing the lumen from the flexible implant.

2. A method for occluding a cerebral aneurysm can comprise:

delivering a flexible implant through a longitudinal lumen to a cerebral aneurysm, wherein the flexible implant has a radially-constrained first configuration as it is delivered through the lumen;

inserting the flexible implant into the aneurysm sac from the lumen, wherein the flexible implant self-expands in the aneurysm sac into a second configuration which is symmetric with respect to the implant's longitudinal axis;

delivering embolic members through an opening in the flexible implant into an interior of the flexible implant, wherein accumulation of embolic members causes the flexible implant to further expand into a third configuration in the aneurysm sac which is asymmetric with respect to the implant's longitudinal axis; wherein a first subset of the embolic members is delivered into the implant at a first time during expansion of the implant from the second configuration to the third configuration; wherein embolic members in the first subset are made from a first material with a first durometer level; wherein shapes of embolic members in the first subset are selected from the group consisting of: spherical, ellipsoidal, globular, oblate spheroid, ovaloid, prolate-spheroid-shaped, cubic, hexahedron, octahedron, polyhedron-shaped, pyramidal, and tetrahedronal; wherein a second subset of the embolic members is delivered into the implant at a second time during expansion of the implant from the second configuration to the third configuration; wherein embolic members in the second subset are made from a second material with a second durometer level; wherein the second durometer level is less than the first durometer level; wherein shapes of embolic members in the second subset are selected from the group consisting of: spherical, ellipsoidal, globular, oblate spheroid, ovaloid, prolate-spheroid-shaped, cubic, hexahedron, octahedron, polyhedron-shaped, pyramidal, and tetrahedronal; and

detaching and withdrawing the lumen from the flexible implant.

3. A method for occluding a cerebral aneurysm can comprise:

delivering a flexible implant through a longitudinal lumen to a cerebral aneurysm, wherein the flexible implant has a radially-constrained first configuration as it is delivered through the lumen;

inserting the flexible implant into the aneurysm sac from the lumen, wherein the flexible implant self-expands into a radially-expanded second configuration in the aneurysm sac;

delivering embolic members through an opening in the flexible implant into an interior of the flexible implant, wherein accumulation of embolic members inside the flexible implant causes the flexible implant to further expand into a third configuration in the aneurysm sac, wherein expansion of a distal portion of the flexible implant from the second configuration to the third configuration is greater than expansion of the proximal portion of the flexible implant from the second configuration to the third configuration; wherein a first subset of the embolic members is delivered into the implant at a first time during expansion of the implant from the second configuration to the third configuration; wherein embolic members in the first subset are made from a first material with a first durometer level; wherein shapes of embolic members in the first subset are selected from the group consisting of: spherical, ellipsoidal, globular, oblate spheroid, ovaloid, prolate-spheroid-shaped, cubic, hexahedron, octahedron, polyhedron-shaped, pyramidal, and tetrahedronal; wherein a second subset of the embolic members is delivered into the implant at a second time during expansion of the implant from the second configuration to the third configuration; wherein embolic members in the second subset are made from a second material with a second durometer level; wherein the second durometer level is less than the first durometer level; wherein shapes of embolic members in the second subset are selected from the group consisting of: spherical, ellipsoidal, globular, oblate spheroid, ovaloid, prolate-spheroid-shaped, cubic, hexahedron, octahedron, polyhedron-shaped, pyramidal, and tetrahedronal;

closing the opening through the flexible implant; and

detaching and withdrawing the lumen from the flexible implant.

Continuity (41)
Continuation In Part 17476845 · Sep 16, 2021
Continuation In Part 17472674 · Sep 12, 2021
Continuation In Part 17467680 · Sep 7, 2021
Continuation In Part 17466497 · Sep 3, 2021
Continuation In Part 17353652 · Jun 21, 2021
Continuation In Part 17220002 · Apr 1, 2021
Continuation In Part 17214827 · Mar 27, 2021
Continuation In Part 17211446 · Mar 24, 2021
Continuation In Part 16693267 · Nov 23, 2019
Continuation In Part 16660929 · Oct 23, 2019
Continuation In Part 16541241 · Aug 15, 2019
Continuation In Part 17214827 · Mar 27, 2021
Continuation In Part 17211446 · Mar 24, 2021
Continuation In Part 16693267 · Nov 23, 2019
Continuation In Part 16660929 · Oct 23, 2019
Continuation In Part 16660929 · Oct 23, 2019
Continuation In Part 16541241 · Aug 15, 2019
Continuation In Part 15865822 · Jan 9, 2018
Continuation In Part 15861482 · Jan 3, 2018
Continuation In Part 16541241 · Aug 15, 2019
Continuation In Part 15865822 · Jan 9, 2018
Continuation In Part 15861482 · Jan 3, 2018
Continuation In Part 15865822 · Jan 9, 2018
Continuation In Part 15081909 · Mar 27, 2016
Continuation In Part 14526600 · Oct 29, 2014
Continuation In Part 15080915 · Mar 25, 2016
Continuation In Part 14526600 · Oct 29, 2014
Continuation In Part 14526600 · Oct 29, 2014
Continuation In Part 14526600 · Oct 29, 2014
Continuation In Part 12989048 · Oct 21, 2010
Provisional Application 63119774 · Dec 1, 2020
Provisional Application 62794609 · Jan 19, 2019
Provisional Application 62794607 · Jan 19, 2019
Provisional Application 62720173 · Aug 21, 2018
Provisional Application 62589754 · Nov 22, 2017
Provisional Application 62472519 · Mar 16, 2017
Provisional Application 62444860 · Jan 11, 2017
Provisional Application 61897245 · Oct 30, 2013
Provisional Application 61126047 · May 1, 2008
Provisional Application 61126027 · May 1, 2008
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