Hinged transcatheter prosthetic heart valve delivery system
US-2015297346-A1 · Oct 22, 2015 · US
US10806574B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-10806574-B2 |
| Application number | US-201715817335-A |
| Country | US |
| Kind code | B2 |
| Filing date | Nov 20, 2017 |
| Priority date | Nov 20, 2017 |
| Publication date | Oct 20, 2020 |
| Grant date | Oct 20, 2020 |
A practical reading order for non-experts. Skip the full description unless you need deep technical detail.
What the patent document calls the invention.
A short plain-language summary of the technical disclosure.
Who owns or filed the patent and who is credited as inventor.
Filing, priority, publication, and grant dates set the timeline.
The legal scope of protection — read this for what is actually claimed.
Technology tags used to group this patent with similar filings.
Prior art links and similar publications in this corpus.
Official abstract text for this publication.
A delivery system for percutaneously delivering a heart valve prosthesis to a site of a native heart valve includes a delivery catheter and a heart valve prosthesis. The delivery catheter includes an outer sheath, an inner shaft, and an orifice restriction mechanism. The heart valve prosthesis has a valve member and a docking member. When the orifice restriction mechanism is positioned within the docking member within an annulus of the native heart valve, the orifice restriction mechanism temporarily replicates the operation of the native heart valve until the valve member is positioned within the docking member.
Opening claim text (preview).
What is claimed is: 1. A delivery system for percutaneously delivering a heart valve prosthesis to a site of a native heart valve, the delivery system comprising: a delivery catheter including: an outer sheath; an inner shaft slidably disposed within the outer sheath; and an orifice restriction mechanism coupled to a distal portion of the inner shaft, wherein the orifice restriction mechanism has a first state and a radially expanded second state; and a heart valve prosthesis including a valve member having a radially collapsed configuration and a radially expanded configuration, and a docking member having a radially collapsed configuration and a radially expanded configuration, wherein the orifice restriction mechanism is configured to be positioned within the docking member of the heart valve prosthesis after the docking member is in the radially expanded configuration within an annulus of the native heart valve, and wherein the orifice restriction mechanism is configured to temporarily replicate the operation of the native heart valve until the valve member is positioned within the docking member. 2. The delivery system of claim 1 , wherein the orifice restriction mechanism is configured to temporarily replicate the operation of the native heart valve by alternating between the first state and the radially expanded second state. 3. The delivery system of claim 1 , wherein the heart valve prosthesis is a mitral heart valve prosthesis and the native heart valve is a native mitral valve. 4. The delivery system of claim 3 , wherein the orifice restriction mechanism is configured to temporarily replicate the operation of the native valve by transitioning to the first state during diastole and transitioning to the radially expanded second state during systole of the cardiac cycle of a heart. 5. A delivery system for percutaneously delivering a heart valve prosthesis to a site of a native heart valve, the delivery system comprising: a heart valve prosthesis including a valve member having a radially collapsed configuration and a radially expanded configuration, and a docking member having a radially collapsed configuration and a radially expanded configuration, and a delivery catheter including: an inner shaft assembly including an inner shaft and an orifice restriction mechanism coupled to a distal portion of the inner shaft, wherein the orifice restriction mechanism includes a first state and a second state, a docking sheath assembly including an inner sheath and an outer sheath, the inner sheath slidably disposed within the outer sheath and configured to slidably receive the inner shaft assembly therein, wherein the outer sheath is configured to retain the docking member of the heart valve prosthesis in the radially collapsed configuration therein for delivery to a desired treatment location; and a valve sheath assembly including an inner sheath and an outer sheath, the inner sheath slidably disposed within the outer sheath and configured to slidably receive the inner shaft assembly therein, wherein the outer sheath is configured to retain the valve member of the heart valve prosthesis in the radially collapsed configuration therein for delivery to the desired treatment location, wherein the orifice restriction mechanism is configured to be positioned within the docking member of the heart valve prosthesis after the docking member is in the radially expanded configuration within an annulus of the native heart valve and is configured to restrict blood flow through the native heart valve when the orifice restriction mechanism is in the second state. 6. The delivery system of claim 5 , wherein the orifice restriction mechanism is a balloon. 7. The delivery system of claim 5 , wherein the orifice restriction mechanism is a plurality of flaps. 8. The delivery system of claim 5 , wherein the heart valve prosthesis is a mitral heart valve prosthesis and the native heart valve is a native mitral valve. 9. A method of delivering, positioning and deploying a heart valve prosthesis at a site of a native heart valve, the method comprising the steps of: advancing a delivery catheter with a heart valve prosthesis including a docking member and a valve member, each in a radially collapsed configuration retained therein, to a native heart valve of a heart, wherein the delivery catheter includes an inner shaft, an outer sheath, and an orifice restriction mechanism in a first state; positioning the docking member of the heart valve prosthesis within an annulus of the native heart valve; retracting the outer sheath of the delivery catheter such that the outer sheath releases the orifice restriction mechanism and the docking member; expanding the docking member to a radially expanded configuration; cyclically alternating the orifice restriction mechanism between the first state and a radially expanded second state in synchronization with the cardiac cycle of the heart; transitioning the orifice restriction mechanism to the first state when a clinician is ready to position the valve member within the docking member; advancing the delivery catheter to position the valve member of the heart valve prosthesis within the docking member of the heart valve prosthesis within the annulus of the native heart valve; and retracting the outer sheath of the delivery catheter such that the outer sheath releases the valve member of the heart valve prosthesis to expand the valve member to a radially expanded configuration. 10. The method of claim 9 , wherein the method further includes advancing the outer sheath of the delivery catheter such that the outer sheath receives the orifice restriction mechanism in the first state. 11. The method of claim 9 , wherein the docking member is self-expanding and the step of retracting the outer sheath releases the docking member such that the docking member expands to the radially expanded configuration. 12. The method of claim 9 , wherein the docking member is axially disposed over the orifice restriction mechanism. 13. The method of claim 12 , wherein the docking member is balloon expandable, and the step of expanding the docking member comprises inflating the orifice restriction mechanism such that the docking member expands to the radially expanded configuration. 14. The method of claim 9 , wherein the docking member is axially disposed adjacent to the orifice restriction mechanism, and the method further includes the step of positioning the orifice restriction mechanism within the docking member in the radially expanded configuration following the step of expanding the docking member and preceding the step of cyclically alternating the orifice restriction mechanism between the first state and the radially expanded second state in synchronization with the cardiac cycle of the heart. 15. The method of claim 9 , wherein the native heart valve is a native mitral valve and the step of advancing the delivery catheter includes advancing the delivery catheter to a native mitral valve of the heart. 16. The method of claim 15 , wherein advancement of the delivery system to the native mitral valve is via a transseptal approach. 17. A method of delivering, positioning and deploying a heart valve prosthesis at a site of a native heart valve, the method comprising the steps of: advancing a delivery system with a heart valve prosthesis in a radially collapsed configuration retained therein through a native heart valve and into an adjacent chamber of a heart, wherein the delivery system includes an inner shaft assembly including an inner shaft and an orifice restriction me
discharging the blood to the ventricle or arterial system via a cannula internal to the ventricle or arterial system · CPC title
Passive valves, i.e. valves actuated by the blood · CPC title
for balloon pumps for circulatory assistance · CPC title
Balloon pumps for circulatory assistance · CPC title
temporary · CPC title
Related publications grouped by family.
Answers are generated from the same data shown on this page.