STENT USED FOR IMPLANTING VALVE-IN-VALVE
20220160502 ยท 2022-05-26
Assignee
Inventors
Cpc classification
A61F2/90
HUMAN NECESSITIES
International classification
A61F2/24
HUMAN NECESSITIES
Abstract
The present invention relates to a stent for interventional valve-in-valve, wherein the stent is a metal mesh tube, and is provided with four rows of transversely extending circumferential struts and a plurality of columns of axial struts arranged between the circumferential struts; the axial struts in each row are arranged in a staggered mode, the axial struts are connected with transverse struts attached thereon to form a staggered honeycomb meshes, the area of honeycomb meshes at the inflow end is basically the same as that of the honeycomb meshes in the middle row, and the area of honeycomb meshes at the outflow end is slightly larger than that of the honeycomb meshes in the other three rows. According to a stent for an interventional valve-in-valve provided herein, in view of the specialty that interventional valve-in-valves are implanted into the previously implanted damaged surgical valve or interventional valve by intervention and in close attachment with the failed valve, the subversive improvement is carried out on the conventional interventional valve stent, with all meshes of the stent adopting honeycomb-like structures, so that the stent with the structure can realize certain rigidity, has high synchronous deployment speed, good attachment, and better use effect.
Claims
1. A stent for interventional valve-in-valve, characterized in that the stent is a metal mesh tube and is provided with four rows of transversely extending circumferential struts and a plurality of columns of axial struts arranged between the circumferential struts; the axial struts in each row are arranged in a staggered mode, wherein the first and second rows of circumferential struts on the lower side define an inflow end of the stent, and the third and fourth rows of circumferential struts define an outflow end of the stent; the circumferential struts in each row are formed by connecting a plurality of groups of angled struts, and each group of struts is in a deformable V-shape, with a deformation angle of 0-90 degrees; the axial struts are connected with transverse struts attached thereon to form a staggered honeycomb meshes, an area of the honeycomb meshes at the inflow end is basically the same as that of the honeycomb meshes in the middle row, and an area of honeycomb meshes at the outflow end is slightly larger than that of the honeycomb meshes in the other two rows.
2. The stent for interventional valve-in-valve according to claim 1, characterized in that the area of honeycomb meshes at the outflow end is larger than that of the honeycomb meshes in the other two rows by 10%-20%.
3. The stent for interventional valve-in-valve according to claim 1, characterized in that the area of honeycomb meshes at the inflow end differs by no more than 10% from that of the honeycomb mesh in the middle row.
4. The stent for interventional valve-in-valve according to claim 1, characterized in that the stent has a height of 13-25 mm, an inner diameter of 18-30 mm, and a wall thickness of 0.35-0.65 mm.
5. The stent for interventional valve-in-valve according to claim 1, characterized in that the plurality of groups of axial struts have the same size, the axial struts of honeycomb meshes at the inflow end and in the middle row are close in size, and the axial struts of honeycomb meshes at the outflow end are slightly larger in size than that of the honeycomb meshes in the other two rows.
6. A stent for interventional valve-in-valve, characterized in that the stent is a metal mesh tube and is provided with five rows of transversely extending circumferential struts and a plurality of columns of axial struts arranged between the circumferential struts; the axial struts in each row are arranged in a staggered mode, wherein the first and second rows of circumferential struts on the lower side define an inflow end of the stent, and the fourth and fifth rows of circumferential struts define an outflow end of the stent; the circumferential struts in each row are formed by connecting a plurality of groups of angled struts, and each group of struts is in a deformable V-shape, with a deformation angle of 0-90 degrees; the axial struts are connected with transverse struts attached thereon to form a staggered honeycomb meshes, the area of honeycomb meshes at the inflow end is basically the same as that of the honeycomb meshes in the middle row, and the area of honeycomb meshes at the outflow end is slightly larger than that of the honeycomb meshes in the other three rows.
7. The stent for interventional valve-in-valve according to claim 6, characterized in that the area of honeycomb meshes at the outflow end is larger than that of the honeycomb meshes in the other three rows by 10%-20%.
8. The stent for interventional valve-in-valve according to claim 6, characterized in that the area of honeycomb meshes at the inflow end differs by no more than 10% from that of the honeycomb meshes in the middle row.
9. The stent for interventional valve-in-valve according to claim 6, characterized in that the stent has a height of 13-25 mm, an inner diameter of 18-30 mm, and a wall thickness of 0.35-0.65 mm.
10. The stent for interventional valve-in-valve according to claim 6, characterized in that the plurality of groups of axial struts have the same size, the axial struts of honeycomb meshes at the inflow end and in the middle row are close in size, and the axial struts of honeycomb meshes at the outflow end are slightly larger than that of the honeycomb meshes in the other three rows.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0016]
[0017]
[0018]
DETAILED DESCRIPTION OF THE INVENTION
[0019] The specific embodiments are described below with specific embodiments. It should be understood that the specific examples described herein are merely illustrative of the present invention and are not intended to limit the present invention.
[0020] Interventional valve-in-valve is commonly used in previously surgically implanted or intervened failed bioprosthetic heart valves (including four valve-implanted or intervened bioprosthetic valves) to achieve re-interventional treatment of the heart valve. The structure of the existing stent for interventional valve-in-valve is shown in
[0021] Referring to
[0022] In some cases, where a better interventional valve-in-valve is desired, the stent may be augmented with a row of honeycomb mesh. Generally, the stent has a height of 13-25 mm, an inner diameter of 18-30 mm, and a wall thickness of 0.35-0.65 mm.
[0023] Other structures of the interventional valve-in-valve in the present embodiment, such as a connecting post structure connected to the valve leaflet, may employ the same or similar structures as in the prior art.
[0024] Finally, it should be noted that the foregoing examples are merely intended for describing the technical solutions of the present invention, but not for limiting the present invention. Although the present invention is described in detail with reference to the foregoing examples, persons of ordinary skill in the art should understand that they may still make modifications to the technical solutions described in the foregoing examples or make equivalent replacements to some or all technical features thereof, without departing from the scope of the technical solutions of the examples of the present invention.