IP Library Granted Patent US 10,363,167
Granted Patent B2
US 10,363,167 · App. 14/423,928 · Granted Jul 30, 2019

Device for automated capsulotomy

Inventor: Christopher Guild Keller (El Cerrito, CA)
Assignee: Mynosys Cellular Devices, Inc.
A61F9/00754A61B18/082A61B2018/00601A61F9/0079
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Quick Facts
Patent No.
US 10,363,167
App. No.
14/423,928
Granted
Jul 30, 2019
Kind
B2
Abstract

A surgical device is disclosed for cutting tissue, including for performing a capsulotomy of a lens capsule of an eye. This device includes a reversibly collapsible cutting element for cutting a portion of a capsule membrane of the eye. The cutting element includes an outer layer, an inner layer, and a bottom layer that has a higher electrical resistance than the electrical resistance of the outer layer and the inner layer. The bottom layer is configured to conduct an electrical current between the outer layer and the inner layer, which causes a temperature increase in the bottom layer for cutting tissue.

Claims (34)

1. A surgical device for tissue cutting, the device comprising:

a reversibly collapsible supporting element; and

a reversibly collapsible cutting element attached to the supporting element, the cutting element comprising:

an electrically conductive outer layer on an outer diameter of the supporting element, the outer layer comprising a layer of a first metal having a first resistivity and a layer of a second metal having a second resistivity lower than the first resistivity,

an electrically conductive inner layer on an inner diameter of the supporting element, the inner layer comprising a layer of the first metal and a layer of the second metal, and

an electrically conductive bottom layer on a bottom edge of the supporting element, the bottom layer being connected to the outer layer and the inner layer, the bottom layer having a third resistivity greater than the first resistivity and the second resistivity, the bottom layer configured to conduct an electrical current between the outer layer and the inner layer that causes a temperature increase in the bottom layer for cutting the tissue, the bottom layer comprising a layer of the first metal.

2. The surgical device of claim 1 , wherein the cutting element is circular in shape.

3. The surgical device of claim 1 , further comprising a suction cup attached to the supporting element.

4. The surgical device of claim 1 , wherein the bottom layer has a thickness of 10-200 angstroms, and is thinner than the inner and outer layers.

5. The surgical device of claim 1 , wherein the device is capable of conducting the electrical current as (1) a single electrical current pulse, or (2) a series of electrical current pulses.

6. The surgical device of claim 1 , wherein (1) the outer layer is coupled to a first lead, the first lead configured to conduct the electrical current to the outer layer and to the bottom layer, and wherein (2) the inner layer is coupled to a second lead, the inner layer configured to conduct the electrical current from the bottom layer to the second lead.

7. The surgical device of claim 1 , wherein the supporting element is composed of an elastic material, and is coated with an insulating layer, and wherein the outer layer, the inner layer, and the bottom layer are coated over the insulating layer.

8. The surgical device of claim 1 , wherein each of the inner and outer layers comprise a plurality of layers including the layer of the first metal and the layer of the second metal, wherein one of the plurality of layers is thinner and of a higher resistance than another of the layers.

9. The surgical device of claim 1 , wherein the supporting element comprises nitinol and wherein the first metal and the second metal comprise one or more of: a tantalum layer coated with a tantalum oxide layer coated with a second tantalum layer and a gold layer coated over the second tantalum layer.

10. The surgical device of claim 1 , wherein the supporting element has a thickness of 25-50 microns at a portion of the supporting element between the outer layer and the inner layer.

11. The surgical device of claim 1 , wherein the supporting element is composed of elastic material.

12. The surgical device of claim 11 , wherein at least a portion of the supporting element is coated with an adhesion material.

13. The surgical device of claim 12 , wherein at least a portion of the adhesion material of the supporting element is coated with a diffusion barrier material.

14. The surgical device of claim 1 , wherein the device comprises a capsulotomy device for performing a capsulotomy on a lens capsule of an eye.

15. The surgical device of claim 1 , wherein the inner layer, the outer layer and the bottom layer further comprise an insulator under the first metal.

16. A surgical device for tissue cutting, the device comprising:

a reversibly collapsible supporting element; and

a reversibly collapsible cutting element attached to the supporting element, the cutting element comprising:

an electrically conductive outer layer on an outer surface of the supporting element,

an electrically conductive inner layer on an inner surface of the supporting element, and

a bottom layer on a bottom edge of the supporting element, the bottom layer being connected to the outer layer and the inner layer, the bottom layer having a higher electrical resistance than that of the outer layer and the inner layer, the bottom layer configured to conduct an electrical current between the outer layer and the inner layer that causes a temperature increase in the bottom layer for cutting the tissue, wherein the inner, outer, and bottom layers comprise a tantalum layer coated with a tantalum oxide layer coated with a second tantalum layer.

17. A surgical device for tissue cutting, the device comprising:

a reversibly collapsible supporting element having a circular shape and collapsible in a longitudinal direction; and

a reversibly collapsible cutting element attached to the supporting element, the cutting element comprising:

an electrically conductive outer layer on an outer surface of the supporting element, the electrically conductive outer layer comprising a first plurality of metal layers each with different resistivities,

an electrically conductive inner layer on an inner surface of the supporting element, the electrically conductive inner layer comprising a second plurality of metal layers each with different resistivities, and

an electrically conductive bottom layer on a bottom edge of the supporting element, the bottom layer being connected to the outer layer and the inner layer, the bottom layer having a higher electrical resistance than a resistance of the outer layer and a resistance of the inner layer, the bottom layer configured to conduct an electrical current between the outer layer and the inner layer that causes a temperature increase in the bottom layer for cutting the tissue, wherein the bottom layer is thinner than the outer layer and the inner layer.

18. The surgical device of claim 15 , wherein the bottom layer is flat.

19. The surgical device of claim 15 , wherein the outer layer and the inner layer are parallel to each other.

Assignments (3)
CHANGE OF NAME Recorded Apr 27, 2020
From: MYNOSYS CELLULAR DEVICES, INC.
To: CENTRICITY VISION, INC.
Reel/Frame 052589/0017 →
CONFIRMATORY LICENSE Recorded Aug 18, 2017
From: MYNOSYS CELLULAR DEVICES, INC.
To: NATIONAL INSTITUTES OF HEALTH (NIH), U.S. DEPT. OF HEALTH AND HUMAN SERVICES (DHHS), U.S. GOVERNMENT
Reel/Frame 043602/0910 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 26, 2015
From: KELLER, CHRISTOPHER GUILD
To: MYNOSYS CELLULAR DEVICES, INC.
Reel/Frame 035044/0031 →
Continuity (2)
Provisional Application 61703514 · Sep 20, 2012
Related Publication 20150216727A1 · Aug 6, 2015
Cited By (1)
US 12,721,751