IP Library Granted Patent US 8,945,109
Granted Patent B2
US 8,945,109 · App. 13/863,272 · Granted Feb 3, 2015

Methods and devices for treating tissue

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Quick Facts
Patent No.
US 8,945,109
App. No.
13/863,272
Granted
Feb 3, 2015
Kind
B2
Abstract

The invention provides a system and method for achieving the cosmetically beneficial effects of shrinking collagen tissue in the dermis or other areas of tissue in an effective, non-invasive manner using an array of electrodes. Systems described herein allow for improved treatment of tissue. Additional variations of the system include array of electrodes configured to minimize the energy required to produce the desired effect.

Claims (30)

1. A method for treating tissue by applying energy to tissue, the method comprising:

providing an energy transfer unit comprising a plurality of electrodes each having an active area, the plurality of electrodes extending at a fixed angle relative to a tissue engaging surface of the energy transfer unit;

applying the tissue engaging surface against a surface layer of tissue establish a starting point for the plurality of electrodes;

advancing the plurality of electrodes into the surface layer of tissue by a uniform depth and at the fixed angle relative to the tissue engaging surface such that the active area of the electrodes extends at the oblique angle through a target layer of tissue; and

applying energy to the active region to create a treatment lesion in the target layer of tissue, where a length of the treatment lesion along the active area in the target layer of tissue is larger than if the plurality of electrodes were advanced perpendicular into the surface layer of tissue.

2. The method of claim 1 , further comprising withdrawing the electrodes proximally to the energy transfer unit prior to placing the tissue engaging surface in contact with the surface layer and,

advancing the plurality of electrodes through the surface layer comprises advancing the plurality of electrodes distally to the tissue engaging surface and into the target layer of tissue.

3. The method of claim 2 , further comprising spring loading the plurality of electrodes such that advancing the plurality of electrode through the surface layer comprises advancing the electrodes through the surface layer using a spring-force.

4. The method of claim 1 , further comprising inducing a vibration in the electrode as the electrodes advance through the surface layer.

5. The method of claim 1 , where each electrode extends through an opening in an introducer member, where pressing the introducer member against the surface layer places the surface layer in traction.

6. The method of claim 1 , placing the tissue engaging surface in contact with the surface layer by placing the tissue engaging surface against the surface layer with sufficient force to substantially flatten the surface layer to place the portion of the surface layer in traction and move the portion of the surface layer in a direction away from the electrodes.

7. The method of claim 6 , where inducing a vibration in the electrodes comprises applying ultrasound energy to the electrodes.

8. The method of claim 1 , where the plurality of electrodes comprise a plurality of electrode pairs, each electrode pair comprising an active and return electrode, and where each electrode pair is coupled to an independent channel of a power supply.

9. The method of claim 8 , where each electrode pair is spaced a sufficient distance from an adjacent electrode pair to minimize formation of a cross-current path between adjacent electrode pairs.

10. The method of claim 9 , where each active and return electrode is spaced sufficiently close to form a treatment-current path between active and return electrodes and minimizes formation of the cross-current path between adjacent electrode pairs.

11. The method of claim 10 , where spacing between active and return electrodes is between 1 and 3 mm, and spacing between adjacent electrode pairs is at least 5 mm.

12. The method of claim 8 , where each independent channel of the power supply provides no more than 1 watt of energy.

13. The method of claim 8 , where the power supply is configured to energize adjacent electrode pairs at different times.

14. The method of claim 1 , further comprising placing a portion of the surface layer of tissue in traction prior to advancing electrodes through the surface layer of tissue.

15. An electrode array for treating an area of tissue, the array comprising:

a treatment body comprising a plurality of openings spaced from a tissue engaging surface having a planar portion such that when the planar portion of the tissue engaging surface is placed on a first area of a surface layer of tissue, the openings are spaced from the tissue engaging surface and the first area along the surface layer; and

a plurality of electrode pairs each pair comprising an active and a return electrode, where the electrode pairs extend through openings in the treatment device, where each electrode pair is extendable from the opening at an oblique angle relative to the planar portion of the tissue engaging surface and by a predetermined distance to position an active area of each active and return electrode of the electrode pair in the area of tissue when extended, such that a region of treatment corresponding to the active area of each active and return electrode extends in the area of tissue by a length that is greater than if the electrode pair was extended perpendicular to the tissue surface.

16. The electrode array of claim 15 , further comprising a power supply having a plurality of independent channels Where each channel is adapted to be coupled to one electrode pair.

17. The electrode array of claim 16 , where the power supply is configured to energize adjacent electrode pairs at different times.

18. The electrode array of claim 16 , where each independent channel of the power supply provides no more than 1 watt of energy to each electrode pair.

19. The electrode array of claim 16 , further comprising a vacuum source fluidly coupled to the openings, such that upon the application of a vacuum and when the treatment body is in contact with an epidermis, the epidermis is drawn and maintained against the treatment body.

20. The electrode array of claim 16 , where each electrode is moveable through an introducer member, where pressing the introducer member against the surface tissue places the surface tissue in traction.

21. The electrode array of claim 16 , where each electrode pair is spaced a sufficient distance from an adjacent electrode pair to minimize formation of a cross-current path between adjacent electrode pairs.

22. The electrode array of claim 21 , where each active and return electrode is spaced sufficiently close to form a treatment-current path between active and return electrodes and minimizes formation of the cross-current path between adjacent electrode pairs.

23. The electrode array of claim 22 , where spacing between active and return electrodes is between 1 and 3 mm, and spacing between adjacent electrode pairs is at least 5 mm.

Assignments (4)
NOTICE OF SUCCESSION OF AGENCY AT REEL/FRAME 059593/0269 Recorded May 29, 2026
From: BARCLAYS BANK PLC, AS PRIOR COLLATERAL AGENT
To: HSBC BANK USA, N.A., AS SUCCESSOR COLLATERAL AGENT
Reel/Frame 075648/0952 →
RELEASE (REEL 043925 / FRAME 0001) Recorded Apr 4, 2022
From: ING CAPITAL LLC
To: SYNERON MEDICAL LTD.; CANDELA CORPORATION; PRIMAEVA CORPORATION
Reel/Frame 059593/0131 →
SECURITY AGREEMENT Recorded Apr 4, 2022
From: CANDELA CORPORATION; SYNERON MEDICAL LTD.
To: BARCLAYS BANK PLC, AS COLLATERAL AGENT
Reel/Frame 059593/0269 →
SECURITY AGREEMENT Recorded Sep 20, 2017
From: SYNERON MEDICAL LTD.; CANDELA CORPORATION; PRIMAEVA CORPORATION
To: ING CAPITAL LLC, AS COLLATERAL AGENT
Reel/Frame 043925/0001 →