IP Library Granted Patent US 9,956,011
Granted Patent B2
US 9,956,011 · App. 14/887,201 · Granted May 1, 2018

Interspinous spacer

Inventors: Moti Altarac (Irvine, CA); Shawn Tebbe (Oceanside, CA); Joey Camia Reglos (Lake Forest, CA); Yang Cheng (Foothill Ranch, CA); Murali P. Kadaba (Foster City, CA); Daniel H. Kim (Houston, TX)
Assignee: VertiFlex, Inc.
A61B17/7065
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 9,956,011
App. No.
14/887,201
Granted
May 1, 2018
Kind
B2
Abstract

An implantable spacer for placement between adjacent spinous processes in a spinal motion segment is provided. The spacer includes a body defining a longitudinal axis and passageway. A first arm and a second arm are connected to the body. Each arm has a pair of extensions and a saddle defining a U-shaped configuration for seating a spinous process therein. Each arm has a proximal caming surface and is capable of rotation with respect to the body. An actuator assembly is disposed inside the passageway and connected to the body. When advanced, a threaded shaft of the actuator assembly contacts the caming surfaces of arms to rotate them from an undeployed configuration to a deployed configuration. In the deployed configuration, the distracted adjacent spinous processes are seated in the U-shaped portion of the arms.

Claims (65)

1. An implantable spacer, comprising:

a body;

a first arm rotatably coupled to the body and configured to receive a first protrusion of a first vertebra;

a second arm rotatably coupled to the body and configured to receive a second protrusion of a second vertebra; and

an actuator assembly including

an actuator element, and

a rotatable element that rotates relative to the body when driven by an insertion instrument detachably connected to the actuator assembly to translate the actuator element along the body such that the actuator element causes rotation of the first and second arms from a delivery configuration to a deployed configuration, wherein the first arm is positioned to hold the first protrusion and the second arm is positioned to hold the second protrusion when the first and second arms are in the deployed configuration, and wherein the rotatable element is a spindle with an internally threaded surface.

2. The implantable spacer of claim 1 , wherein the shaft has external threads that threadably engage internal threads of the rotatable element.

3. The implantable spacer of claim 1 , wherein the actuator element moves along a longitudinal axis of the body when the rotatable element rotates relative to the body.

4. The implantable spacer of claim 1 , wherein the rotatable element is translationally fixed with respect to the body.

5. The implantable spacer of claim 1 , further comprising:

a first pin pivotally coupling the first arm to the body; and

a second pin pivotally coupling the second arm to the body.

6. The implantable spacer of claim 1 , wherein each of the first and second arms has a U-shaped end.

7. An implantable spacer, comprising:

a body;

a first arm rotatably coupled to the body and configured to receive a first protrusion of a first vertebra;

a second arm rotatably coupled to the body and configured to receive a second protrusion of a second vertebra; and

an actuator assembly including

an actuator element, and

a rotatable element that rotates relative to the body when driven by an insertion instrument detachably connected to the actuator assembly to translate the actuator element along the body such that the actuator element causes rotation of the first and second arms from a delivery configuration to a deployed configuration, and wherein the first arm is positioned to hold the first protrusion and the second arm is positioned to hold the second protrusion when the first and second arms are in the deployed configuration, and

wherein the actuator element includes

at least one bearing surface, and

a shaft positioned in a passageway in the body and extending through an opening in the rotatable element, and wherein the at least one bearing surface contacts and moves the first and second arms toward the deployed configuration when the rotatable element rotates relative to the shaft to translate the shaft along the passageway.

8. An implantable spacer, comprising:

a body;

a first arm rotatably coupled to the body and configured to receive a first protrusion of a first vertebra;

a second arm rotatably coupled to the body and configured to receive a second protrusion of a second vertebra; and

an actuator assembly including

an actuator element, and

a rotatable element that rotates relative to the body when driven by an insertion instrument detachably connected to the actuator assembly to translate the actuator element along the body such that the actuator element causes rotation of the first and second arms from a delivery configuration to a deployed configuration, wherein the first arm is positioned to hold the first protrusion and the second arm is positioned to hold the second protrusion when the first and second arms are in the deployed configuration,

wherein the first and second arms each have U-shaped portions.

9. An implantable spacer, comprising:

a body;

a first arm rotatably coupled to the body and configured to receive a first protrusion of a first vertebra;

a second arm rotatably coupled to the body and configured to receive a second protrusion of a second vertebra; and

an actuator assembly including

an actuator element, and

a rotatable element that rotates relative to the body when driven by an insertion instrument detachably connected to the actuator assembly to translate the actuator element along the body such that the actuator element causes rotation of the first and second arms from a delivery configuration to a deployed configuration, wherein the first arm is positioned to hold the first protrusion and the second arm is positioned to hold the second protrusion when the first and second arms are in the deployed configuration, and wherein the rotatable element is configured to cause the actuator element to move from a first position to a second position, wherein the actuator element in the first position is spaced apart from both of the first and second arms, and wherein the actuator element in the second position contacts both the first and second arms.

10. An implantable spacer, comprising:

a body;

a first arm rotatably coupled to the body and configured to receive a first protrusion of a first vertebra;

a second arm rotatably coupled to the body and configured to receive a second protrusion of a second vertebra; and

an actuator assembly including

an actuator element movable from a first position to a second position, wherein an externally threaded portion of the actuator element protrudes from the body when the actuator element is in the first position, and wherein most of the threaded portion protruding from the body moves into the body when the actuator element moves from the first position to the second position, and

a rotatable element that rotates relative to the body when driven by an insertion instrument detachably connected to the actuator assembly to translate the actuator element along the body such that the actuator element causes rotation of the first and second arms from a delivery configuration to a deployed configuration, wherein the first arm is positioned to hold the first protrusion and the second arm is positioned to hold the second protrusion when the first and second arms are in the deployed configuration.

11. An implantable spacer, comprising:

a body;

a plurality of deployable arms; and

an actuator assembly including

an actuator element, and

a rotatable element that rotates relative to the body to move the actuator element along the body such that the actuator element moves the deployable arms to reconfigure the implantable spacer from a delivery configuration for delivery between first and second vertebrae to a deployed configuration for holding a first protrusion of the first vertebra and a second protrusion of the second vertebra when the implantable spacer is between the first and second vertebrae and the actuator assembly is driven by an insertion instrument detachably connected to the actuator assembly, wherein the actuator element includes a wedged shaped head and an externally threaded shaft that engages internal threads of the rotatable element.

12. The implantable spacer of claim 11 , wherein the plurality of deployable arms includes:

a first arm rotatably coupled to the body and including a pair of first extensions defining a first window for receiving the first protrusion, and

a second arm rotatably coupled to the body and including a pair of second extensions defining a second window for receiving the second protrusion.

13. The implantable spacer of claim 11 , wherein the actuator element is moved into contact with the deployable arms in response to rotation of the rotatable element.

14. An implantable spacer, comprising:

a body;

a plurality of deployable arms; and

an actuator assembly including

an actuator element, and

a rotatable element that rotates relative to the body to move the actuator element along the body such that the actuator element moves the deployable arms to reconfigure the implantable spacer from a delivery configuration for delivery between first and second vertebrae to a deployed configuration for holding a first protrusion of the first vertebra and a second protrusion of the second vertebra when the implantable spacer is between the first and second vertebrae and the actuator assembly is driven by an insertion instrument detachably connected to the actuator assembly

wherein the actuator element includes

at least one bearing surface, and

a shaft positioned in a passageway in the body and protruding from the body when the implantable spacer is in the deployed configuration, and wherein the shaft translates along the passageway such that the at least one bearing surface contacts at least one of the first and second arms to move the first and second arms toward the deployed configuration when the rotatable element rotates relative to the shaft.

Assignments (1)
MERGER Recorded Nov 6, 2023
From: VERTIFLEX, INC.
To: BOSTON SCIENTIFIC NEUROMODULATION CORPORATION
Reel/Frame 065467/0566 →
Continuity (17)
Continuation 13619195 · Sep 14, 2012
Continuation 12220427 · Jul 24, 2008
Continuation In Part 12217662 · Jul 8, 2008
Continuation In Part 12148104 · Apr 16, 2008
Continuation In Part 11593995 · Nov 7, 2006
Continuation In Part 11582874 · Oct 18, 2006
Continuation In Part 11314712 · Dec 20, 2005
Continuation In Part 11190496 · Jul 26, 2005
Continuation In Part 11079006 · Mar 10, 2005
Continuation In Part 11052002 · Feb 4, 2005
Continuation In Part 11006502 · Dec 6, 2004
Continuation In Part 10970843 · Oct 20, 2004
Provisional Application 60961741 · Jul 24, 2007
Provisional Application 60958876 · Jul 9, 2007
Provisional Application 60923971 · Apr 17, 2007
Provisional Application 60923841 · Apr 16, 2007
Related Publication 20160242822A1 · Aug 25, 2016