IP Library Granted Patent US 10,405,986
Granted Patent B2
US 10,405,986 · App. 15/806,363 · Granted Sep 10, 2019

In-situ formed intervertebral fusion device and method

Inventors: James Edward Kelly (North Easton, MA); Thomas M. DiMauro (Southboro, MA)
Assignee: DePuy Synthes Products, Inc.
A61F2/441A61B17/00234A61F2/28A61F2/442A61F2/446A61F2/4425A61F2/4455A61F2/4465A61F2/4601A61F2/4611A61K9/0024A61K49/006A61L27/06A61L27/12A61L27/18A61L27/3821A61L27/3839A61L27/3847A61L27/50A61L27/52A61L27/54A61L27/56A61F2/30965A61F2002/2817A61F2002/2835A61F2002/302A61F2002/3023A61F2002/3055A61F2002/30062A61F2002/30065A61F2002/30092A61F2002/30131A61F2002/30224A61F2002/30308A61F2002/30383A61F2002/30451A61F2002/30556A61F2002/30579A61F2002/30583A61F2002/30586A61F2002/30604A61F2002/30622A61F2002/30841A61F2002/30971A61F2002/448A61F2002/4475A61F2002/4627A61F2002/4635A61F2002/4677A61F2210/0004A61F2210/0014A61F2210/0061A61F2210/0071A61F2210/0085A61F2220/0016A61F2220/0025A61F2220/0058A61F2230/0013A61F2230/0063A61F2230/0065A61F2230/0069A61F2250/001A61F2250/0003A61F2250/003A61F2250/0009A61F2250/0065A61F2310/00011A61F2310/00179A61F2310/00365A61L2300/252A61L2300/256A61L2300/404A61L2300/414A61L2300/43A61L2300/64A61L2430/02A61L2430/38
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Quick Facts
Patent No.
US 10,405,986
App. No.
15/806,363
Granted
Sep 10, 2019
Kind
B2
Abstract

An orthopedic device for implanting between adjacent vertebrae comprising: an arcuate balloon and a hardenable material within said balloon. In some embodiments, the balloon has a footprint that substantially corresponds to a perimeter of a vertebral endplate. An inflatable device is inserted through a cannula into an intervertebral space and oriented so that, upon expansion, a natural angle between vertebrae will be at least partially restored. At least one component selected from the group consisting of a load-bearing component and an osteobiologic component is directed into the inflatable device through a fluid communication means.

Claims (29)

1. A surgical method, comprising:

inserting an implant into an intervertebral disc space defined between an upper vertebra and a lower vertebra, the implant comprising first and second structural walls and a balloon extending therebetween;

wherein said insertion comprises positioning the first structural wall of the implant in a first lateral portion of the disc space, the first structural wall being positioned such that an upper surface of the first structural wall contacts the upper vertebra and a lower surface of the first structural wall contacts the lower vertebra;

wherein said insertion comprises positioning the second structural wall of the implant in a second lateral portion of the disc space opposite the first lateral portion, the second structural wall being positioned such that an upper surface of the second structural wall contacts the upper vertebra, a lower surface of the second structural wall contacts the lower vertebra, and the second structural wall is spaced a distance apart from the first structural wall;

delivering a flowable material through a cannula and into a cavity of the balloon; and

expanding the balloon such that upper and lower surfaces of the balloon contact the upper and lower vertebrae, respectively, a height dimension defined between said upper and lower surfaces increasing during said expansion.

2. The method of claim 1 , further comprising expanding the balloon in an anterior direction.

3. The method of claim 1 , wherein the structural walls each have an anterior extent and a posterior extent, and wherein the balloon expands beyond the anterior and posterior extents of the structural walls.

4. The method of claim 1 , wherein the balloon comprises a mesh.

5. The method of claim 1 , wherein the balloon comprises polyethylene terephthalate.

6. The method of claim 1 , wherein the implant includes a titanium rod reinforcement.

7. The method of claim 1 , wherein the upper and lower surfaces of the balloon are porous.

8. The method of claim 1 , wherein an anterior portion of the first structural wall is greater in height than a posterior portion of the first structural wall.

9. The method of claim 1 , wherein the balloon is arcuate.

10. The method of claim 1 , wherein the balloon has a pre-deployed state in which it is folded upon itself.

11. The method of claim 1 , further comprising distracting the disc space using the implant.

12. The method of claim 1 , wherein the flowable material comprises an osteobiologic component.

13. The method of claim 1 , wherein a height of the structural walls is at least equal to the height of the natural disc space.

14. The method of claim 1 , wherein the structural walls are polymeric.

15. The method of claim 1 , wherein the flowable material enters the balloon through an opening in a peripheral side surface of the balloon.

16. The method of claim 15 , wherein the opening is closely adjacent to one of the structural walls.

17. A surgical method, comprising:

inserting an implant into an intervertebral disc space defined between an upper vertebra and a lower vertebra, the implant comprising opposed first and second load-bearing lateral portions and a porous inflatable portion connecting the first and second lateral portions, the implant being positioned such that the first and second lateral portions are spaced apart from one another in a lateral direction and in contact with the upper and lower vertebrae; and

delivering a fluid to the implant to expand the inflatable portion such that an upper surface, a lower surface, and a peripheral side surface of the inflatable portion are pushed apart from one another,

wherein the lateral portions each have an anterior extent and a posterior extent, and wherein the inflatable portion expands beyond the anterior and posterior extents of the lateral portions.

18. The method of claim 17 , wherein the inflatable portion comprises a mesh.

19. The method of claim 17 , wherein the inflatable portion comprises polyethylene terephthalate.

20. The method of claim 17 , wherein the implant includes a titanium rod reinforcement.

21. The method of claim 17 , wherein the lateral portions are polymeric.

Continuity (25)
Continuation 15648053 · Jul 12, 2017
Continuation 15331978 · Oct 24, 2016
Continuation 15260465 · Sep 9, 2016
Continuation 15226367 · Aug 2, 2016
Continuation 15219360 · Jul 26, 2016
Continuation 15218362 · Jul 25, 2016
Continuation 15209080 · Jul 13, 2016
Continuation 15206734 · Jul 11, 2016
Continuation 15201472 · Jul 3, 2016
Continuation 15188179 · Jun 21, 2016
Continuation 15074725 · Mar 18, 2016
Continuation 14934289 · Nov 6, 2015
Continuation 14886362 · Oct 19, 2015
Continuation 14886302 · Oct 19, 2015
Continuation 14875983 · Oct 6, 2015
Continuation 14856716 · Sep 17, 2015
Continuation 14684959 · Apr 13, 2015
Continuation 14674070 · Mar 31, 2015
Continuation 14668576 · Mar 25, 2015
Continuation 14640741 · Mar 6, 2015
Continuation 14632875 · Feb 26, 2015
Continuation 13490743 · Jun 7, 2012
Continuation 10778684 · Feb 13, 2004
Provisional Application 60448221 · Feb 14, 2003
Related Publication 20180055649A1 · Mar 1, 2018
Cited By (8)
US 12,232,790 US 12,247,071 US 12,318,304 US 12,390,343 US 12,427,031 US 12,433,757 US 12,440,346 US 12,447,026