IP Library Granted Patent US 10,492,918
Granted Patent B2
US 10,492,918 · App. 15/209,080 · Granted Dec 3, 2019

In-situ formed intervertebral fusion device and method

Inventor: 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 10,492,918
App. No.
15/209,080
Granted
Dec 3, 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 (23)

1. A method of treating the spine between upper and lower adjacent vertebral endplates, comprising:

a) inserting a first elongate component having an upper elongate surface into the spine between the upper and lower adjacent vertebral endplates so that the upper elongate surface is disposed at a nonparallel angle between the endplates, wherein the first elongate component:

i) forms an arc along its elongate dimension defining a concave side surface and a convex side surface, and

ii) has a convex upper surface running longitudinally along the upper elongate surface, wherein the convex upper surface forms a convex transverse cross-section;

b) sliding a second elongate component over the first elongate component, wherein the second elongate component:

i) forms an arc along its elongate dimension defining a concave side surface and a convex side surface, and

ii) has a second concave surface running longitudinally along a longitudinal surface, wherein the second concave surface forms a concave transverse cross-section;

wherein the convex upper surface of the first elongate component and the second concave surface of the second elongate component slidably mate so as to guide the sliding of the second elongate component over the first elongate component, and

c) flowing a bone filler material into the spine to contact the concave side surface of the second elongate component therewith.

2. The method of claim 1 , wherein sliding the second elongate component over the first elongate component is effective to increase a height of the spine.

3. The method of claim 1 , wherein sliding the second elongate component over the first elongate component is performed in situ.

4. The method of claim 1 , wherein sliding the second elongate component over the first elongate component comprises longitudinally translating the second elongate component over the first elongate component.

5. The method of claim 1 , wherein at least one of the first and second elongate components comprises PEEK.

6. A method of treating the spine between adjacent upper and lower vertebral endplates, comprising:

a) inserting a guidewire into the spine so that the guidewire is disposed at a nonparallel angle between the endplates;

b) passing a curved spinal implant over the guidewire and into the spine such that an upper surface of a first portion of the implant passes under a bottom surface of a second portion of the implant, the curved spinal implant having a concave side surface;

c) removing the guidewire; and

d) flowing a bone filler material into the spine to contact the concave side surface of the curved spinal implant.

7. The method of claim 6 , wherein longitudinal advancement of the curved spinal implant progressively increases a height between the upper and lower vertebral endplates.

8. The method of claim 6 , wherein passing the curved spinal implant into the spine increases a height of the spine.

9. The method of claim 6 , wherein the curved spinal implant is configured to transition from an unexpanded configuration to an expanded configuration by longitudinal translating movement.

10. The method of claim 6 , wherein the guidewire is metallic.

11. The method of claim 6 , wherein the curved spinal implant comprises PEEK.

Continuity (18)
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 20160317313A1 · Nov 3, 2016
Cited By (10)
US 12,232,790 US 12,247,071 US 12,318,304 US 12,329,652 US 12,390,343 US 12,390,344 US 12,427,031 US 12,433,757 US 12,440,346 US 12,447,026