IP Library Granted Patent US 10,512,545
Granted Patent B2
US 10,512,545 · App. 15/792,140 · Granted Dec 24, 2019

Interbody spacer for spinal fusion

Inventor: Josh Arnone (Wentzville, MO)
Assignee: CoreLink, LLC
A61F2/30767A61F2/30771A61F2/30907A61F2/447A61F2/4465A61F2002/2835A61F2002/30011A61F2002/3092A61F2002/3093A61F2002/30774A61F2002/30904A61F2002/30968A61F2002/30978A61F2002/30985A61F2002/4629
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Quick Facts
Patent No.
US 10,512,545
App. No.
15/792,140
Granted
Dec 24, 2019
Kind
B2
Abstract

An interbody spacer for spinal fusion surgery includes first and second opposite side walls that have open-cell metal foam at upper and lower faces, and a three-dimensional lattice disposed between open-cell metal foam at the upper and lower faces. The open-cell metal foam is in communication with the three-dimensional lattice so that bone growth can enter the three-dimensional lattice from the open-cell metal foam. The interbody spacer may be formed by additive manufacturing.

Claims (35)

1. An interbody spacer for spinal fusion surgery, the interbody spacer comprising:

first and second opposite longitudinal end portions, wherein a longitudinal axis of the interbody spacer extends through the first and second opposite end portions;

first and second opposite side walls extending longitudinally between and interconnecting the first and second longitudinal end portions, wherein the first and second opposite side walls define a width of the interbody spacer therebetween, the first and second opposite side walls having interior and exterior surfaces;

upper and lower faces at respective upper and lower portions of the corresponding first and second opposite longitudinal end portions and first and second opposite side walls, wherein the upper and lower faces define a height of the interbody spacer therebetween; and

an interior cavity defined by the first and second opposite longitudinal end portions and the interior surfaces of the first and second opposite side walls, wherein the interior cavity extends through the upper and lower faces,

wherein each of the first and second opposite side walls includes

open-cell metal foam at the upper and lower faces, and

a three-dimensional lattice disposed between the open-cell metal foam at the upper and lower faces, wherein the open-cell metal foam is in communication with the three-dimensional lattice so that bone growth can enter the three-dimensional lattice from the open-cell metal foam.

2. The interbody spacer set forth in claim 1 , wherein the three-dimensional lattice of each of the first and second opposite side walls defines a set of transverse passages extending transversely through the corresponding side wall from the interior cavity through the exterior surface of the side wall, a set of heightwise passages extending heightwise through the three-dimensional lattice from an upper end of the three-dimensional lattice to a lower end of the three-dimensional lattice, and a set of longitudinal passages extending generally longitudinally through the three-dimensional lattice from a first longitudinal end to a second longitudinal end of the three-dimensional lattice.

3. The interbody spacer set forth in claim 2 , wherein the transverse passages, the heightwise passages, and the longitudinal passages intersect and are in communication with one another.

4. The interbody spacer set forth in claim 2 , wherein an open area of each three-dimensional lattice increases from adjacent the exterior surface of the corresponding side wall toward the interior surface of the corresponding side wall.

5. The interbody spacer set forth in claim 4 , wherein a structural integrity of each three-dimensional lattice increases from adjacent the exterior surface of the corresponding side wall toward the interior surface of the corresponding side wall.

6. The interbody spacer set forth in claim 2 , wherein the transverse passages are arranged in longitudinal and heightwise rows extending longitudinally and heightwise of the corresponding side wall.

7. The interbody spacer set forth in claim 6 , wherein a cross-sectional area of each transverse passage gradually increases from the exterior surface to the interior surface of the corresponding side wall.

8. The interbody spacer set forth in claim 2 , wherein the heightwise passages are arranged in rows extending longitudinally and transversely along the corresponding side wall.

9. The interbody spacer set forth in claim 8 , wherein a cross-sectional area of each heightwise passage generally increases from adjacent the exterior surface toward the interior surface of the corresponding side wall.

10. The interbody spacer set forth in claim 2 , wherein the longitudinal passages are arranged in rows extending heightwise and transversely along the corresponding side wall.

11. The interbody spacer set forth in claim 10 , a cross-sectional area of each longitudinal passage generally increases from adjacent the exterior surface toward the interior surface of the corresponding side wall.

12. The interbody spacer set forth in claim 1 , wherein the three-dimensional lattice of each of the first and second opposite side walls comprises interconnected structural strut members.

13. The interbody spacer set forth in claim 12 , wherein the strut members are connected to one another at nodes and define intersecting passages extending through the side walls.

14. The interbody spacer set forth in claim 13 , wherein the strut members adjacent the exterior surface of each side wall have cross-sectional areas greater than the cross-sectional areas of the strut members adjacent the interior surface of the corresponding side wall.

15. The interbody spacer set forth in claim 14 , wherein the cross-sectional areas of the strut members decreases gradually toward the interior surface of the corresponding side wall.

16. The interbody spacer set forth in claim 14 , wherein strut members extend from the nodes at increasing angles relative to a transverse axis T passing through adjacent nodes and a heightwise axis H passing through adjacent nodes from adjacent the interior surface toward the exterior surface of the corresponding side wall.

17. The interbody spacer set forth in claim 14 , wherein the strut members extend from the nodes at increasing angles relative to a longitudinal axis passing through adjacent nodes from adjacent the interior surface toward the exterior surface of the corresponding side wall.

18. The interbody spacer set forth in claim 1 , wherein the interbody spacer is an integrally formed, one-piece component formed by additive manufacturing.

19. The interbody spacer set forth in claim 1 , wherein the three-dimensional lattice of each of the first and second opposite side walls defines a plurality of interconnected passages.

20. A method of forming an interbody spacer comprising:

forming the interbody spacer as an integral, one-piece interbody spacer by additive manufacturing process, wherein the formed integral, one-piece interbody spacer comprises:

first and second opposite longitudinal end portions, wherein a longitudinal axis of the interbody spacer extends through the first and second opposite end portions;

first and second opposite side walls extending longitudinally between and interconnecting the first and second longitudinal end portions, wherein the first and second opposite side walls define a width of the interbody spacer therebetween, the first and second opposite side walls having interior and exterior surfaces;

upper and lower faces at respective upper and lower portions of the corresponding first and second opposite longitudinal end portions and first and second opposite side walls, wherein the upper and lower faces define a height of the interbody spacer therebetween; and

an interior cavity defined by the first and second opposite longitudinal end portions and the interior surfaces of the first and second opposite side walls, wherein the interior cavity extends through the upper and lower faces,

wherein each of the first and second opposite side walls includes

open-cell metal foam at the upper and lower faces, and

a three-dimensional lattice disposed between the open-cell metal foam at the upper and lower faces, wherein the open-cell metal foam is in communication with the three-dimensional lattice so that bone growth can enter the three-dimensional lattice from the open-cell metal foam.

Assignments (8)
SECURITY INTEREST Recorded Jul 22, 2024
From: CORELINK, LLC
To: VARAGON CAPITAL PARTNERS AGENT, LLC, AS ADMINISTRATIVE AGENT
Reel/Frame 068045/0638 →
SECURITY INTEREST Recorded Jun 24, 2024
From: CORELINK, LLC
To: VARAGON CAPITAL PARTNERS AGENT, LLC, AS ADMINISTRATIVE AGENT
Reel/Frame 067820/0916 →
RELEASE OF SECURITY INTEREST Recorded Jun 23, 2023
From: MIDCAP FINANCIAL TRUST
To: CORELINK, LLC
Reel/Frame 064042/0310 →
CORRECTIVE ASSIGNMENT TO CORRECT THE APPLICATION NUMBER 15782140 PREVIOUSLY RECORDED AT REEL: 045951 FRAME: 0918. ASSIGNOR(S) HEREBY CONFIRMS THE SECURITY INTEREST . Recorded Jun 22, 2021
From: CORELINK, LLC
To: TWIN BROOK CAPITAL PARTNERS, LLC, AS AGENT
Reel/Frame 057127/0504 →
SECURITY INTEREST Recorded Apr 14, 2021
From: CORELINK, LLC
To: MIDCAP FINANCIAL TRUST
Reel/Frame 055918/0267 →
RELEASE OF SECURITY INTEREST Recorded Apr 14, 2021
From: TWIN BROOK CAPITAL PARTNERS, LLC
To: CORELINK, LLC
Reel/Frame 055919/0235 →
SECURITY INTEREST Recorded May 31, 2018
From: CORELINK, LLC
To: TWIN BROOK CAPITAL PARTNERS, LLC, AS AGENT
Reel/Frame 045951/0918 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 31, 2017
From: ARNONE, JOSH
To: CORELINK, LLC
Reel/Frame 044637/0571 →
Continuity (2)
Provisional Application 62412091 · Oct 24, 2016
Related Publication 20180110624A1 · Apr 26, 2018
Cited By (9)
US 12,263,091 US 12,279,958 US 12,279,969 US 12,318,311 US 12,414,858 US 12,544,233 US 12,653,680 US 12,667,461 US 12,714,572