IP Library Granted Patent US 12,239,551
Granted Patent B2
US 12,239,551 · App. 18/139,110 · Granted Mar 4, 2025

Sagittal balance systems and methods of use thereof

Inventors: Frank LaMarca (Ann Arbor, MI); Robert Lee (Hertfordshire, GB); Gregory Poulter (Indianapolis, IN); Steven Tresser (Tampa, FL); Michael Wang (North Miami, FL); Josh Rubin (Reston, VA); Hadley Sis (Reston, VA); Nick Padovani (Fairfax, VA)
Assignee: K2M, Inc.
A61F2/4611A61B17/025A61F2/30749A61F2/30771A61F2/4425A61B2017/0256A61F2002/30405A61F2002/30784A61F2002/30934A61F2/4603A61F2002/4615A61F2002/469
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Quick Facts
Patent No.
US 12,239,551
App. No.
18/139,110
Granted
Mar 4, 2025
Kind
B2
Abstract

A system for dilating tissue includes a retractor having a pair of retractor blades that are movable towards and away from each other to retract tissue of a patient. The retractor blades have longitudinal guide channels. A first pin is attachable to a first vertebra. The system also includes an interbody spacer insertion device that has a guide channel for slidably engaging the longitudinal channel guide and is releasably attachable to an interbody spacer. The interbody spacer insertion device is configured to guide the interbody spacer into a space between adjacent vertebrae. A method for using the system includes advancing the retractor blades towards first and second vertebrae. The first retractor blade is attached to the first vertebra using the first pin and the retractor blades are moved away from each other. The interbody spacer insertion device is translated towards the vertebrae to position the interbody spacer between the vertebrae.

Claims (53)

1. A system comprising:

an interbody spacer having an attachment screw receiving hole;

an inserter comprising:

a tubular body portion;

a rotatable screw engagement mechanism within the tubular body portion, the screw engagement mechanism including an engagement portion; and

arms extending from a distal end of the tubular body portion; and

a plate comprising:

an attachment bore for receiving an attachment screw inserted therethrough to secure the plate to the interbody spacer, the plate having an axis passing through the attachment bore, wherein the engagement portion is configured to receive the attachment screw such that, when the screw engagement mechanism is rotated, the attachment screw is advanced through the attachment bore;

one or more indents, wherein the one or more indents are configured to receive a respective arm of the inserter such that the inserter can be removably coupled directly to the plate; and

a pair of bone screw receiving holes with a center of each bone screw receiving hole offset from a plane transverse to the axis.

2. The system of claim 1 , wherein the axis is parallel to a longitudinal axis of the interbody spacer extending in a lateral to medial direction when the interbody spacer is implanted.

3. The system of claim 1 , further comprising the attachment screw, wherein the attachment screw is configured to extend through the attachment bore and engage the attachment screw receiving hole to secure the plate to the interbody spacer.

4. The system of claim 1 , wherein the center of each bone screw receiving hole is offset from the plane transverse to the axis on a same side of the plane.

5. The system of claim 4 , wherein the center of each bone screw receiving hole is offset from the plane by an angle of from about 5 degrees to about 30 degrees.

6. The system of claim 1 , wherein the interbody spacer comprises a top surface substantially parallel to a bottom surface.

7. The system of claim 1 , wherein the interbody spacer comprises a first sidewall having a first height and a second sidewall having a second height different than the first height.

8. The system of claim 1 , wherein the inserter is configured to mate with the interbody spacer via the attachment screw receiving hole.

9. The system of claim 1 , wherein the inserter is further configured to be removably coupled to the interbody spacer.

10. The system of claim 1 , wherein respective arms of the inserter further comprise respective hooks configured to be removably coupled directly to the plate.

11. A method of performing a surgical procedure, comprising:

positioning an interbody spacer between a first vertebrae and a second vertebrae;

releasably coupling one or more arms of an inserter to respective indents on a plate configured to be coupled to the interbody spacer, wherein the one or more arms of the inserter extend from a distal end of a tubular body portion of the inserter;

after the interbody spacer is positioned, positioning the plate using the inserter, wherein the plate comprises a pair of bone screw receiving holes;

coupling the plate to the interbody spacer, wherein the coupling comprises:

receiving, by an engagement portion of a screw engagement mechanism of the inserter, an attachment screw, wherein the screw engagement mechanism is within the tubular body portion of the inserter;

inserting an attachment screw through an attachment bore of the plate and into the attachment screw receiving hole of the interbody spacer, and

advancing the attachment screw through the attachment bore by rotating the screw engagement mechanism;

inserting a first bone screw into a first bone screw receiving hole of the pair of bone screw receiving holes; and

inserting a second bone screw into a second bone screw receiving hole of the pair of bone screw receiving holes.

12. The method of 9 , wherein when positioning the interbody spacer, the interbody spacer is releasably coupled to the inserter.

13. The method of 10 , wherein releasably coupling the interbody spacer to the inserter comprises threadably coupling the inserter to the interbody spacer via the attachment screw receiving hole.

14. The method of claim 11 , wherein releasably coupling the plate to the one or more arms of the inserter comprises releasably coupling prongs of the inserter to the respective indents of the plate.

15. The method of claim 11 , wherein:

the plate comprises an axis passing through the attachment bore, and

a center of each bone screw receiving hole is offset from a plane transverse to the axis.

16. The method of claim 15 , wherein the axis is parallel to a longitudinal axis of the interbody spacer extending in a lateral to medial direction when the interbody spacer is implanted.

17. The method of claim 15 , wherein each bone screw receiving hole is angled such than when the first bone screw or second bone screw is inserted through the respective first and second bone screw receiving holes, the first or second bone screw is inserted into the respective first or second vertebrae.

18. A method of performing a surgical procedure, comprising:

coupling a plate to an interbody spacer, wherein:

the plate comprises an attachment bore, an axis passing through the attachment bore, and a pair of bone screw receiving holes,

the interbody spacer comprises an attachment screw receiving hole, and

the coupling comprises:

receiving, by an engagement portion of a screw engagement mechanism of an inserter, an attachment screw, wherein the screw engagement mechanism is within a tubular body portion of the inserter;

inserting the attachment screw through the attachment bore into the attachment screw receiving hole; and

advancing, by rotating the screw engagement mechanism, the attachment screw into the attachment screw receiving hole;

after coupling the plate to the interbody spacer, releasably coupling one or more arms of the inserter to respective indents on the plate;

after releasably coupling the one or more arms of the inserter to the respective indents on the plate, positioning the coupled plate and interbody spacer between a first vertebrae and a second vertebrae;

inserting a first bone screw into a first bone screw receiving hole of the pair of bone screw receiving holes; and

inserting a second bone screw into a second bone screw receiving hole of the pair of bone screw receiving holes.

19. The method of claim 18 , wherein releasably coupling one or more arms of the inserter to the plate comprises releasably coupling prongs of the inserter to the respective indents of the plate.

20. The method of claim 18 , wherein:

a center of each bone screw receiving hole is offset from a plane transverse to the axis, and

the axis is parallel to a longitudinal axis of the interbody spacer extending in a lateral to medial direction when the interbody spacer is implanted.

Assignments (4)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 23, 2026
From: K2M, INC.
To: VB SPINE LLC
Reel/Frame 075801/0592 →
SECURITY INTEREST Recorded Aug 8, 2025
From: K2M, INC.; VB SPINE US OPCO LLC
To: TEXAS CAPITAL BANK, AS COLLATERAL AGENT
Reel/Frame 072340/0397 →
PATENT SECURITY AGREEMENT Recorded Jun 16, 2025
From: K2M, INC.; VB SPINE US OPCO LLC; VB SPINE LLC
To: ANKURA TRUST COMPANY, LLC, AS COLLATERAL AGENT
Reel/Frame 071682/0116 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 26, 2023
From: LAMARCA, FRANK, M.D.; LEE, ROBERT, M.D.; POULTER, GREGORY, M.D.; TRESSER, STEVEN, M.D.; WANG, MICHAEL; RUBIN, JOSHUA DAVID; SIS, HADLEY; PADOVANI, NICHOLAS
To: K2M, INC.
Reel/Frame 063457/0446 →
Continuity (3)
Continuation 17237549 · Apr 22, 2021
Continuation 16156600 · Oct 10, 2018
Related Publication 20230255793A1 · Aug 17, 2023
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