IP Library Granted Patent US 12,364,514
Granted Patent B1
US 12,364,514 · App. 18/977,407 · Granted Jul 22, 2025

Method for improved spinal correction surgery implementing non-fusion anterior scoliosis correction techniques with multiple cords

Inventors: M Darryl Antonacci (Skillman, NJ); Randal R. Betz (Bradenton, FL); Laury Cuddihy (New York, NY)
A61B17/7032A61B6/505A61B17/0218A61B17/025A61B17/7001A61B17/7014A61B17/7022A61B34/20A61B90/37A61B2017/0256A61B17/3211A61B2017/565A61B2017/681A61B17/7044A61B2034/2068A61B2090/376
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Quick Facts
Patent No.
US 12,364,514
App. No.
18/977,407
Granted
Jul 22, 2025
Kind
B1
Abstract

Spinal correction surgical techniques and methodologies for correction of scoliosis using non fusion anterior scoliosis correction, including soft tissue releases, unique correction techniques such as de-rotation, and unique single and dual anchor screw/cord applications.

Claims (42)

1. An improved method of performing spinal correction surgery on a patient in which a plurality of vertebrae are adjusted with respect to each other, comprising the steps of:

creating a vertical mini-opening in a side of the patient to enable the surgeon to access directly the plurality of the vertebrae without use of a portal;

inserting, via the mini-opening, an anchor screw into each of the plurality of vertebrae being operated on, each anchor screw comprising a channel suitable for accepting a pair of flexible tensioning cords;

disposing, via the mini-opening, a pair of flexible tensioning cords, comprising a first flexible tensioning cord and a second flexible tensioning cord, within the channels of the anchor screws to enable an adjustment procedure on the plurality of vertebrae; and

performing a vertebrae de-rotation adjustment procedure comprising the steps of

locating a stationary tower on a first anchor screw of a first vertebra;

locating a de-rotation tower on a second anchor screw of a second vertebra;

performing a de-rotation maneuver by

applying a downwards translational force vector to the de-rotation tower,

applying a lateral force vector to the de-rotation tower, and

simultaneously applying a lateral counterforce vector to the stationary tower in opposition to the lateral force vector being applied to the de-rotation tower

tensioning the first flexible tensioning cord and the second flexible tensioning cord in the channel of the second anchor screw of the second vertebra; and

securing the first flexible tensioning cord and the second flexible tensioning cord in the channel of the second anchor screw of the second vertebra in order to maintain the adjustment of the vertebrae.

2. The method of claim 1 wherein the first flexible tensioning cord is tensioned in the channel of the second anchor screw with a tensioner.

3. The method of claim 2 wherein the second flexible tensioning cord is tensioned in the channel of the second anchor screw by hand without a tensioner.

4. An improved method of performing spinal correction surgery on a patient in which a plurality of vertebrae are adjusted with respect to each other, comprising the steps of:

creating a vertical mini-opening in a side of the patient to enable the surgeon to access directly the plurality of the vertebrae without use of a portal;

inserting, via the mini-opening, a pair of anchor screws into each of the plurality of vertebrae being operated on, each of the anchor screws comprising a channel suitable for accepting a pair of flexible tensioning cords, such that a substantially aligned posterior row of posterior anchor screws are formed along the vertebrae next to a substantially aligned anterior row of anterior anchor screws formed along the vertebrae;

disposing a first pair of flexible tensioning cords, comprising a first flexible tensioning cord and a second flexible tensioning cord, within the channels of the posterior row of posterior anchor screws to enable a posterior vertebrae adjustment procedure on the plurality of vertebrae;

performing a posterior vertebrae de-rotation adjustment procedure by comprising the steps of

locating a stationary tower on a first posterior anchor screw of a first vertebra;

locating a de-rotation tower on a second posterior anchor screw of a second vertebra;

performing a de-rotation maneuver by

applying a downwards translational force vector to the de-rotation tower,

applying a lateral force vector to the de-rotation tower, and

simultaneously applying a lateral counterforce vector to the stationary tower in opposition to the lateral force vector being applied to the de-rotation tower;

tensioning the first flexible tensioning cord and the second flexible tensioning cord in the channel of the second posterior anchor screw of the second vertebrae; and

securing the first flexible tensioning cord and the second flexible tensioning cord in the channel of the second posterior anchor screw of the second vertebrae;

disposing a second pair of flexible tensioning cords, comprising a third flexible tensioning cord and a fourth flexible tensioning cord, within the channels of the anterior row of anterior anchor screws to enable an anterior vertebrae adjustment procedure on the plurality of vertebrae;

performing an anterior vertebrae de-rotation adjustment procedure by comprising the steps of

locating the stationary tower on a first anterior anchor screw of the first vertebra;

locating the de-rotation tower on a second anterior anchor screw of the second vertebra;

performing a de-rotation maneuver by

applying a downwards translational force vector to the de-rotation tower,

applying a lateral force vector to the de-rotation tower, and

simultaneously applying a lateral counterforce vector to the stationary tower in opposition to the lateral force vector being applied to the de-rotation tower;

tensioning the third flexible tensioning cord and the fourth flexible tensioning cord in the channel of the second anterior anchor screw of the second vertebrae; and

securing the third flexible tensioning cord and the fourth flexible tensioning cord in the channel of the second anterior anchor screw of the second vertebrae in order to maintain the adjustment of the vertebrae.

5. The method of claim 4 wherein the first flexible tensioning cord is tensioned in the channel of the second posterior anchor screw with a tensioner.

6. The method of claim 5 wherein the second flexible tensioning cord is tensioned in the channel of the second posterior anchor screw by hand without a tensioner.

7. The method of claim 6 wherein the third flexible tensioning cord is tensioned in the channel of the second anterior anchor screw with a tensioner.

8. The method of claim 7 wherein the fourth flexible tensioning cord is tensioned in the channel of the second anterior anchor screw by hand without a tensioner.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 12, 2024
From: ANTONACCI, M DARRYL; BETZ, RANDAL R; CUDDIHY, LAURY
To: INSTITUTE FOR SPINE & SCOLIOSIS, PA
Reel/Frame 069568/0524 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 12, 2024
From: INSTITUTE FOR SPINE & SCOLIOSIS, P.A.
To: MD ANTONACCI FAMILY TRUST
Reel/Frame 069568/0720 →
Continuity (3)
Division 18213745 · Jun 23, 2023
Continuation In Part 18103732 · Jan 31, 2023
Continuation 17124840 · Dec 17, 2020
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