IP Library › Granted Patent US 11,602,384
Granted Patent B2
US 11,602,384 · App. 17/872,175 · Granted Mar 14, 2023

Methods for generating and applying compression within a body

Inventors: Matthew Palmer (Cambridge, MA); Matthew Fonte (Concord, MA); Robert Devaney (Auburndale, MA); Kaitlyn Nealon (Boston, MA)
Assignee: Arthrex, Inc.
A61B17/863A61B17/7291A61B17/866A61B17/8685A61B17/8872A61B2017/00867
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Quick Facts
Patent No.
US 11,602,384
App. No.
17/872,175
Granted
Mar 14, 2023
Kind
B2
Abstract

This disclosure describes exemplary screw and intramedullary devices that are better able to bring bone fragments into close proximity with each other, generate a compressive load, and maintain that compressive load for a prolonged period of time while healing occurs. The devices are made of a shape memory material.

Claims (31)

1. A method for applying compression within a body, the method comprising:

drilling a hole across a bone fracture line of a patient, wherein the bone fracture line separates a first bone fragment from a second bone fragment;

positioning a k-wire through the hole;

positioning the k-wire through a through-hole of a compression implant such that the compression implant is positioned at least partially through the hole, wherein the compression implant includes a shaft having a threaded first end and a second end opposite the threaded first end, wherein the shaft further includes a Nitinol expandable section positioned between the threaded first end and the second end, and wherein the through-hole of the compression implant extends from the threaded first end of the shaft to the second end of the shaft;

securing the threaded first end of the shaft of the compression implant to the second bone fragment; and

transitioning, as a driver turns the compression implant, the Nitinol expandable section of the shaft from a first length to a second length, wherein the second length measured along a longitudinal axis of the expandable section is greater than the first length measured along the longitudinal axis of the expandable section, and wherein the Nitinol expandable section is biased to the first length due to the shape memory properties of the Nitinol material to thereby provide a compressive force across the bone fracture line of the patient.

2. A method for applying compression within a body, the method comprising:

drilling a hole across a bone fracture line of a patient, wherein the bone fracture line separates a first bone fragment from a second bone fragment;

positioning a compression implant at least partially through the hole, wherein the compression implant includes a shaft having a threaded first end and a second end opposite the threaded first end, and wherein the shaft further includes a Nitinol expandable section positioned between the threaded first end and the second end;

securing the threaded first end of the shaft of the compression implant to the second bone fragment;

transitioning, as a driver turns the compression implant, the Nitinol expandable section of the shaft from a first length to a second length, wherein the second length measured along a longitudinal axis of the expandable section is greater than the first length measured along the longitudinal axis of the expandable section, and wherein the Nitinol expandable section is biased to the first length due to the shape memory properties of the Nitinol material to thereby provide a compressive force across the bone fracture line of the patient;

positioning a k-wire through a through-hole of the compression implant after securing the threaded first end of the shaft of the compression implant to the second bone fragment, wherein the through-hole of the compression implant extends from the threaded first end of the shaft to the second end of the shaft; and

fusing a joint distal to the bone fracture line.

3. A method for applying compression within a body, the method comprising:

drilling a hole across a bone fracture line of a patient, wherein the bone fracture line separates a first bone fragment from a second bone fragment;

positioning a compression implant at least partially through the hole, wherein the compression implant includes a shaft having a threaded first end and a second end opposite the threaded first end, and wherein the shaft further includes a Nitinol expandable section positioned between the threaded first end and the second end;

securing the threaded first end of the shaft of the compression implant to the second bone fragment; and

transitioning, as a driver turns the compression implant, the Nitinol expandable section of the shaft from a first length to a second length, wherein the second length measured along a longitudinal axis of the expandable section is greater than the first length measured along the longitudinal axis of the expandable section, and wherein the Nitinol expandable section is biased to the first length due to the shape memory properties of the Nitinol material to thereby provide a compressive force across the bone fracture line of the patient.

4. The method of claim 3 , further comprising:

positioning a k-wire through the hole; and

positioning the k-wire through a through-hole of the compression implant prior to securing the threaded first end of the shaft of the compression implant to the second bone fragment, wherein the through-hole of the compression implant extends from the threaded first end of the shaft to the second end of the shaft.

5. The method of claim 3 , further comprising:

positioning a k-wire through a through-hole of the compression implant after securing the threaded first end of the shaft of the compression implant to the second bone fragment, wherein the through-hole of the compression implant extends from the threaded first end of the shaft to the second end of the shaft; and

fusing a joint distal to the bone fracture line.

6. The method of claim 3 , further comprising:

positioning a k-wire through a through-hole of the compression implant after securing the threaded first end of the shaft of the compression implant to the second bone fragment, wherein the through-hole of the compression implant extends from the threaded first end of the shaft to the second end of the shaft; and

fusing a joint proximal to the bone fracture line.

7. The method of claim 3 , wherein the first end of the shaft comprises a self-drilling feature, and wherein the first end of the shaft comprises a self-tapping feature.

8. The method of claim 7 , wherein the self-drilling feature comprises one or more cutting edges.

9. The method of claim 7 , wherein the self-tapping feature comprises a flute.

10. The method of claim 3 , wherein the second length of the expandable section of the shaft is up to 8% greater than the first length of the expandable section of the shaft.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 11, 2022
From: PALMER, MATTHEW; FONTE, MATTHEW; DEVANEY, ROBERT; NEALON, KAITLYN
To: MX ORTHOPEDICS, CORP.
Reel/Frame 061148/0797 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 11, 2022
From: MX ORTHOPEDICS, CORP.
To: ARTHREX, INC.
Reel/Frame 061148/0806 →
Continuity (7)
Continuation 17392566 · Aug 3, 2021
Continuation 16416930 · May 20, 2019
Division 15288131 · Oct 7, 2016
Provisional Application 62293453 · Feb 10, 2016
Provisional Application 62238199 · Oct 7, 2015
Provisional Application 62238210 · Oct 7, 2015
Related Publication 20220354556A1 · Nov 10, 2022
Cited By (2)
US 12,239,310 US 12,433,654