IP Library Granted Patent US 12,376,787
Granted Patent B2
US 12,376,787 · App. 17/381,887 · Granted Aug 5, 2025

Bone fixation monitoring system

Inventors: George Mikhail (Chester Springs, PA); Glen Pierson (West Chester, PA); Jochen Walser (Zuchwil, CH); Jacob Marks (Raynham, MA); Jared Schneider (Raritan, NJ); Christopher Shane (West Chester, PA)
Assignee: Depuy Synthes Products, Inc.
A61B5/4504A61B5/0022A61B5/0031A61B5/0205A61B5/021A61B5/076A61B5/103A61B5/486A61B5/4866A61B5/7275A61B5/742A61B5/746A61B17/80G16H10/60G16H40/67G16H50/20G16H50/30G16H50/50G16H50/70A61B2562/0252A61B2562/0261
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Quick Facts
Patent No.
US 12,376,787
App. No.
17/381,887
Granted
Aug 5, 2025
Kind
B2
Abstract

A system for monitoring the ossification of an internally fixated fracture in a bone of a subject includes an implantable fixation device and an external wireless reader operative to transmit relative load data experienced by a bone plate across a fracture to a data server where trends in the change in added bone-support provided by the bone plate may be visualized. The implantable fixation device includes a primary load sensor and a reference load sensor, where a load value from the reference load sensor may be used to normalize the load value from the primary load sensor. The external wireless reader is in wireless communication with the implantable fixation device and is operative to receive a signal indicative of the load from each load sensor and to energize each load sensor via inductive charging.

Claims (33)

1. A patient monitoring system for monitoring the ossification of an internally fixated fracture in a bone of a subject, the system comprising:

an implantable fixation device operative to be affixed to the bone, the fixation device including:

a bone plate configured to be secured to the bone on opposing sides of the fracture;

a primary load sensor provided on the bone plate at a first location that is operative to be positioned directly adjacent to the fracture, the primary load sensor including:

a first strain sensor operative to monitor an amount of strain in the bone plate at the first location (Primary Strain); and

first communication circuitry operative to transmit a first wireless signal indicative of the amount of Primary Strain;

a reference load sensor provided on the bone plate at a second location that is spaced apart from the first location, the reference load sensor including:

a second strain sensor operative to monitor an amount of strain in the bone plate at the second location (Reference Strain); and

second communication circuitry operative to transmit a second wireless signal indicative of the amount of Reference Strain; and

an external wireless reader including an antenna, a processor, and a wireless communications radio, wherein the processor is configured to:

receive the first and second wireless signals via the antenna; and

transmit a signal to a data server over a wireless communication network using the wireless communication radio, wherein the signal includes an indication of the amount of Primary Strain, the amount of Reference Strain, and a unique identifier corresponding to at least one of the subject or the implantable fixation device;

wherein at least one of the processor or the data server is configured to:

determine an amount of Primary Strain in each of a no-load posture and a load- bearing posture;

determine an amount of Reference Strain in each of the no-load posture and the load-bearing posture; and

determine the amount of relative support provided by the bone plate by computing a ratio of the difference in Primary Strain between the no-load posture and the load- bearing posture to the difference in Reference Strain between the no-load posture and the load-bearing posture.

2. The patient monitoring system of claim 1 , further comprising the data server, wherein the data server is in digital communication with the external wireless reader;

wherein at least one of the processor or the data server is configured to:

determine an amount of relative support provided by the bone plate as a result of the fracture using the received indication of the Primary Strain and the received indication of the Reference Strain; and

store the determined amount of relative support in non transitory memory in communication with at least one of the processor or the data server.

3. The patient monitoring system of claim 2 , wherein at least one of the processor or data server is configured to determine the amount of relative support provided by the bone plate by computing a ratio of the Primary Strain to the Reference Strain.

4. The patient monitoring system of claim 3 , wherein the processor is further configured to:

prompt the subject to position the bone in the no-load posture and separately to position the bone in the load-bearing posture.

5. The patient monitoring system of claim 4 , wherein the external wireless reader further includes a display, and wherein the processor is configured to prompt the subject to position the bone in the no-load posture and separately in the load-bearing posture via the display.

6. The patient monitoring system of claim 5 , wherein the processor is configured to prompt the subject, via the display, to apply additional load to the bone if the Primary Strain in the load-bearing posture is less than a predetermined minimum threshold amount of strain.

7. The patient monitoring system of claim 4 , wherein the at least one of the processor or data server is configured to determine the amount of relative support provided by the bone plate only if the Primary Strain in the load-bearing posture exceeds a predetermined minimum threshold amount of strain.

8. The patient monitoring system of claim 1 , wherein the external wireless reader further includes an inductive charging circuit that is operative to power each of the primary load sensor and reference load sensor via a magnetic field transmitted from the antenna.

9. The patient monitoring system of claim 8 , wherein the external wireless reader comprises a wearable component in wired communication with a display device via a tether; and

wherein the wearable component comprises the antenna provided within a carrier having at least one strap configured to extend around a portion of the subject.

10. The patient monitoring system of claim 9 , wherein the wearable component further includes the processor.

11. The patient monitoring system of claim 9 , wherein the carrier is further secured to a brace that is operative to extend around a joint of the subject.

12. The patient monitoring system of claim 1 , wherein the antenna has a length, and wherein the length of the antenna is greater than a spacing between the first location and the second location.

13. The patient monitoring system of claim 1 , wherein the antenna has a width, and wherein the width of the antenna is between about 12 cm and 20 cm.

Assignments (4)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 24, 2021
From: SYNTHES USA PRODUCTS, LLC; SYNTHES GMBH; ETHICON, INC.
To: DEPUY SYNTHES PRODUCTS, INC.
Reel/Frame 057267/0651 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 24, 2021
From: MIKHAIL, GEORGE; PIERSON, GLEN; MARKS, JACOB; SHANE, CHRISTOPHER
To: SYNTHES USA PRODUCTS, LLC
Reel/Frame 057272/0040 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 24, 2021
From: WALSER, JOCHEN
To: SYNTHES GMBH
Reel/Frame 057272/0153 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 24, 2021
From: SCHNEIDER, JARED
To: ETHICON, INC.
Reel/Frame 057272/0241 →
Continuity (2)
Provisional Application 63054557 · Jul 21, 2020
Related Publication 20220022807A1 · Jan 27, 2022
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