SYSTEM AND METHOD FOR DETERMINING PATIENT FOLLOW-UP SUBSEQUENT TO AN ORTHOPAEDIC PROCEDURE
20180235514 ยท 2018-08-23
Inventors
- Mark R. DiSilvestro (Columbia City, IN, US)
- Terry L. Dietz (Columbia City, IN, US)
- Robert S. Hastings (Warsaw, IN, US)
Cpc classification
G16H20/30
PHYSICS
A61B5/1076
HUMAN NECESSITIES
G16H20/40
PHYSICS
A61F2002/30953
HUMAN NECESSITIES
A61B5/0002
HUMAN NECESSITIES
International classification
A61B5/107
HUMAN NECESSITIES
A61B5/00
HUMAN NECESSITIES
Abstract
A method of determining patient follow-up subsequent to an orthopaedic procedure includes determining the number of cycles of use of an orthopaedic joint of the patient. If a predetermined threshold is exceeded, communication with an orthopaedic care provider is initiated. A patient monitoring system is also disclosed.
Claims
1-14. (canceled)
15. An orthopaedic system, comprising: a femoral component configured to be coupled to a patient's femur, a tibial component configured to be coupled to a patient's tibia, a load sensor coupled to the tibial component operable to generate an electrical output signal, a first electrical circuit coupled to the load sensor, the first electrical circuit being operable to (i) detect electrical output signals generated by the load sensor, (ii) determine a parameter associated with movement of the femoral component relative to the tibial component based on the signals generated by the load sensor, and (iii) wirelessly transmit a signal indicative of the parameter, and a second electrical circuit operable to (i) wirelessly receive the signal indicative of the parameter, and (ii) provide an assessment of the femoral component and the tibial component based on the parameter.
16. The orthopaedic system of claim 15, wherein the parameter associated with movement of the femoral component relative to the tibial component is a number of cycles.
17. The orthopaedic system of claim 16, wherein the number of cycles includes a number of loading cycles.
18. The orthopaedic system of claim 15, wherein the first electrical circuit and the load sensor are embedded in a single housing.
19. The orthopaedic system of claim 18, wherein the first electrical circuit and the load sensor are embedded in the tibial component.
20. The orthopaedic system of claim 15, wherein the second electrical circuit includes a visual display configured to provide a visual assessment of the femoral component and the tibial component based on the parameter.
21. An orthopaedic system, comprising: a tibial component, a load sensor coupled to the tibial component operable to generate an electrical output signal, a first electrical circuit coupled to the load sensor, the first electrical circuit being operable to (i) detect electrical output signals generated by the load sensor, (ii) determine a parameter associated with movement of a femoral component relative to the tibial component based on the signals generated by the load sensor, and (iii) wirelessly transmit a signal indicative of the parameter, and a second electrical circuit operable to (i) wirelessly receive the signal indicative of the parameter, and (ii) provide an assessment of the femoral component and the tibial component based on the parameter.
22. The orthopaedic system of claim 21, wherein the parameter associated with movement of the femoral component relative to the tibial component is a number of cycles.
23. The orthopaedic system of claim 22, wherein the number of cycles includes a number of loading cycles.
24. The orthopaedic prosthesis system of claim 23, wherein the first electrical circuit and the load sensor are embedded in a single housing.
25. The orthopaedic system of claim 24, wherein the first electrical circuit and the load sensor are embedded in the tibial component.
26. The orthopaedic prosthesis system of claim 21, wherein the second electrical circuit includes a visual display configured to provide a visual assessment of the femoral component and the tibial component based on the parameter.
27. A method comprising: coupling a tibial component and a load sensor to a proximal end of a patient's tibia, moving a femoral component coupled to a distal end of a patient's femur relative to the tibial component through a number of degrees of flexion, and monitoring a visual display for an assessment of the femoral component and the tibial component based on a parameter associated with movement of the femoral component relative to the tibial component based on signals generated by the load sensor, wherein the load sensor is coupled to a first electrical circuit operable to (i) detect signals generated by the load sensor, (ii) determine the parameter associated with movement of the femoral component relative to the tibial component based on the signals generated by the load sensor, and (iii) wirelessly transmit a signal indicative of the parameter to the visual display.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0011] The detailed description particularly refers to the accompanying figures in which:
[0012]
[0013]
[0014]
[0015]
DETAILED DESCRIPTION OF THE DRAWINGS
[0016] The present disclosure relates to a method for determining patient follow-up after an orthopaedic procedure, such as a joint replacement procedure, based on the actual use of the patient's joint. As will be described herein in greater detail, the number of cycles of use of the patient's joint may be determined, for example, by (i) determining number of steps taken by the patient, (ii) determining the activity level of the patient, (iii) determining the number of times a predetermined joint flexion angle is achieved, or (iv) determining the number of loading cycles of the joint. Determination of these parameters may be achieved in a number of different manners. When it is determined that the patient has achieved a level of use in which follow-up is desired, a communication with the orthopaedic care provider (e.g., a surgeon, hospital, nurse, primary care provider, or other individual involved in the care of the patient) is initiated by notifying the patient and/or the orthopaedic care provider. As will be described herein in greater detail, such communication may be achieved in a variety of different manners.
[0017] Referring now to
[0018] The actual use of the knee endoprosthesis system 14 may be characterized as cycles of use of the system. The cycles of use of the system 14 may be measured in a variety of methods such as, for example, (i) by determining number of steps taken by the patient, (ii) by determining the activity level of the patient, (iii) by determining the number of times a predetermined joint flexion angle is achieved by the system 14, or (iv) by determining the number of loading cycles of the system 14.
[0019] In the exemplary embodiment shown in
[0020] Referring now to
[0021] As shown in
[0022] The processor 36 and memory device 38 cooperate to determine when follow-up subsequent to an orthopaedic procedure is warranted based on cycles of use of the knee endoprosthesis system 14. In particular, the memory device 38 has stored therein a plurality of instructions in the form of a software routine which performs such a function. The memory device 38 may be Random Access Memory (hereinafter sometimes RAM), Read Only Memory (hereinafter sometimes ROM), flash or erasable memory such as Erasable Programmable ROM (hereinafter sometimes EPROM) and Electrically Erasable Programmable ROM (hereinafter sometimes EEPROM), and/or other memory devices. Due to the adaptable nature of programming languages, there are many embodiments of a software routine stored in the memory device 38 for performing such a function.
[0023] The electronic body monitor 32 also includes a message generating device 42. The message generating device 42 is operable to generate visual and/or audible messages for presentation to the patient. For example, when the electronic body monitor 32 determines that the patient has exceeded a predetermined threshold relating to the number of steps taken by the patient (or activity level) since the patient's procedure (or last meeting with the surgeon), an audible and/or visual alert may be generated by the message generating device 42. The message generating device 42 may be embodied as any type of such device including, for example, an LCD or LED display and/or a tone/sound generator.
[0024] Referring now to
[0025] The stored count information can be transmitted to a device external to the patient's body by use of the transmitter and antenna of the associated electronics 56. As shown schematically in
[0026] One such implantable system, along with the associated external components, is disclosed in U.S. patent application Ser. No. 10/887,766, entitled In Vivo Joint Implant Cycle Counter which is assigned to the assignee of the present application, and which is hereby incorporated by reference.
[0027] The data interpretation device 60 may have integrated therein, or be coupled to, a message generating device 62. The message generating device 62 is operable to generate visual and/or audible messages for presentation to the patient. For example, when it is determined from the output of the implanted electronics 56 that the number of occasions in which the knee endoprosthesis system 14 has attained a predetermined flexion angle has exceeded a predetermined threshold, an audible and/or visual alert may be generated by the message generating device 62. The message generating device 62 may be embodied as any type of such device including, for example, a PC display monitor, an LCD or LED display, and/or a tone/sound generator.
[0028] In lieu of the arrangement of
[0029] In another example, the cycles of use of the patient's joint may be determined by measuring the wear of certain components of the knee endoprosthesis system 14. For instance, a sensor arrangement may be utilized in which the joint space between the femoral component 28 and the tibial component 22 is measured/monitored. It should be appreciated that such a distance may shorten (i.e., reduce) over cycles of the knee endoprosthesis system as a result of wear of the tibial bearing 20. As such, the cycles of use of the system 14 could be determined by measuring and tracking the joint space between the femoral component 28 and the tibial component 22. Such data could be stored, transmitted, and received in a similar manner to as described above in regard to the arrangement of
[0030] Referring now to
[0031] The communications device 70 may be operated to query the joint use measurement device 10 and then commence an automated, device-initiated communication with the orthopaedic care provider (e.g., the surgeon's office) if a follow-up visit is warranted based on the number of cycles of use of the knee endoprosthesis system 14. For example, the communications device 70 may initiate a telephone call, electronic mail communication, or other web-based communication with an electronic device or system 72 operated by the surgeon's office.
[0032] It should be appreciated that the communications device 70 may be configured to accommodate any one or more of the different exemplary embodiments of the joint use measurement device 10. For example, in the case of the electronic body monitor 32 of
[0033] Similarly, the communications device 70 may be configured to communicate with data interpretation device 60 of the arrangement of
[0034] In the case of when the joint use measurement device 10 is embodied as a mechanical device (i.e., non-electrical) such as, for example, certain types of pedometers, data from the mechanical device may be input into the communications device 70. In such a case, the communications device 70 may be configured to process such manually entered data, and then, if appropriate, initiate communication with the surgeon in any one or more of the manners described above.
[0035] Although the concepts of the present disclosure have herein been described in regard to a knee prosthesis, it should be appreciated that the concepts described herein could also be applied to other joint endoprosthesis such as endoprosthesis systems for use in the hip, shoulder, wrist, elbow, ankle, along with endoprosthesis systems for use with the digits of the extremities. It should be understood that other configurations of a joint use measurement device (including its sensors) may be utilized to accommodate a given application in a desired joint location.
[0036] Moreover, although the concepts of the present disclosure have herein been exemplary described in regard to an endoprosthesis for use in a total joint replacement, it should be appreciated that the concepts described herein could also be applied to other arrangements. For example, the concepts of the present disclosure could be applied subsequent to a procedure in which the resultant joint includes one or more natural components. Moreover, the concepts of the present disclosure could be applied subsequent to an orthopaedic procedure at anatomical locations other than a joint.
[0037] While the disclosure is susceptible to various modifications and alternative forms, specific exemplary embodiments thereof have been shown by way of example in the drawings and has herein be described in detail. It should be understood, however, that there is no intent to limit the disclosure to the particular forms disclosed, but on the contrary, the intention is to cover all modifications, equivalents, and alternatives falling within the spirit and scope of the disclosure.
[0038] There are a plurality of advantages of the present disclosure arising from the various features of the apparatus and methods described herein. It will be noted that alternative embodiments of the apparatus and methods of the present disclosure may not include all of the features described yet still benefit from at least some of the advantages of such features. Those of ordinary skill in the art may readily devise their own implementations of an apparatus and method that incorporate one or more of the features of the present disclosure and fall within the spirit and scope of the present disclosure.