Development and validation of embedded micro wireless strain sensor array for in vivo characterization of contact stress distribution in hip replacement

Information

  • Research Project
  • 10244923
  • ApplicationId
    10244923
  • Core Project Number
    P20GM121342
  • Full Project Number
    5P20GM121342-04
  • Serial Number
    121342
  • FOA Number
    PAR-16-415
  • Sub Project Id
    8830
  • Project Start Date
    9/15/2018 - 6 years ago
  • Project End Date
    8/2/2021 - 3 years ago
  • Program Officer Name
  • Budget Start Date
    8/1/2021 - 3 years ago
  • Budget End Date
    8/2/2021 - 3 years ago
  • Fiscal Year
    2021
  • Support Year
    04
  • Suffix
  • Award Notice Date
    9/16/2021 - 3 years ago
Organizations

Development and validation of embedded micro wireless strain sensor array for in vivo characterization of contact stress distribution in hip replacement

SUMMARY Total hip arthroplasty (THA) is one of the most widely performed orthopedic surgeries in the US. Unfortunately, many follow-up revisions are often expensive and ineffective. Many simulation studies show that the failures are caused by edge loading and excess stresses resulting from inappropriate component positions or size selections during surgeries. The lack of an in vivo stress distribution characterization method at the joint interface currently prevents the fundamental understanding of the effect of surgery factors such as the positioning and choice of implants on the THA outcome. Our goal is to develop embedded, micro wireless strain sensors for in vivo characterization of the biomechanical stress distribution and validate their usefulness in THA. The project will harvest our recent breakthroughs in development of embeddable microfluidic sensors that are highly sensitive to micro-strains. These sensors will be further developed into arrays and embedded into the UHMWPE insert for in vivo measurement of the stress distributions. The sensor arrays embedded in UNMWPE will be calibrated and validated using cadaver testing. We will also study the effect of the radiographic inclination angles and anteversion angles on the stress distributions at the contact interface of the hip joint. The underlying hypothesis is that the femoral/acetabular bearing surface stress distribution is strongly correlated with the positioning, and the quantitative correlation (once established) can be used to guide THA and improve its outcome. We will pursue three specific aims. Aim 1: Develop and calibrate micro wireless strain sensors embedded within UHMWPE. Aim 2: Validate the strain mapping capability of the sensor array embedded UHMWPE using cadaver testing and finite element modeling. Aim 3: Preliminarily evaluate the embedded strain sensors in animal studies. This research is innovative in that it will provide a precise, in vivo stress distribution characterization method at the hip joint interface, which is currently greatly needed but unavailable. This research is significant in that we will 1) Establish the fabrication method of the highly sensitive, micro-sized, biocompatible, embedded wireless strain sensors; 2) Enable the analysis of surface stress distribution with different implant positioning; 3) Provide a useful tool for future fundamental studies on the interrelated effects of other THA parameters, such as the component sizes and ligament tension, on the biomechanical environment at femoral head/UHMWPE insert interface. Providing a new tool for in vivo characterization of the stress distribution, this project integrates with the COBRE's research theme in virtual human trial to improve musculoskeletal health.

IC Name
NATIONAL INSTITUTE OF GENERAL MEDICAL SCIENCES
  • Activity
    P20
  • Administering IC
    GM
  • Application Type
    5
  • Direct Cost Amount
    176366
  • Indirect Cost Amount
    79459
  • Total Cost
  • Sub Project Total Cost
    255825
  • ARRA Funded
    False
  • CFDA Code
  • Ed Inst. Type
  • Funding ICs
    NIGMS:255825\
  • Funding Mechanism
    RESEARCH CENTERS
  • Study Section
    ZGM1
  • Study Section Name
    Special Emphasis Panel
  • Organization Name
    CLEMSON UNIVERSITY
  • Organization Department
  • Organization DUNS
    042629816
  • Organization City
    CLEMSON
  • Organization State
    SC
  • Organization Country
    UNITED STATES
  • Organization Zip Code
    296340001
  • Organization District
    UNITED STATES