Effect of different motor tasks on hip cup primary stability and on the strains in the periacetabular bone: An in vitro study

Clin Biomech (Bristol, Avon). 2019 Dec:70:137-145. doi: 10.1016/j.clinbiomech.2019.08.005. Epub 2019 Aug 14.

Abstract

Background: Excessive prosthesis/bone motions and the bone strains around the acetabulum may prevent osteointegration and lead to cup loosening. These two factors depend on post-operative joint loading. We investigated how Walking (which is often simulated) and Standing-Up from seated (possibly more critical) influence the cup primary stability and periacetabular strains.

Methods: Twelve composite hemipelvises were used in two test campaigns. Simplified loading conditions were adopted to simulate Walking and Standing-Up. For each motor task, a single-direction force was applied in load packages of increasing amplitude. Stable and unstable uncemented cups were implanted. Digital image correlation was used to measure implant/bone motions (three-dimensional translations and rotations, both permanent and inducible), and the strain distribution around the acetabulum.

Findings: When stable implants were tested, higher permanent cranial translations were found during Walking (however the resultant migrations were comparable with Standing-Up); higher rotations were found for Standing-Up. When unstable implants were tested, motions were 1-2 order of magnitude higher. Strains increased significantly from stable to unstable implants. The peak strains were in the superior aspect of the acetabulum during Walking and in the superior-posterior aspect of the acetabulum and at the bottom of the posterior column during Standing-Up.

Interpretation: Different cup migration trends were caused by simulated Walking and Standing-Up, both similar to those observed clinically. The cup mobilization pattern depended on the different simulated motor tasks. Pre-clinical testing of new uncemented cups could include simulation of both motor tasks. Our study could also translate to indication of what tasks should be avoided.

Keywords: Acetabular hip prosthesis; Bone strain; Digital image correlation; Level walking; Primary implant stability; Standing up.

MeSH terms

  • Acetabulum / surgery*
  • Algorithms
  • Arthroplasty, Replacement, Hip*
  • Computer Simulation
  • Hip Prosthesis
  • Humans
  • Image Processing, Computer-Assisted
  • Imaging, Three-Dimensional
  • In Vitro Techniques
  • Motor Skills
  • Prosthesis Design*
  • Prosthesis Failure*
  • Sitting Position
  • Standing Position
  • Stress, Mechanical
  • Walking