A biomechanical model of the wrist joint for patient-specific model guided surgical therapy: Part 2

Proc Inst Mech Eng H. 2016 Apr;230(4):326-34. doi: 10.1177/0954411916635443.

Abstract

An enhanced musculoskeletal biomechanical model of the wrist joint is presented in this article. The computational model is based on the multi-body simulation software AnyBody. Multi body dynamic musculoskeletal models capable of predicting muscle forces and joint contact pressures simultaneously would be valuable for studying clinical issues related to wrist joint degeneration and restoration. In this study, the simulation model of the wrist joint was used for investigating deeper the biomechanical function of the wrist joint. In representative physiological scenarios, the joint behavior and muscle forces were computed. Furthermore, the load transmission of the proximal wrist joint was investigated. The model was able to calculate the parameters of interest that are not easily obtainable experimentally, such as muscle forces and proximal wrist joint forces. In the case of muscle force investigation, the computational model was able to accurately predict the computational outcome for flexion and extension motion. In the case of force distribution of the proximal wrist joint, the model was able to predict accurately the computational outcome for an axial load of 140 N. The presented model and approach of using a multi-body simulation model are anticipated to have value as a predictive clinical tool including effect of injuries or anatomical variations and initial outcome of surgical procedures for patient-specific planning and custom implant design. Therefore, patient-specific multi-body simulation models are potentially valuable tools for surgeons in pre- and intraoperative planning of implant placement and orientation.

Keywords: Wrist joint; biomechanics; computational model; multi-body simulation; therapy planning.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Biomechanical Phenomena / physiology
  • Computer Simulation*
  • Humans
  • Models, Biological*
  • Range of Motion, Articular / physiology
  • Surgery, Computer-Assisted / methods*
  • Wrist Joint* / anatomy & histology
  • Wrist Joint* / diagnostic imaging
  • Wrist Joint* / physiology
  • Wrist Joint* / surgery