Scinovex
articleTop 10% cited

An interactive graphics-based model of the lower extremity to study orthopaedic surgical procedures

IEEE Transactions on Biomedical Engineering · 1990 · Vol. 37(8) · pp. 757–767
Scott L. DelpJ.P. LoanM.G. HoyFelix E. ZajacE.L. ToppJoseph M. Rosen

Abstract

We have developed a model of the human lower extremity to study how surgical changes in musculoskeletal geometry and musculotendon parameters affect muscle force and its moment about the joints. The lines of action of 43 musculotendon actuators were defined based on their anatomical relationships to three-dimensional bone surface representations. A model for each actuator was formulated to compute its isometric force-length relation. The kinematics of the lower extremity were defined by modeling the hip, knee, ankle, subtalar, and metatarsophalangeal joints. Thus, the force and joint moment that each musculotendon actuator develops can be computed for any body position. The joint moments calculated with the model compare well with experimentally measured isometric joint moments. We developed a graphical interface to the model that allows the user to visualize the musculoskeletal geometry and to manipulate the model parameters to study the biomechanical consequences of orthopaedic surgical procedures. For example, tendon transfer and lengthening procedures can be simulated by adjusting the model parameters according to various surgical techniques. Results of the simulated surgeries can be analyzed quickly in terms of postsurgery muscle forces and other biomechanical variables. Just as interactive graphics have enhanced engineering design and analysis, we have found that graphics-based musculoskeletal models are effective tools for designing and analyzing surgical procedures.

Muscle activation and electromyography studiesMotor Control and AdaptationProsthetics and Rehabilitation RoboticsAnkleIsometric exerciseKinematicsMoment (physics)BiomechanicsComputer scienceJoint (building)SimulationOrthodonticsBiomedical engineering

MeSH terms

Biomechanical PhenomenaComputer GraphicsComputer SimulationHumansJointsLegModels, AnatomicMovementMusculoskeletal SystemMusculoskeletal Physiological PhenomenaOrthopedicsUser-Computer Interface

Funding

  • Colorado State University
  • International Society of Biomechanics
  • American Society of Biomechanics
Citations
2,029
FWCI
6.10
field-weighted impact
References
48
Percentile
97%
vs. same field & year
Citations per year
Cited by
Full-Body Musculoskeletal Model for Muscle-Driven Simulation of Human Gait
IEEE Transactions on Biomedical Engineering · 2016 · 1,017 citations
OpenSim: Open-Source Software to Create and Analyze Dynamic Simulations of Movement
IEEE Transactions on Biomedical Engineering · 2007 · 4,849 citations
Center of mass velocity-position predictions for balance control
Journal of Biomechanics · 1997 · 737 citations
Generating dynamic simulations of movement using computed muscle control
Journal of Biomechanics · 2003 · 680 citations
Are Current Measurements of Lower Extremity Muscle Architecture Accurate?
Clinical Orthopaedics and Related Research · 2008 · 676 citations
Muscle contributions to propulsion and support during running
Journal of Biomechanics · 2010 · 821 citations
References
Muscle Architecture of the Human Lower Limb
Clinical Orthopaedics and Related Research · 1983 · 925 citations
Citation Network

How this paper connects to the literature. Drag to explore, click any node to open that paper.

An interactive graphics-based model of the lower extremity to study orthopaedic surgical procedures · Scinovex