Musculoskeletal Disease Modeling

Musculoskeletal disease modeling is the use of experimental and computational systems to reproduce disorders affecting bones, joints, muscles, tendons, and related tissues, enabling researchers to study disease mechanisms in controlled settings. Bioengineered models combine relevant cells, biomaterials, mechanical forces, and biochemical signals to mimic tissue structure, loading, inflammation, degeneration, or impaired repair; computational approaches can further predict how these factors interact over time. These models support investigation of conditions such as osteoarthritis, osteoporosis, and muscle degeneration, while helping evaluate drug responses, identify therapeutic targets, and guide the development of regenerative strategies and patient-specific treatments.

Musculoskeletal Disease Modeling - Related Videos

Research

JoVE Journal - Medicine
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A Novel Application of Musculoskeletal Ultrasound Imaging

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Cited by 14 •

2013

We describe a new ultrasound-based vector tissue Doppler imaging technique to measure muscle contraction velocity, strain and strain rate with sub-millisecond temporal resolution during dynamic activities. This approach provides complementary measurements of dynamic muscle function and could lead to a better understanding of mechanisms underlying musculoskeletal disorders.

Research

JoVE Journal - Bioengineering

A 3D Bone Culture Platform Using Human Osteocytes and Decellularized Extracellular Matrix for Modeling Musculoskeletal Diseases

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2026

This protocol describes the fabrication of 3D bone constructs using human osteocytes embedded in methacrylated gelatin (GelMA) hydrogels supplemented with decellularized extracellular matrix. The method is low-cost, scalable, and compatible with basic laboratory equipment, providing a translational platform for studying musculoskeletal disease processes.

Isolating Stem Cells from Soft Musculoskeletal Tissues

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Cited by 21 •

2010

Isolating adult stem cells from musculoskeletal soft tissues based on the cell's adherence speed to flask.

Subject-specific Musculoskeletal Model for Studying Bone Strain During Dynamic Motion

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Cited by 3 •

2018

During landing, lower-body bones experience large mechanical loads and are deformed. It is essential to measure bone deformation to better understand the mechanisms of bone stress injuries associated with impacts. A novel approach integrating subject-specific musculoskeletal modeling and finite element analysis is used to measure tibial strain during dynamic movements.

Parasite Induced Genetically Driven Autoimmune Chagas Heart Disease in the Chicken Model

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Cited by 12 •

2012

The inoculation of Trypanosoma cruzi in fertile eggs prior to incubation renders the parasite kDNA minicircle integration in embryo cells genome. Crossbreeding reveals the vertical transfer of the mutations to progeny. The kDNA integrates into coding regions at several chromosomes and the chickens die with an inflammatory autoimmune heart disease.

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