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Mechanobiology of embryonic skeletal development: Insights from animal models
Niamh C Nowlan1, James Sharpe, Karen A Roddy
1Centre for Genomic Regulation, Barcelona, Spain. nowlann@tcd.ie
Abstract:
A range of clinical conditions in which fetal movement is reduced or prevented can have a severe effect on skeletal development. Animal models have been instrumental to our understanding of the interplay between mechanical forces and skeletal development, particularly the mouse and the chick model systems. In the chick, the most commonly used means of altering the mechanical environment is by pharmaceutical agents which induce paralysis, whereas genetically modified mice with nonfunctional or absent skeletal muscle offer a valuable tool for examining the interplay between muscle forces and skeletogenesis in mammals. This article reviews the body of research on animal models of bone or joint formation in vivo in the presence of an altered or abnormal mechanical environment. In both immobilized chicks and "muscleless limb" mice, a range of effects are seen, such as shorter rudiments with less bone formation, changes in rudiment and joint shape, and abnormal joint cavitation. However, although all bones and synovial joints are affected in immobilized chicks, some rudiments and joints are unaffected in muscleless mice. We propose that extrinsic mechanical forces from movements of the mother or littermates impact on skeletogenesis in mammals, whereas the chick embryo is reliant on intrinsic movement for mechanical stimulation. The insights gained from animal models into the mechanobiology of embryonic skeletal development could provide valuable cues to prospective tissue engineers of cartilage and bone and contribute to new or improved treatments to minimize the impact on skeletal development of reduced movement in utero.
Insights
Animal models reveal how reduced fetal movement impacts skeletal development. Immobilized chicks and muscleless mice show altered bone and joint formation, highlighting intrinsic vs. extrinsic mechanical influences.
Area of Science:
- Developmental biology
- Mechanobiology
- Orthopedics
Background:
- Reduced fetal movement can severely impact skeletal development.
- Animal models like chicks and mice are crucial for understanding mechanical forces in skeletogenesis.
- Altered mechanical environments are studied using pharmaceutical paralysis (chicks) or genetic modification (mice).
Purpose of the Study:
- To review research on animal models of bone and joint formation under altered mechanical conditions.
- To compare the effects of altered mechanical environments in chick and mouse models.
- To elucidate the role of intrinsic versus extrinsic mechanical forces in mammalian skeletogenesis.
Main Methods:
- Review of existing literature on animal models of skeletal development.
- Comparison of findings from immobilized chick embryos and genetically modified "muscleless limb" mice.
- Analysis of skeletal and joint development in response to altered mechanical stimuli.
Main Results:
- Both immobilized chicks and muscleless mice exhibit shorter rudiments, reduced bone formation, altered shapes, and abnormal joint cavitation.
- Immobilized chicks show widespread effects on all bones and synovial joints.
- Muscleless mice display some unaffected rudiments and joints, suggesting differential responses.
Conclusions:
- Mammalian skeletogenesis may rely on extrinsic mechanical forces (maternal/littermate movement), while chick embryos depend on intrinsic movement.
- Insights from these models inform tissue engineering for cartilage and bone.
- Understanding mechanobiology can lead to improved treatments for skeletal development issues caused by reduced fetal movement.
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