Literature DB >> 11996917

Development of the femoral bicondylar angle in hominid bipedalism.

S J Shefelbine1, C Tardieu, Dennis R Carter.   

Abstract

The bicondylar angle is the angle between the diaphysis of the femur and a line perpendicular to the infracondylar plane. The presence of a femoral bicondylar angle in Australopithecus afarensis indicates that these 3.5-million-year-old hominids were bipedal. Many studies have linked the formation of the femoral bicondylar angle with bipedality, but the mechanism for the formation of the angle is poorly understood. Mechanical factors, such as stresses and strains, influence the growth process. In particular, previous studies have demonstrated that hydrostatic compressive stress inhibits growth and ossification, and octahedral shear stress promotes growth and ossification. In this study we implemented these mechanobiological principles in a three-dimensional finite-element model of the distal femur. We applied loading conditions to the model to simulate loading during the single-leg stance phase of bipedal gait. The stresses in the physis of the distal femur that result from bipedal loading conditions promote growth and ossification more on the medial side than on the lateral side of the femur, forming the bicondylar angle. This model explains the presence of the bicondylar angle in hominid bipedalism and also the ontogenetic development of the bicondylar angle in growing children. The mechanobiological relationship between endochondral ossification and mechanical loading provides valuable insight into bone development and morphology.

Entities:  

Mesh:

Year:  2002        PMID: 11996917     DOI: 10.1016/s8756-3282(02)00700-7

Source DB:  PubMed          Journal:  Bone        ISSN: 1873-2763            Impact factor:   4.398


  15 in total

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Review 8.  Growth plate mechanics and mechanobiology. A survey of present understanding.

Authors:  Isabelle Villemure; Ian A F Stokes
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9.  Measuring 3D growth plate shape: Methodology and application to cam morphology.

Authors:  Rachel E Horenstein; Quentin Meslier; Julia A Spada; Anne Halverstadt; Cara L Lewis; Mo Gimpel; Richard Birchall; Thamindu Wedatilake; Scott Fernquest; Antony Palmer; Siôn Glyn-Jones; Sandra J Shefelbine
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10.  Mechanical influences on morphogenesis of the knee joint revealed through morphological, molecular and computational analysis of immobilised embryos.

Authors:  Karen A Roddy; Patrick J Prendergast; Paula Murphy
Journal:  PLoS One       Date:  2011-02-28       Impact factor: 3.240

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