» Articles » PMID: 16378613

Non-uniform Strain Distribution Within Rat Cartilaginous Growth Plate Under Uniaxial Compression

Overview
Journal J Biomech
Specialty Physiology
Date 2005 Dec 28
PMID 16378613
Citations 9
Authors
Affiliations
Soon will be listed here.
Abstract

Growth plates are highly inhomogeneous in morphology and composition. Mechanical loading can modulate longitudinal bone growth, though the mechanisms underlying this mechanobiology are poorly understood. The proximal tibial growth plates of six rats were tested in vitro under uniaxial compression to 5% strain, and confocal microscopy was used to track and capture images of fluorescently labeled cell nuclei with increasing applied strains. The local strain patterns through the growth plate thickness were quantified using texture correlation analysis. The technique of texture correlation analysis was first validated by comparing theoretical simulated strain maps generated from numerically distorted images. The texture correlation algorithm was sensitive to the grid size superimposed on the original image, but remained insensitive to parameters related to the size of the final image mask, which was searched by the correlation algorithm for each grid point of the original image. Within the growth plate, experimental strain distributions were non-uniform in all six specimens. Growth plates were mostly under compression strains. The strain distributions differed among the histomorphological zones of the growth plate, which was most obvious in specimens with regular growth plate shape: higher compressive strains (4-8 times higher than the applied 5% strain) were located mainly in regions overlapping the reserve and hypertrophic zones with lower compressive strains in the proliferative zone. This study documents the non-uniform mechanical behavior of growth plate across its three histological zones when exposed to compression. Further investigation is required to establish the significance of non-uniform strain fields during growth in vivo.

Citing Articles

Material properties and strain distribution patterns of bovine growth plate cartilage vary with anatomic location and depth.

Fischenich K, Schneider S, Neu C, Payne K, Ferguson V J Biomech. 2022; 134:111013.

PMID: 35245713 PMC: 9651143. DOI: 10.1016/j.jbiomech.2022.111013.


The heterogeneous mechanical properties of adolescent growth plate cartilage: A study in rabbit.

Eckstein K, Thomas S, Scott A, Neu C, Hadley-Miller N, Payne K J Mech Behav Biomed Mater. 2022; 128:105102.

PMID: 35203020 PMC: 9047008. DOI: 10.1016/j.jmbbm.2022.105102.


Experimental mechanical strain measurement of tissues.

Huang L, Korhonen R, Turunen M, Finnila M PeerJ. 2019; 7:e6545.

PMID: 30867989 PMC: 6409087. DOI: 10.7717/peerj.6545.


A Computed Microtomography Method for Understanding Epiphyseal Growth Plate Fusion.

Staines K, Madi K, Javaheri B, Lee P, Pitsillides A Front Mater. 2018; 4:48.

PMID: 29417047 PMC: 5798587. DOI: 10.3389/fmats.2017.00048.


Regional variations in growth plate chondrocyte deformation as predicted by three-dimensional multi-scale simulations.

Gao J, Roan E, Williams J PLoS One. 2015; 10(4):e0124862.

PMID: 25885547 PMC: 4401775. DOI: 10.1371/journal.pone.0124862.