» Articles » PMID: 27472764

Multiscale Mechanical Integrity of Human Supraspinatus Tendon in Shear After Elastin Depletion

Overview
Publisher Elsevier
Date 2016 Jul 30
PMID 27472764
Citations 22
Authors
Affiliations
Soon will be listed here.
Abstract

Human supraspinatus tendon (SST) exhibits region-specific nonlinear mechanical properties under tension, which have been attributed to its complex multiaxial physiological loading environment. However, the mechanical response and underlying multiscale mechanism regulating SST behavior under other loading scenarios are poorly understood. Furthermore, little is known about the contribution of elastin to tendon mechanics. We hypothesized that (1) SST exhibits region-specific shear mechanical properties, (2) fiber sliding is the predominant mode of local matrix deformation in SST in shear, and (3) elastin helps maintain SST mechanical integrity by facilitating force transfer among collagen fibers. Through the use of biomechanical testing and multiphoton microscopy, we measured the multiscale mechanical behavior of human SST in shear before and after elastase treatment. Three distinct SST regions showed similar stresses and microscale deformation. Collagen fiber reorganization and sliding were physical mechanisms observed as the SST response to shear loading. Measures of microscale deformation were highly variable, likely due to a high degree of extracellular matrix heterogeneity. After elastase treatment, tendon exhibited significantly decreased stresses under shear loading, particularly at low strains. These results show that elastin contributes to tendon mechanics in shear, further complementing our understanding of multiscale tendon structure-function relationships.

Citing Articles

The alteration of the structure and macroscopic mechanical response of porcine patellar tendon by elastase digestion.

Liu X, Deng Y, Liang Z, Qiao D, Zhang W, Wang M Front Bioeng Biotechnol. 2024; 12:1374352.

PMID: 38694621 PMC: 11061363. DOI: 10.3389/fbioe.2024.1374352.


Guidelines for ex vivo mechanical testing of tendon.

Lake S, Snedeker J, Wang V, Awad H, Screen H, Thomopoulos S J Orthop Res. 2023; 41(10):2105-2113.

PMID: 37312619 PMC: 10528429. DOI: 10.1002/jor.25647.


Contribution of Elastic and Collagen Fibers to the Mechanical Behavior of Bovine Nuchal Ligament.

Halvorsen S, Wang R, Zhang Y Ann Biomed Eng. 2023; 51(10):2204-2215.

PMID: 37284997 PMC: 10528717. DOI: 10.1007/s10439-023-03254-6.


Three-dimensional mechanical characterization of murine skeletal muscle using quantitative micro-elastography.

Lloyd E, Hepburn M, Li J, Mowla A, Hwang Y, Choi Y Biomed Opt Express. 2023; 13(11):5879-5899.

PMID: 36733728 PMC: 9872891. DOI: 10.1364/BOE.471062.


A mineralizing pool of Gli1-expressing progenitors builds the tendon enthesis and demonstrates therapeutic potential.

Fang F, Xiao Y, Zelzer E, Leong K, Thomopoulos S Cell Stem Cell. 2022; 29(12):1669-1684.e6.

PMID: 36459968 PMC: 10422080. DOI: 10.1016/j.stem.2022.11.007.