微尺度化学
跟腱
材料科学
肌腱
横截面
细胞外基质
压缩(物理)
生物医学工程
背景(考古学)
极限抗拉强度
基质(化学分析)
复合材料
解剖
化学
医学
生物
古生物学
生物化学
数学教育
数学
作者
Keshia E. Mora,Samuel J. Mlawer,Alayna E. Loiselle,Mark R. Buckley
出处
期刊:Small
[Wiley]
日期:2024-07-05
卷期号:20 (44)
标识
DOI:10.1002/smll.202401015
摘要
Although tendon predominantly experiences longitudinal tensile forces, transverse forces due to impingement from bone are implicated in both physiological and pathophysiological processes. However, prior studies have not characterized the micromechanical strain environment in the context of tendon impingement. To address this knowledge gap, mouse hindlimb explants are imaged on a multiphoton microscope, and image stacks of the same population of tendon cells are obtained in the Achilles tendon before and after dorsiflexion-induced impingement by the heel bone. Based on the acquired images, multiaxial strains are measured at the extracellular matrix (ECM), pericellular matrix (PCM), and cell scales. Impingement generated substantial transverse compression at the matrix-scale, which led to longitudinal stretching of cells, increased cell aspect ratio, and enormous volumetric compression of the PCM. These experimental results are corroborated by a finite element model, which further demonstrated that impingement produces high cell surface stresses and strains that greatly exceed those brought about by longitudinal tension. Moreover, in both experiments and simulations, impingement-generated microscale stresses and strains are highly dependent on initial cell-cell gap spacing. Identifying factors that influence the microscale strain environment generated by impingement could contribute to a more mechanistic understanding of impingement-induced tendinopathies.
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