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通过三维多尺度模拟预测生长板软骨细胞变形的区域差异。

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

作者信息

Gao Jie, Roan Esra, Williams John L

机构信息

Departments of Mechanical Engineering, University of Memphis Memphis, Tennessee, 38152, United States of America.

Department of Biomedical Engineering, University of Memphis Memphis, Tennessee, 38152, United States of America.

出版信息

PLoS One. 2015 Apr 17;10(4):e0124862. doi: 10.1371/journal.pone.0124862. eCollection 2015.

Abstract

The physis, or growth plate, is a complex disc-shaped cartilage structure that is responsible for longitudinal bone growth. In this study, a multi-scale computational approach was undertaken to better understand how physiological loads are experienced by chondrocytes embedded inside chondrons when subjected to moderate strain under instantaneous compressive loading of the growth plate. Models of representative samples of compressed bone/growth-plate/bone from a 0.67 mm thick 4-month old bovine proximal tibial physis were subjected to a prescribed displacement equal to 20% of the growth plate thickness. At the macroscale level, the applied compressive deformation resulted in an overall compressive strain across the proliferative-hypertrophic zone of 17%. The microscale model predicted that chondrocytes sustained compressive height strains of 12% and 6% in the proliferative and hypertrophic zones, respectively, in the interior regions of the plate. This pattern was reversed within the outer 300 μm region at the free surface where cells were compressed by 10% in the proliferative and 26% in the hypertrophic zones, in agreement with experimental observations. This work provides a new approach to study growth plate behavior under compression and illustrates the need for combining computational and experimental methods to better understand the chondrocyte mechanics in the growth plate cartilage. While the current model is relevant to fast dynamic events, such as heel strike in walking, we believe this approach provides new insight into the mechanical factors that regulate bone growth at the cell level and provides a basis for developing models to help interpret experimental results at varying time scales.

摘要

骨骺,即生长板,是一种复杂的盘状软骨结构,负责骨骼的纵向生长。在本研究中,采用了一种多尺度计算方法,以更好地了解在生长板瞬间压缩载荷下承受中等应变时,嵌入软骨柱内的软骨细胞如何感受生理载荷。对取自4个月大、厚度为0.67毫米的牛近端胫骨骨骺的压缩骨/生长板/骨代表性样本模型施加等于生长板厚度20%的规定位移。在宏观层面,施加的压缩变形导致增殖-肥大区的整体压缩应变为17%。微观模型预测,在板的内部区域,增殖区和肥大区的软骨细胞分别承受12%和6%的压缩高度应变。在自由表面外300μm区域内,这种模式相反,增殖区细胞被压缩10%,肥大区细胞被压缩26%,这与实验观察结果一致。这项工作为研究压缩状态下生长板的行为提供了一种新方法,并说明了结合计算和实验方法以更好地理解生长板软骨中软骨细胞力学的必要性。虽然当前模型与快速动态事件相关,如行走时的足跟撞击,但我们认为这种方法为调节细胞水平骨生长的力学因素提供了新的见解,并为开发有助于解释不同时间尺度实验结果的模型奠定了基础。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1d5e/4401775/72d9060ed5d9/pone.0124862.g001.jpg

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