拉伤
材料科学
应变率
变形(气象学)
软骨细胞
有限元法
原子力显微镜
纳米压痕
生物物理学
生物医学工程
化学
复合材料
纳米技术
结构工程
体外
解剖
生物
工程类
医学
生物化学
作者
Trung Dung Nguyen,Yuantong Gu
出处
期刊:Journal of biomechanical engineering
[ASME International]
日期:2014-07-28
卷期号:136 (10)
被引量:18
摘要
The aim of this paper is to determine the strain-rate-dependent mechanical behavior of living and fixed osteocytes and chondrocytes, in vitro. First, atomic force microscopy (AFM) was used to obtain the force-indentation curves of these single cells at four different strain-rates. These results were then employed in inverse finite element analysis (FEA) using modified standard neo-Hookean solid (MSnHS) idealization of these cells to determine their mechanical properties. In addition, a FEA model with a newly developed spring element was employed to accurately simulate AFM evaluation in this study. We report that both cytoskeleton (CSK) and intracellular fluid govern the strain-rate-dependent mechanical property of living cells whereas intracellular fluid plays a predominant role on fixed cells' behavior. In addition, through the comparisons, it can be concluded that osteocytes are stiffer than chondrocytes at all strain-rates tested indicating that the cells could be the biomarker of their tissue origin. Finally, we report that MSnHS is able to capture the strain-rate-dependent mechanical behavior of osteocyte and chondrocyte for both living and fixed cells. Therefore, we concluded that the MSnHS is a good model for exploration of mechanical deformation responses of single osteocytes and chondrocytes. This study could open a new avenue for analysis of mechanical behavior of osteocytes and chondrocytes as well as other similar types of cells.
科研通智能强力驱动
Strongly Powered by AbleSci AI