Mi Li Y, Basu Mitra, Fritton Susannah P, Cowin Stephen C
Department of Electrical Engineering, New York Center for Biomedical Engineering, The City College of New York/CUNY, 10031, New York, USA.
Biomech Model Mechanobiol. 2005 Nov;4(2-3):132-46. doi: 10.1007/s10237-004-0066-3. Epub 2005 Nov 9.
Mechanical loading-induced signals are hypothesized to be transmitted and integrated by connected bone cells before reaching the bone surfaces where adaptation occurs. A computational connected cellular network (CCCN) model is developed to explore how bone cells perceive and transmit the signals through intercellular communication. This is part two of a two-part study in which a CCCN is developed to study the intercellular communication within a grid of bone cells. The excitation signal was computed as the loading-induced bone fluid shear stress in part one. Experimentally determined bone adaptation responses (Gross et al. in J Bone Miner Res 12:982-988, 1997 and Judex et al. in J Bone Miner Res 12:1737-1745, 1997) are correlated with the fluid shear stress by the CCCN, which adjusts cell sensitivities (loading and signal thresholds) and connection weights. Intercellular communication patterns extracted by the CCCN indicate the cell population responsible for perceiving the loading-induced signal, and loading threshold is shown to play an important role in regulating the bone response.
据推测,机械负荷诱导的信号在到达发生适应性变化的骨表面之前,会由相连的骨细胞进行传递和整合。我们开发了一种计算性连接细胞网络(CCCN)模型,以探究骨细胞如何通过细胞间通讯感知和传递信号。这是一项分为两部分的研究中的第二部分,在该研究中,开发了一个CCCN来研究骨细胞网格内的细胞间通讯。在第一部分中,将激发信号计算为负荷诱导的骨液剪应力。实验确定的骨适应性反应(格罗斯等人,《骨与矿物质研究杂志》,1997年,第12卷,第982 - 988页;朱德克斯等人,《骨与矿物质研究杂志》,1997年,第12卷,第1737 - 1745页)通过CCCN与流体剪应力相关联,CCCN会调整细胞敏感性(负荷和信号阈值)以及连接权重。CCCN提取的细胞间通讯模式表明了负责感知负荷诱导信号的细胞群体,并且负荷阈值在调节骨反应中起着重要作用。