Cell Interaction and Mechanobiological Modeling of Bone Remodeling Process

Rabeb Ben Kahla, A. Barkaoui, F. Salah, M. Chafra
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引用次数: 2

Abstract

According to the structural and metabolic demands of the body, proportionate and accurate bone quantities are resorbed and formed, establishing what is known as bone remodeling process. This physiological process requires a highly coordinated regulation through a complex interconnected network involving several cells from diverse origins, in addition to various hormones, cytokines, growth factors and signaling pathways. One of the main factors initiating the remodeling process is the mechanotransduction mechanism, through which osteocytes translate the mechanical stimuli subjected to the bone into biochemical signals, generating thereby the activation of osteoclasts and osteoblasts that govern bone resorption and formation. This mechanically-induced behavior of bone tissue has been the target of computational modeling and numerical simulations, to address biomechanical questions and provide information that is not amenable to direct measurements. In this context, the current chapter aims to review the coupling and mechanotransduction mechanisms spearheading the remodeling process, in addition to the main mathematical models developed over recent years and their use in bone numerical simulations based on the finite element method.
骨重塑过程的细胞相互作用和力学生物学建模
根据身体的结构和代谢需求,比例和准确的骨量被吸收和形成,建立所谓的骨重塑过程。这一生理过程需要通过一个复杂的相互关联的网络进行高度协调的调节,该网络涉及来自不同来源的几个细胞,以及各种激素、细胞因子、生长因子和信号通路。骨重塑过程的主要启动因素之一是机械转导机制,骨细胞将骨受到的机械刺激转化为生化信号,从而产生控制骨吸收和形成的破骨细胞和成骨细胞的激活。骨组织的这种机械诱导行为一直是计算建模和数值模拟的目标,以解决生物力学问题并提供无法直接测量的信息。在这种背景下,本章旨在回顾耦合和机械转导机制,以及近年来发展起来的主要数学模型及其在基于有限元方法的骨数值模拟中的应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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