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骨的自上而下和自下而上工程。

Top down and bottom up engineering of bone.

机构信息

Department of Mechanical & Aerospace Engineering, Department of Biomedical Engineering, Case Western Reserve University, 10900 Euclid Avenue, Cleveland, OH 44106-7222, USA.

出版信息

J Biomech. 2011 Jan 11;44(2):304-12. doi: 10.1016/j.jbiomech.2010.10.019. Epub 2010 Dec 13.

Abstract

The goal of this retrospective article is to place the body of my lab's multiscale mechanobiology work in context of top-down and bottom-up engineering of bone. We have used biosystems engineering, computational modeling and novel experimental approaches to understand bone physiology, in health and disease, and across time (in utero, postnatal growth, maturity, aging and death, as well as evolution) and length scales (a single bone like a femur, m; a sample of bone tissue, mm-cm; a cell and its local environment, μm; down to the length scale of the cell's own skeleton, the cytoskeleton, nm). First we introduce the concept of flow in bone and the three calibers of porosity through which fluid flows. Then we describe, in the context of organ-tissue, tissue-cell and cell-molecule length scales, both multiscale computational models and experimental methods to predict flow in bone and to understand the flow of fluid as a means to deliver chemical and mechanical cues in bone. Addressing a number of studies in the context of multiple length and time scales, the importance of appropriate boundary conditions, site specific material parameters, permeability measures and even micro-nanoanatomically correct geometries are discussed in context of model predictions and their value for understanding multiscale mechanobiology of bone. Insights from these multiscale computational modeling and experimental methods are providing us with a means to predict, engineer and manufacture bone tissue in the laboratory and in the human body.

摘要

这篇回顾性文章的目的是将我们实验室的多尺度机械生物学工作置于骨骼的自上而下和自下而上工程的背景下。我们使用生物系统工程、计算建模和新的实验方法来了解骨骼生理学,包括健康和疾病、跨时间(子宫内、出生后生长、成熟、衰老和死亡以及进化)和长度尺度(单个骨骼如股骨,m;骨组织样本,mm-cm;细胞及其局部环境,μm;直到细胞自身骨架的长度尺度,细胞骨架,nm)。首先,我们介绍骨骼中的流动概念和流体流动通过的三个口径的孔隙率。然后,我们在器官-组织、组织-细胞和细胞-分子长度尺度的背景下,描述了多尺度计算模型和实验方法,以预测骨骼中的流动,并了解作为在骨骼中传递化学和机械线索的手段的流体流动。针对多个研究,在多个长度和时间尺度的背景下,讨论了适当的边界条件、特定部位的材料参数、渗透性测量甚至微纳解剖正确的几何形状的重要性,这些都与模型预测及其对理解骨骼多尺度机械生物学的价值有关。这些多尺度计算建模和实验方法的见解为我们提供了一种在实验室和人体中预测、设计和制造骨组织的手段。

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