Perspectives on in silico bone mechanobiology: computational modelling of multicellular systems.

IF 3.2 3区 医学 Q3 CELL & TISSUE ENGINEERING
D Boaretti, E Wehrle, Y D Bansod, D C Tourolle Né Betts, R Müller
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引用次数: 4

Abstract

Bone mechanobiology is the study of the physical, biological and mechanical processes that continuously affect the multiscale multicellular system of the bone from the organ to the molecular scale. Current knowledge derives from experimental studies, which are often limited to gathering qualitative data in a cross-sectional manner, up to a restricted number of time points. Moreover, the simultaneous collection of information about 3D bone microarchitecture, cell activity as well as protein distribution and level is still a challenge. In silico models can expand qualitative information with hypothetical quantitative systems, which allow quantification, testing and comparison to existing quantifiable experimental data. An overview of multiscale, multiphysics, agent-based and hybrid techniques and their applications to bone mechanobiology is provided in the present review. The study analysed how mechanical signals, cells and proteins can be modelled in silico to represent bone remodelling and adaptation. Hybrid modelling of bone mechanobiology could combine the methods used in multiscale, multiphysics and agent-based models into a single model, leading to a unified and comprehensive understanding of bone mechanobiology. Numerical simulations of in vivo multicellular systems aided in hypothesis testing of such in silico models. Recently, in silico trials have been used to illustrate the mechanobiology of cells and signalling pathways in clinical biopsies and animal bones, including the effects of drugs on single cells and signalling pathways up to the organ level. This improved understanding may lead to the identification of novel therapies for degenerative diseases such as osteoporosis.

硅骨力学生物学的观点:多细胞系统的计算建模。
骨力学生物学是研究从器官到分子尺度持续影响骨的多尺度多细胞系统的物理、生物和力学过程的学科。目前的知识来自实验研究,通常仅限于在有限的时间点内以横断面方式收集定性数据。此外,同时收集三维骨微结构、细胞活性以及蛋白质分布和水平的信息仍然是一个挑战。计算机模型可以用假设的定量系统扩展定性信息,从而允许对现有的可量化实验数据进行量化、测试和比较。本文综述了多尺度、多物理场、基于agent和混合技术及其在骨力学生物学中的应用。该研究分析了机械信号、细胞和蛋白质如何在计算机上建模,以代表骨骼的重塑和适应。骨力学生物学的混合建模可以将多尺度、多物理场和基于agent的模型方法结合到一个单一的模型中,从而实现对骨力学生物学的统一和全面的理解。体内多细胞系统的数值模拟有助于这种硅模型的假设检验。最近,计算机试验已被用于阐明临床活组织检查和动物骨骼中细胞和信号通路的机械生物学,包括药物对单细胞和信号通路的影响,直至器官水平。这种改进的认识可能导致对诸如骨质疏松等退行性疾病的新疗法的鉴定。
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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来源期刊
European cells & materials
European cells & materials 生物-材料科学:生物材料
CiteScore
6.00
自引率
6.50%
发文量
55
审稿时长
1.5 months
期刊介绍: eCM provides an interdisciplinary forum for publication of preclinical research in the musculoskeletal field (Trauma, Maxillofacial (including dental), Spine and Orthopaedics). The clinical relevance of the work must be briefly mentioned within the abstract, and in more detail in the paper. Poor abstracts which do not concisely cover the paper contents will not be sent for review. Incremental steps in research will not be entertained by eCM journal.Cross-disciplinary papers that go across our scope areas are welcomed.
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