Vijay Rajagopal, William R Holmes, Peter Vee Sin Lee
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引用次数: 0
摘要
从器官发育到伤口愈合、组织稳态和癌症转移,细胞细胞骨架力学在人类健康的许多方面都发挥着重要作用。我们总结了对细胞硬度和力学以及细胞骨架成分和调控因素进行数学建模的最新技术。我们重点介绍了有助于模型参数化的关键实验,并比较了用于重现这些实验的不同模型的优势。我们概述了从信号传导到细胞骨架重塑的前馈机制,随后讨论了从细胞骨架和细胞力学到信号传导的反馈机制这一迅速发展的利基领域。我们讨论了可加速研究和理解细胞机械生物学的广泛进展领域。对影响细胞和组织力学与功能的分子机制的准确理解将成为未来医疗设备技术创新的基础。WIREs Syst Biol Med 2018, 10:e1407. doi: 10.1002/wsbm.1407 This article is categorized under:系统属性和过程模型 > 机制模型 生理学 > 健康和疾病中的哺乳动物生理学 系统属性和过程模型 > 细胞模型。
Computational modeling of single-cell mechanics and cytoskeletal mechanobiology.
Cellular cytoskeletal mechanics plays a major role in many aspects of human health from organ development to wound healing, tissue homeostasis and cancer metastasis. We summarize the state-of-the-art techniques for mathematically modeling cellular stiffness and mechanics and the cytoskeletal components and factors that regulate them. We highlight key experiments that have assisted model parameterization and compare the advantages of different models that have been used to recapitulate these experiments. An overview of feed-forward mechanisms from signaling to cytoskeleton remodeling is provided, followed by a discussion of the rapidly growing niche of encapsulating feedback mechanisms from cytoskeletal and cell mechanics to signaling. We discuss broad areas of advancement that could accelerate research and understanding of cellular mechanobiology. A precise understanding of the molecular mechanisms that affect cell and tissue mechanics and function will underpin innovations in medical device technologies of the future. WIREs Syst Biol Med 2018, 10:e1407. doi: 10.1002/wsbm.1407 This article is categorized under: Models of Systems Properties and Processes > Mechanistic Models Physiology > Mammalian Physiology in Health and Disease Models of Systems Properties and Processes > Cellular Models.
期刊介绍:
Journal Name:Wiley Interdisciplinary Reviews-Systems Biology and Medicine
Focus:
Strong interdisciplinary focus
Serves as an encyclopedic reference for systems biology research
Conceptual Framework:
Systems biology asserts the study of organisms as hierarchical systems or networks
Individual biological components interact in complex ways within these systems
Article Coverage:
Discusses biology, methods, and models
Spans systems from a few molecules to whole species
Topical Coverage:
Developmental Biology
Physiology
Biological Mechanisms
Models of Systems, Properties, and Processes
Laboratory Methods and Technologies
Translational, Genomic, and Systems Medicine