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Progress in the mechanical modulation of cell functions in tissue engineering

机译:组织工程中细胞功能力学调制的进展

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摘要

In mammals, mechanics at multiple stages--nucleus to cell to ECM--underlie multiple physiological and pathological functions from its development to reproduction to death. Under this inspiration, substantial research has established the role of multiple aspects of mechanics in regulating fundamental cellular processes, including spreading, migration, growth, proliferation, and differentiation. However, our understanding of how these mechanical mechanisms are orchestrated or tuned at different stages to maintain or restore the healthy environment at the tissue or organ level remains largely a mystery. Over the past few decades, research in the mechanical manipulation of the surrounding environment--known as substrate or matrix or scaffold on which, or within which, cells are seeded--has been exceptionally enriched in the field of tissue engineering and regenerative medicine. To do so, traditional tissue engineering aims at recapitulating key mechanical milestones of native ECM into a substrate for guiding the cell fate and functions towards specific tissue regeneration. Despite tremendous progress, a big puzzle that remains is how the cells compute a host of mechanical cues, such as stiffness (elasticity), viscoelasticity, plasticity, non-linear elasticity, anisotropy, mechanical forces, and mechanical memory, into many biological functions in a cooperative, controlled, and safe manner. High throughput understanding of key cellular decisions as well as associated mechanosensitive downstream signaling pathway(s) for executing these decisions in response to mechanical cues, solo or combined, is essential to address this issue. While many reports have been made towards the progress and understanding of mechanical cues--particularly, substrate bulk stiffness and viscoelasticity--in regulating the cellular responses, a complete picture of mechanical cues is lacking. This review highlights a comprehensive view on the mechanical cues that are linked to modulate many cellular functions and consequent tissue functionality. For a very basic understanding, a brief discussion of the key mechanical players of ECM and the principle of mechanotransduction process is outlined. In addition, this review gathers together the most important data on the stiffness of various cells and ECM components as well as various tissues/organs and proposes an associated link from the mechanical perspective that is not yet reported. Finally, beyond addressing the challenges involved in tuning the interplaying mechanical cues in an independent manner, emerging advances in designing biomaterials for tissue engineering are also explored.
机译:在哺乳动物中,多个阶段的力学 - 细胞对ECM的细胞 - 基础的多种生理和病理功能从其开发到繁殖到死亡。在这种灵感下,大量研究已经建立了机械师的多个方面在调节基本细胞过程中的作用,包括传播,迁移,生长,增殖和分化。然而,我们了解这些机械机制如何在不同阶段进行策划或调整以维持或恢复组织或器官水平的健康环境仍然是一个谜。在过去的几十年中,在种子或在其中接种细胞的衬底或基质或支架上的周围环境的机械操作的研究 - 在组织工程和再生医学领域已经出乎异丧地富集。为此,传统的组织工程旨在将天然ECM的关键机械里程碑重新承载到用于引导细胞命运和朝向特定组织再生的基板上。尽管进展巨大,但仍然是细胞如何计算一系列机械线索,例如刚度(弹性),粘弹性,可塑性,非线性弹性,各向异性,机械力和机械记忆,这是许多生物学功能合作,控制和安全的方式。对关键蜂窝决策的高吞吐量理解以及用于执行这些决策的关键蜂窝决策以及相关的机械敏感下游信令通路,以响应机械提示,单独或组合来执行这些决定,对于解决这个问题至关重要。虽然已经朝着对机械提示的进度和理解进行了许多报告 - 特别是衬底体积刚度和粘弹性 - 在调节细胞反应时,缺乏机械线索的完整图像。此综述突出显示与调制许多蜂窝功能和随后的组织功能相关的机械提示的全面视图。对于非常基本的理解,概述了ECM关键机械球员的简要讨论和机械手术过程的原理。此外,本综述将最重要的数据组合在一起,以及各种组织/器官的刚度以及各种组织/器官,并提出了从尚未报道的机械视角的相关联系。最后,除了以独立方式调整相互作用机械提示的挑战,还探讨了设计组织工程生物材料的出现进展。

著录项

  • 来源
    《Biomaterials Science》 |2020年第24期|共49页
  • 作者单位

    Department of Applied Chemistry and Chemical Engineering Faculty of Science University of Chittagong Bangladesh;

    Neurosurgery Head and Neck Department Istituto Ospedaliero Fondazione Poliambulanza Brescia Italy;

    Department of Mechanical and Industrial Engineering University of Brescia Brescia Italy;

    Department of Mechanical and Industrial Engineering University of Brescia Brescia Italy;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 计量学;
  • 关键词

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