School of Chemistry and School of Materials Science & Engineering, University of New South Wales, Sydney, NSW, Australia.
Blue Mountains World Interdisciplinary Innovation Institute (bmwi³), Blue Mountains, NSW, Australia.
Commun Biol. 2023 Jan 19;6(1):75. doi: 10.1038/s42003-022-04320-w.
Across complex, multi-time and -length scale biological systems, redundancy confers robustness and resilience, enabling adaptation and increasing survival under dynamic environmental conditions; this review addresses ubiquitous effects of cytoskeletal remodelling, triggered by biomechanical, biophysical and biochemical cues, on stem cell mechanoadaptation and emergent lineage commitment. The cytoskeleton provides an adaptive structural scaffold to the cell, regulating the emergence of stem cell structure-function relationships during tissue neogenesis, both in prenatal development as well as postnatal healing. Identification and mapping of the mechanical cues conducive to cytoskeletal remodelling and cell adaptation may help to establish environmental contexts that can be used prospectively as translational design specifications to target tissue neogenesis for regenerative medicine. In this review, we summarize findings on cytoskeletal remodelling in the context of tissue neogenesis during early development and postnatal healing, and its relevance in guiding lineage commitment for targeted tissue regeneration. We highlight how cytoskeleton-targeting chemical agents modulate stem cell differentiation and govern responses to mechanical cues in stem cells' emerging form and function. We further review methods for spatiotemporal visualization and measurement of cytoskeletal remodelling, as well as its effects on the mechanical properties of cells, as a function of adaptation. Research in these areas may facilitate translation of stem cells' own healing potential and improve the design of materials, therapies, and devices for regenerative medicine.
在复杂的、多时间和多长度尺度的生物系统中,冗余赋予了生物系统鲁棒性和弹性,使其能够在动态环境条件下适应和增加生存机会;这篇综述探讨了细胞骨架重塑的普遍影响,细胞骨架重塑是由生物力学、生物物理和生物化学线索触发的,它对干细胞的机械适应性和新兴谱系决定有影响。细胞骨架为细胞提供了一个适应性的结构支架,调节了干细胞在组织新生过程中结构-功能关系的出现,无论是在产前发育还是在产后愈合中。鉴定和绘制有利于细胞骨架重塑和细胞适应的力学线索,可以帮助建立环境背景,这些环境背景可以前瞻性地用作转化设计规范,以针对组织新生进行再生医学。在这篇综述中,我们总结了细胞骨架重塑在早期发育和产后愈合过程中的组织新生背景下的发现,以及其在指导靶向组织再生的谱系决定中的相关性。我们强调了细胞骨架靶向化学剂如何调节干细胞分化,并控制干细胞在出现的形态和功能中对机械线索的反应。我们进一步回顾了细胞骨架重塑的时空可视化和测量方法,以及其作为适应功能对细胞力学特性的影响。这些领域的研究可以促进干细胞自身愈合潜力的转化,并改善再生医学中材料、疗法和设备的设计。