Boghdady Christina-Marie, Kalashnikov Nikita, Mok Stephanie, McCaffrey Luke, Moraes Christopher
Department of Chemical Engineering, McGill University, Montréal, Québec H3A 0C5, Canada.
APL Bioeng. 2021 Oct 1;5(4):041501. doi: 10.1063/5.0046093. eCollection 2021 Dec.
Cell-generated forces play a foundational role in tissue dynamics and homeostasis and are critically important in several biological processes, including cell migration, wound healing, morphogenesis, and cancer metastasis. Quantifying such forces is technically challenging and requires novel strategies that capture mechanical information across molecular, cellular, and tissue length scales, while allowing these studies to be performed in physiologically realistic biological models. Advanced biomaterials can be designed to non-destructively measure these stresses , and here, we review mechanical characterizations and force-sensing biomaterial-based technologies to provide insight into the mechanical nature of tissue processes. We specifically and uniquely focus on the use of these techniques to identify characteristics of cell and tissue "tensegrity:" the hierarchical and modular interplay between tension and compression that provide biological tissues with remarkable mechanical properties and behaviors. Based on these observed patterns, we highlight and discuss the emerging role of tensegrity at multiple length scales in tissue dynamics from homeostasis, to morphogenesis, to pathological dysfunction.
细胞产生的力在组织动力学和稳态中起着基础性作用,并且在包括细胞迁移、伤口愈合、形态发生和癌症转移在内的多个生物学过程中至关重要。量化这些力在技术上具有挑战性,需要新颖的策略来捕捉跨越分子、细胞和组织长度尺度的机械信息,同时允许在生理现实的生物学模型中进行这些研究。先进的生物材料可以被设计用于无损测量这些应力,在此,我们综述机械表征和基于力传感生物材料的技术,以深入了解组织过程的机械本质。我们特别且独特地关注这些技术的使用,以识别细胞和组织“张拉整体结构”的特征:张力和压缩之间的层次和模块化相互作用,为生物组织提供显著的机械性能和行为。基于这些观察到的模式,我们强调并讨论张拉整体结构在从稳态到形态发生再到病理功能障碍的组织动力学中多个长度尺度上的新兴作用。