National Engineering Research Center for Biomaterials, Sichuan University, Chengdu 610064, China.
Department of Orthopedic Surgery, West China Hospital, Sichuan University, Chengdu 610041, China.
Acta Biomater. 2019 Oct 1;97:74-92. doi: 10.1016/j.actbio.2019.08.013. Epub 2019 Aug 7.
Viscoelasticity of living tissues plays a critical role in tissue homeostasis and regeneration, and its implication in disease development and progression is being recognized recently. In this review, we first explored the state of knowledge regarding the potential application of tissue viscoelasticity in disease diagnosis. In order to better characterize viscoelasticity with local resolution and non-invasiveness, emerging characterization methods have been developed with the potential to be supplemented to existing facilities. To understand cellular responses to matrix viscoelastic behaviors in vitro, hydrogels made of natural polymers have been developed and the relationships between their molecular structure and viscoelastic behaviors, are elucidated. Moreover, how cells perceive the viscoelastic microenvironment and cellular responses including cell attachment, spreading, proliferation, differentiation and matrix production, have been discussed. Finally, some future perspective on an integrated mechanobiological comprehension of the viscoelastic behaviors involved in tissue homeostasis, cellular responses and biomaterial design are highlighted. STATEMENT OF SIGNIFICANCE: Tissue- or organ-scale viscoelastic behavior is critical for homeostasis, and the molecular basis and cellular responses of viscoelastic materials at micro- or nano-scale are being recognized recently. We summarized the potential applications of viscoelasticity in disease diagnosis enabled by emerging non-invasive characterization technologies, and discussed the underlying mechanism of viscoelasticity of hydrogels and current understandings of cell regulatory functions of them. With a growing understanding of the molecular basis of hydrogel viscoelasticity and recognition of its regulatory functions on cell behaviors, it is important to bring the clinical insights on how these characterization technologies and engineered materials may contribute to disease diagnosis and treatment. This review explains the basics in characterizing viscoelasticity with our hope to bridge the gap between basic research and clinical applications.
生物组织的黏弹性在组织动态平衡和再生中起着关键作用,其在疾病发展和进展中的作用最近才被认识到。在这篇综述中,我们首先探讨了组织黏弹性在疾病诊断中潜在应用的现有知识状态。为了更好地用局部分辨率和非侵入性来描述黏弹性,新兴的描述方法已经被开发出来,有可能补充现有的设备。为了了解细胞对基质黏弹性行为的体外反应,已经开发出了由天然聚合物制成的水凝胶,并阐明了它们的分子结构与其黏弹性之间的关系。此外,还讨论了细胞如何感知黏弹性微环境以及包括细胞附着、扩散、增殖、分化和基质产生在内的细胞反应。最后,还强调了对组织动态平衡、细胞反应和生物材料设计中涉及的黏弹性行为进行综合机械生物学理解的一些未来展望。
组织或器官级别的黏弹性行为对动态平衡至关重要,而微纳米级别的黏弹性材料的分子基础和细胞反应最近才被认识到。我们总结了新兴的非侵入性特征化技术使黏弹性在疾病诊断中的潜在应用,并讨论了水凝胶的黏弹性的潜在机制以及当前对其细胞调节功能的认识。随着对水凝胶黏弹性的分子基础的认识不断加深,以及对其对细胞行为的调节功能的认识不断提高,重要的是要了解这些特征化技术和工程材料如何有助于疾病诊断和治疗的临床见解。本综述解释了用特征化黏弹性的基础知识,希望能在基础研究和临床应用之间架起桥梁。