Eliahoo Payam, Setayesh Hesam, Hoffman Tyler, Wu Yifan, Li Song, Treweek Jennifer B
Department of Biomedical Engineering, University of Southern California, Los Angeles, California 90089 United States.
Department of Bioengineering, University of California Los Angeles, Los Angeles, California 90095 United States.
ACS Mater Au. 2024 Jun 18;4(4):354-384. doi: 10.1021/acsmaterialsau.3c00038. eCollection 2024 Jul 10.
The field of mechanobiology is gaining prominence due to recent findings that show cells sense and respond to the mechanical properties of their environment through a process called mechanotransduction. The mechanical properties of cells, cell organelles, and the extracellular matrix are understood to be viscoelastic. Various technologies have been researched and developed for measuring the viscoelasticity of biological materials, which may provide insight into both the cellular mechanisms and the biological functions of mechanotransduction. Here, we explain the concept of viscoelasticity and introduce the major techniques that have been used to measure the viscoelasticity of various soft materials in different length- and timescale frames. The topology of the material undergoing testing, the geometry of the probe, the magnitude of the exerted stress, and the resulting deformation should be carefully considered to choose a proper technique for each application. Lastly, we discuss several applications of viscoelasticity in 3D cell culture and tissue models for regenerative medicine, including organoids, organ-on-a-chip systems, engineered tissue constructs, and tunable viscoelastic hydrogels for 3D bioprinting and cell-based therapies.
由于最近的研究发现表明细胞通过一种称为机械转导的过程感知并响应其周围环境的机械特性,力学生物学领域正日益受到关注。细胞、细胞器和细胞外基质的机械特性被认为是粘弹性的。人们已经研究和开发了各种技术来测量生物材料的粘弹性,这可能有助于深入了解机械转导的细胞机制和生物学功能。在这里,我们解释粘弹性的概念,并介绍在不同长度和时间尺度框架下用于测量各种软材料粘弹性的主要技术。为每个应用选择合适的技术时,应仔细考虑被测材料的拓扑结构、探针的几何形状、施加应力的大小以及由此产生的变形。最后,我们讨论了粘弹性在用于再生医学的3D细胞培养和组织模型中的几种应用,包括类器官、芯片上器官系统、工程组织构建体以及用于3D生物打印和基于细胞疗法的可调粘弹性水凝胶。