Bertsch Pascal, Sacco Pasquale
University of Fribourg, Department of Chemistry, Ch. du Musée 9, 1700, Fribourg, Switzerland.
University of Fribourg, Food Research and Innovation Center, Ch. du Musée 9, 1700, Fribourg, Switzerland.
Mater Today Bio. 2025 Aug 9;34:102188. doi: 10.1016/j.mtbio.2025.102188. eCollection 2025 Oct.
The mechanical complexity of the extracellular matrix (ECM) is central to how cells sense and respond to their environment, yet hydrogel design has often focused narrowly on stiffness. Emerging evidence highlights the importance of viscoelastic stress relaxation and plasticity in cell mechanotransduction. However, a key aspect remains underexplored: non-linear viscoelasticity, where stress relaxation and plasticity depend on the magnitude of applied stress or strain. In this perspective, we examine how such non-linear mechanical behaviors manifest in widely used hydrogels and discuss their biological relevance. We present experimental approaches, including oscillatory shear rheology, to detect non-linear viscoelastic effects, and introduce mathematical modeling approaches to interpret these behaviors. We find evidence in literature that several hydrogels commonly used in cell culture exhibit non-linear viscoelasticity occurring at stress and strain levels relevant to cell-generated forces. Specifically, both softening and stiffening hydrogels were found to exhibit accelerated stress relaxation or increased plasticity due to nonlinear viscoelasticity. By viewing non-linearity as a tunable design parameter, future hydrogel systems may better recapitulate the dynamic mechanical feedback loops cells experience in native tissues. This perspective encourages a paradigm shift in biomaterial design, integrating non-linear viscoelasticity into the next generation of ECM-mimetic hydrogels for cell culture and regenerative applications.
细胞外基质(ECM)的机械复杂性对于细胞感知和响应其环境至关重要,然而水凝胶设计往往过于狭隘地聚焦于硬度。新出现的证据凸显了粘弹性应力松弛和可塑性在细胞机械转导中的重要性。然而,一个关键方面仍未得到充分探索:非线性粘弹性,即应力松弛和可塑性取决于所施加应力或应变的大小。从这个角度出发,我们研究了这种非线性力学行为在广泛使用的水凝胶中是如何表现的,并讨论了它们的生物学相关性。我们介绍了包括振荡剪切流变学在内的实验方法,以检测非线性粘弹性效应,并引入数学建模方法来解释这些行为。我们在文献中发现证据表明,细胞培养中常用的几种水凝胶在与细胞产生的力相关的应力和应变水平上表现出非线性粘弹性。具体而言,发现软化和硬化水凝胶由于非线性粘弹性而表现出加速的应力松弛或增加的可塑性。通过将非线性视为一个可调节的设计参数,未来的水凝胶系统可能会更好地重现细胞在天然组织中所经历的动态机械反馈回路。这一观点鼓励生物材料设计的范式转变,将非线性粘弹性整合到用于细胞培养和再生应用的下一代模拟ECM的水凝胶中。