Department of Biomedical Engineering, Case Western Reserve University, Cleveland, OH, 44106, United States; Department of Biomedical Engineering, University of Illinois at Chicago, Chicago, Illinois, 60607, United States.
Department of Medical Anthropology, Case Western Reserve University, Cleveland, Ohio, 44106, United States.
Acta Biomater. 2021 Dec;136:88-98. doi: 10.1016/j.actbio.2021.09.032. Epub 2021 Sep 23.
The mechanical properties of the native extracellular matrix play a key role in regulating cell behavior during developmental, healing and homeostatic processes. Since these properties change over time, it may be valuable to have the capacity to dynamically vary the mechanical properties of engineered hydrogels used in tissue engineering strategies to better mimic the dynamic mechanical behavior of native extracellular matrix. However, in situ repeatedly reversible dynamic tuning of hydrogel mechanics is still limited. In this study, we have engineered a hydrogel system with reversible dynamic mechanics using a dual-crosslinkable alginate hydrogel. The effect of reversible mechanical signals on encapsulated stem cells in dynamically tunable hydrogels has been demonstrated. In situ stiffening of hydrogels decreases cell spreading and proliferation, and subsequent softening of hydrogels gives way to an increase in cell spreading and proliferation. The hydrogel stiffening and softening, and resulting cellular responses are repeatedly reversible. This hydrogel system provides a promising platform for investigating the effect of repeatedly reversible changes in extracellular matrix mechanics on cell behaviors. STATEMENT OF SIGNIFICANCE: Since the mechanical properties of native extracellular matrix (ECM) change over time during development, healing and homeostatic processes, it may be valuable to have the capacity to dynamically control the mechanics of biomaterials used in tissue engineering and regenerative medicine applications to better mimic this behavior. Unlike previously reported biomaterials whose mechanical properties can be changed by the user only a limited number of times, this system provides the capacity to induce unlimited alterations to the mechanical properties of an engineered ECM for 3D cell culture. This study presents a strategy for on-demand dynamic and reversible control of materials' mechanics by single and dual-crosslinking mechanisms using oxidized and methacrylated alginates. By demonstrating direct changes in encapsulated human mesenchymal stem cell morphology, proliferation and chondrogenic differentiation in response to multiple different dynamic changes in hydrogel mechanics, we have established a repeatedly reversible 3D cellular mechanosensing system. This system provides a powerful platform tool with a wide range of stiffness tunability to investigate the role of dynamic mechanics on cellular mechanosensing and behavioral responses.
天然细胞外基质的力学性能在调节发育、愈合和动态平衡过程中的细胞行为方面起着关键作用。由于这些性能随时间而变化,因此能够动态改变组织工程策略中使用的工程水凝胶的机械性能以更好地模拟天然细胞外基质的动态机械行为可能是有价值的。然而,水凝胶力学的原位重复可逆动态调节仍然有限。在这项研究中,我们使用双交联海藻酸钠水凝胶设计了一种具有可逆动态力学的水凝胶系统。已经证明了可逆机械信号对动态可调水凝胶中包封的干细胞的影响。水凝胶的原位变硬会降低细胞的扩散和增殖,随后水凝胶的软化会导致细胞的扩散和增殖增加。水凝胶的变硬和软化以及由此产生的细胞反应是可重复的。该水凝胶系统为研究细胞外基质力学的反复可逆变化对细胞行为的影响提供了一个有前途的平台。
由于在发育、愈合和动态平衡过程中天然细胞外基质(ECM)的机械性能随时间而变化,因此能够动态控制组织工程和再生医学应用中生物材料的力学性能以更好地模拟这种行为可能是有价值的。与以前报道的生物材料不同,其机械性能只能由用户改变有限次数,该系统提供了在 3D 细胞培养中对工程 ECM 的机械性能进行无限次改变的能力。本研究提出了一种使用氧化和甲基丙烯酰化海藻酸盐通过单交联和双交联机制按需动态和可逆控制材料力学的策略。通过证明封装的人间充质干细胞的形态、增殖和软骨分化直接响应水凝胶力学的多次不同动态变化,我们建立了一个可重复的 3D 细胞机械感受系统。该系统提供了一个具有广泛的刚度可调性的强大平台工具,用于研究动态力学对细胞机械感受和行为反应的作用。