Fabrication of a PDMS-based substrate with a stiffness gradient for modeling the mechanical microenvironment in single and collective cell studies

刚度 材料科学 机械生物学 聚二甲基硅氧烷 基质(水族馆) 弹性体 纳米技术 组织工程 制作 生物医学工程 微流控 机械转化 图层(电子) 复合材料 解剖 海洋学 地质学 病理 神经科学 替代医学 生物 医学
作者
M. Alavi,Mohammad Tabatabaei,Mohammad Tafazzoli‐Shadpour,Mohamad Sadegh Aghajanzadeh
出处
期刊:Journal of Biomaterials Applications [SAGE Publishing]
卷期号:40 (6): 715-726
标识
DOI:10.1177/08853282251375172
摘要

Mechanotransduction plays a pivotal role in shaping cellular behavior including migration, differentiation, and proliferation. To investigate this mechanism more accurately further, this study came up with a novel elastomeric substrate with a stiffness gradient using a sugar-based replica molding technique combined with a two-layer PDMS system. The efficient water solubility of candy allows easy release, creating a smooth substrate. By adjusting the substrate’s thickness, the optimal effective gradient length for the study is achievable. Additionally, adjusting substrate thickness precisely controls stiffness, from very soft to hard-tissue-like rigidity. Atomic force microscopy characterization confirmed a continuous stiffness gradient on three commonly used PDMS mixtures, 1:30, 1:50, and 1:75, demonstrating the versatility of this method for fabricating and tuning substrates to mimic various tissue environments. In cellular experiments, 3T3 fibroblast cells exhibited a significant migratory response toward the 1:50/1:75 two-layer stiffness gradient, with cells migrating preferably in stiffer directions. Its cost-effectiveness, smooth surface, and ability to regulate gradient substrates with varied stiffness via different PDMS combinations are key advantages. By precisely replicating physiologically relevant mechanical microenvironments, this method advances mechanobiology research and facilitates modeling of stiffness-guided cellular behaviors, paving the way for reliable tissue engineering and regenerative medicine studies.
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