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Exploration of the Effects of Substrate Stiffness on Biological Responses of Neural Cells and Their Mechanisms

机译:基质刚度对神经细胞生物反应的影响及其机制

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Substrate stiffness, as a critical mechanical factor, has been proven to be an important regulator of biological responses, cellular functions, and disease occurrence. However, the effects of substrate stiffness on the phenotypes and drug responses of neural cells remain largely unknown. In this study, polydimethylsiloxane (PDMS) substrates with different stiffnesses were employed to establish the mechanical microenvironment of tissues of different organs. We studied the influences of stiffness on neural cell phenotypes, including cell viability, cell cycle, cytoskeleton structures, cell stiffness, and drug responses of neural cells for hormesis and therapeutic efficacy in neurodegenerative disorders (NDD). The results showed that the greater the range of maximum stimulatory responses, the bigger the width of the stimulatory dosage and the higher the range of maximum neuroprotective activities of hormetic chemicals in neural cells grown on the soft substrate commensurable to the stiffness of the brain, indicating that neural cells on a rigid substrate are resistant to hormetic and neuroprotective effects of hormetic chemicals against 6-hydroxydopamine (6-OHDA)-induced Parkinson’s disease (PD) model. The sensitivity of neural cells on the soft substrate to drug response was attributed to the increased cell viability rate, cell cycle progression, actin stress fibers, focal adhesion formation, and decreased cell stiffness. The promoting effect of the soft substrate and the enhanced hormetic and neuroprotective effect of hormetic chemicals on soft substrates in PC12 cells were confirmed to be mediated by the upregulated EGFR/PI3K/AKT signaling pathway by RNA-Seq and bioinformatics analysis. This study demonstrates that the biomechanical properties of the neural microenvironment play important roles in cell phenotypes and drug responses of neural cells in vitro and suggests that substrate stiffness should be considered in the anti-NDD drug design and treatment.
机译:被证明是临界机械因子作为临界机械因子的基材刚度是生物反应,细胞功能和疾病发生的重要调节因素。然而,衬底刚度对神经细胞表型和药物反应的影响仍然很大程度上是未知的。在该研究中,采用具有不同刚度的聚二甲基硅氧烷(PDMS)基材来建立不同器官组织的机械微环境。我们研究了刚度对神经细胞表型的影响,包括细胞活力,细胞周期,细胞骨架结构,细胞刚度和神经细胞对神经变性疾病(NDD)中的治疗疗效的治疗效果的药物反应。结果表明,最大刺激反应的范围越大,刺激剂量的宽度越大,刺激剂量的最大神经保护活动范围越高,在软基板上生长的神经细胞中的最大神经保护活性较高,表明是脑刚度的刚度,表明刚性底物上的神经细胞对6-羟基多戊胺(6-OHDA)诱导的帕金森病(Pd)模型对刺激性化学物质的刺激和神经保护作用是抗性和神经保护作用。神经细胞对软基质对药物反应的敏感性归因于增加的细胞活力速率,细胞周期进展,肌动蛋白应力纤维,局灶性粘附形成和细胞刚度降低。通过RNA-SEQ和Bioinformatics分析,确认了软基质对PC12细胞中的软衬底上的软衬底上的增强刺激和神经保护作用的促进作用。该研究表明,神经微环境的生物力学特性在体外中神经细胞的细胞表型和药物反应中起重要作用,并表明抗NDD药物设计和治疗中应考虑基质刚度。

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