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Dynamics of smooth muscle cell deadhesion from thermosensitive hydroxybutyl chitosan

机译:热敏羟丁基壳聚糖对平滑肌细胞黏附的动力学

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摘要

Thermoresponsive polymer (TRP) enables the enzyme-free harvesting of cells through an acute increase in surface hydrophilicity of TRP across its lower critical solution temperature (LCST), rendering feasible the generation of polymer-free cell sheets for regenerative medicine applications. To date, the intricate mechanisms of cell deadhesion/detachment on TRP surface remain obscure. Elucidation of such biophysical responses would be valuable for the cell sheet technology. In this study, integrative biophysical techniques are applied to probe the thermal-induced deadhesion kinetics of smooth muscle cell (SMC) on thermoresponsive hydroxybutyl chitosan (HBC29) against different periods of pre-culture time at 37 °C. Atomic force microscopy demonstrates that both the surface topography and mechanical property of HBC29 film in water are acutely modulated across its LCST. Firstly, cells show negligible changes in adhesion contact area during low-temperature incubation on unmodified tissue culture polystyrene (TCPS). Secondly, the recession of adhesion contact and retraction of cell body for cells with different pre-culture times are triggered by HBC29 coating on TCPS. Interestingly, the initial rate of reduction in the normalized adhesion contact area of SMC is negatively correlated with the pre-culture time. Thirdly, the degree of cell deformation and average adhesion energy are reducing functions of time only for SMCs with the lowest pre-culture time. In contrast, adhesion energy per cell is a reducing function of time irrespective of the change of pre-culture time. Lastly, the temporal dynamics of cytoskeleton organization and β-actin/smoothelin-B mRNA expression for SMCs is strongly dependent on the pre-culture time. Overall, this study demonstrates that the thermal-induced deadhesion of SMC on TRP is characterized by the evolution of its contractile phenotypes.
机译:热响应聚合物(TRP)通过在其较低的临界溶液温度(LCST)范围内大幅增加TRP的表面亲水性,从而实现了无酶的细胞收获,从而使再生医学应用中无聚合物细胞片的生产成为可能。迄今为止,TRP表面上细胞粘附/脱离的复杂机制仍然不清楚。阐明这种生物物理反应对于细胞片技术将是有价值的。在这项研究中,综合的生物物理技术被用来探测热敏羟丁基壳聚糖(HBC29)在不同的预培养时间段在37°C下的平滑肌细胞(SMC)的热诱导的粘连动力学。原子力显微镜显示,HBC29膜在水中的表面形貌和力学性能均在其LCST上受到了强烈调节。首先,在未经修饰的组织培养聚苯乙烯(TCPS)上进行低温孵育时,细胞的粘附接触面积变化可忽略不计。其次,不同预培养时间的细胞的粘附接触的退缩和细胞体的收缩是由TCPS上的HBC29涂层引发的。有趣的是,SMC标准化附着接触面积的初始降低速率与预培养时间负相关。第三,仅对于具有最短预培养时间的SMC,细胞变形程度和平均粘附能才是降低时间的函数。相反,与预培养时间的变化无关,每个细胞的粘附能是时间的减少函数。最后,SMCs的细胞骨架组织和β-肌动蛋白/ smoothelin-B mRNA表达的时间动态强烈依赖于预培养时间。总体而言,这项研究表明,SMC对TRP的热诱导粘附作用的特征在于其收缩表型的演变。

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