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首页> 外文期刊>Journal of biomedical materials research, Part A >Tuning reversible cell adhesion to methacrylate‐based thermoresponsive polymers: Effects of composition on substrate hydrophobicity and cellular responses
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Tuning reversible cell adhesion to methacrylate‐based thermoresponsive polymers: Effects of composition on substrate hydrophobicity and cellular responses

机译:调节甲基丙烯酸酯类热响应聚合物的可逆细胞粘附性:组合物对底物疏水性和细胞反应的影响

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摘要

Abstract Thermoresponsive polymer (TRP) cell culture substrates are widely utilized for nonenzymatic, temperature‐triggered release of adherent cells. Increasingly, multicomponent TRPs are being developed to facilitate refined control of cell adhesion and detachment, which requires an understanding of the relationships between composition‐dependent substrate physicochemical properties and cellular responses. Here, we utilize a homologous series of poly(MEO 2 MA x ‐co‐OEGMA y ) brushes with variable copolymer ratio ( x/y ) to explore the effects of substrate hydrophobicity on L‐929 fibroblast adhesion, morphology, and temperature‐triggered cell detachment. Substrate hydrophobicity is reported in terms of the equilibrium spreading coefficient ( S ), and variations in copolymer ratio reveal differential hydrophobicity that is correlated to serum protein adsorption and initial cell attachment at 37°C. Furthermore, quantitative metrics of cell morphology show that cell spreading is enhanced on more hydrophobic surfaces with increased ( x/y ) ratio, which is further supported by gene expression analysis of biomarkers of cell spreading (e.g., RhoA , Dusp2 ). Temperature‐dependent cell detachment is limited for pure poly(MEO 2 MA); however, rapid cell rounding and detachment (20 min) are evident for all poly(MEO 2 MA x ‐co‐OEGMA y ) substrates. These results suggest that increased MEO 2 MA content in poly(MEO 2 MA x ‐co‐OEGMA y ) substrates elicits enhanced protein adsorption, cell adhesion, and cell spreading; however, integration of small amounts of the more hydrophilic OEGMA unit facilitates both cell attachment/spreading and detachment. This study demonstrates an important role for the composition‐dependent control of surface hydrophobicity in the design of multicomponent TRPs for desired biological outcomes. ? 2017 Wiley Periodicals, Inc. J Biomed Mater Res Part A: 105A: 2416–2428, 2017.
机译:摘要热响应性聚合物(TRP)细胞培养基材广泛用于非酶的温度触发的粘附细胞。越来越多地开发了多组分TRP,以促进细胞粘附和脱离的精制控制,这需要了解组成依赖性底物物理化学性质和细胞反应之间的关系。在这里,我们利用具有可变共聚物比(X / Y)的同源聚烯(MeO 2 mA X-Co-OEGMA Y)刷子刷,以探讨底物疏水性对L-929成纤维细胞粘附,形态和温度触发的影响。细胞脱离。在平衡扩散系数方面报道底物疏水性,共聚物比的变化显示差异疏水性,差异疏水性与37℃的血清蛋白质吸附和初始细胞附着相关。此外,细胞形态的定量度量表明,在具有增加(X / Y)比的更多疏水表面上,细胞扩散增强,这是通过细胞扩散的生物标志物的基因表达分析进一步支持(例如,rhOA,Dusp2)。温度依赖性细胞脱离限于纯聚(Meo 2 ma);然而,对于所有聚(MEO 2 mA X-CO-OEGMA Y)底物是显而易见的快速细胞圆形和脱离(& 20分钟)。这些结果表明聚(MeO 2 mA X-Co-Oegma Y)底物中增加的MeO 2 mA含量引发增强蛋白质吸附,细胞粘附和细胞扩散;然而,少量更亲水性OEGMA单元的整合有助于细胞附着/扩散和分离。本研究表明,对于所需生物成果的多组分TRP设计,对表面疏水性的组成依赖性控制的重要作用。还2017年Wiley期刊,Inc。J生物保罗第A部分:105A:2016-2428,2017。

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