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In Situ Monitoring of Linear RGD-Peptide Bioconjugation with Nanoscale Polymer Brushes

机译:纳米级聚合物刷对线性RGD-肽生物共轭的原位监测

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摘要

Bioinspired materials mimicking the native extracellular matrix environment are promising for biotechnological applications. Particularly, modular biosurface engineering based on the functionalization of stimuli-responsive polymer brushes with peptide sequences can be used for the development of smart surfaces with biomimetic cues. The key aspect of this study is the in situ monitoring and analytical verification of the biofunctionalization process on the basis of three complementary analytical techniques. In situ spectroscopic ellipsometry was used to quantify the amount of chemisorbed GRGDS at both the homopolymer poly(acrylic acid) (PAA) brush and the binary poly(N -isopropylacrylamide) (PNIPAAm)–PAA brushes, which was finally confirmed by an acidic hydrolysis combined with a subsequent reverse-phase high-performance liquid chromatography analysis. In situ attenuated total reflection-Fourier transform infrared spectroscopy provided a step-by-step detection of the biofunctionalization process so that an optimized protocol for the bioconjugation of GRGDS could be identified. The optimized protocol was used to create a temperature-responsive binary brush with a high amount of chemisorbed GRGDS, which is a promising candidate for the temperature-sensitive control of GRGDS presentation in further cell-instructive studies.
机译:模仿天然细胞外基质环境的受生物启发的材料有望用于生物技术应用。特别地,基于具有肽序列的刺激响应性聚合物刷的功能化的模块化生物表面工程可用于开发具有仿生线索的智能表面。这项研究的关键方面是在三种辅助分析技术的基础上对生物功能化过程进行原位监测和分析验证。原位光谱椭圆偏振法用于定量分析均聚物聚丙烯酸(PAA)刷和二元聚(N-异丙基丙烯酰胺)(PNIPAAm)-PAA刷的化学吸附GRGDS量,该方法最终得到了证实酸性水解,然后进行反相高效液相色谱分析。原位衰减全反射-傅立叶变换红外光谱提供了生物功能化过程的逐步检测,因此可以确定GRGDS生物缀合的优化方案。优化的协议用于创建具有大量化学吸附的GRGDS的温度响应性二元刷,这是在进一步的细胞指导性研究中对GRGDS呈递的温度敏感控制的有希望的候选者。

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