首页> 美国卫生研究院文献>Frontiers in Neuroengineering >Glycine-Spacers Influence Functional Motifs Exposure and Self-Assembling Propensity of Functionalized Substrates Tailored for Neural Stem Cell Cultures
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Glycine-Spacers Influence Functional Motifs Exposure and Self-Assembling Propensity of Functionalized Substrates Tailored for Neural Stem Cell Cultures

机译:甘氨酸-间隔物影响功能性基元曝光和为神经干细胞培养量身定制的功能化底物的自组装倾向。

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摘要

The understanding of phenomena involved in the self-assembling of bio-inspired biomaterials acting as three-dimensional scaffolds for regenerative medicine applications is a necessary step to develop effective therapies in neural tissue engineering. We investigated the self-assembled nanostructures of functionalized peptides featuring four, two or no glycine-spacers between the self-assembly sequence RADA16-I and the functional biological motif PFSSTKT. The effectiveness of their biological functionalization was assessed via in vitro experiments with neural stem cells (NSCs) and their molecular assembly was elucidated via atomic force microscopy, Raman and Fourier Transform Infrared spectroscopy. We demonstrated that glycine-spacers play a crucial role in the scaffold stability and in the exposure of the functional motifs. In particular, a glycine-spacer of four residues leads to a more stable nanostructure and to an improved exposure of the functional motif. Accordingly, the longer spacer of glycines, the more effective is the functional motif in both eliciting NSCs adhesion, improving their viability and increasing their differentiation. Therefore, optimized designing strategies of functionalized biomaterials may open, in the near future, new therapies in tissue engineering and regenerative medicine.
机译:对于参与再生医学应用的三维支架的生物启发生物材料的自组装所涉及的现象的理解,是开发神经组织工程中有效疗法的必要步骤。我们研究了自组装序列RADA16-I和功能性生物基序PFSSTKT之间具有四个,两个或没有甘氨酸间隔基的功能化肽的自组装纳米结构。通过神经干细胞(NSC)的体外实验评估了其生物学功能的有效性,并通过原子力显微镜,拉曼光谱和傅立叶变换红外光谱法阐明了它们的分子组装。我们证明甘氨酸间隔物在支架的稳定性和功能性图案的暴露中起着至关重要的作用。特别地,具有四个残基的甘氨酸-间隔基导致更稳定的纳米结构并改善了功能基序的暴露。因此,甘氨酸间隔物越长,在引发NSCs粘附,改善其生存力和增加其分化方面,功能基序越有效。因此,功能化生物材料的优化设计策略可能会在不久的将来为组织工程和再生医学开辟新的疗法。

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