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Insights into the molecular architecture of a peptide nanotube using FTIR and solid-state NMR spectroscopic measurements on an aligned sample

机译:在对齐的样品上使用FTIR和固态NMR光谱测量洞察肽纳米管的分子结构

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摘要

The self-assembly of proteins and peptides into b-sheet-richudamyloid fibers is a process that has gained notoriety because of its association with human diseases and disorders. Spontaneous self-assembly of peptides into nonfibrillar supramolecular structures can also provide a versatile and convenient mechanism for the bottom-up design of biocompatible materials with functional properties favoring a wide range of practical applications.[1] One subset of these fascinating and potentially useful nanoscale constructions are the peptide nanotubes, elongated cylindrical structures with a hollow center bounded by a thin wall of peptide molecules.[2] Audformidable challenge in optimizing and harnessing theudproperties of nanotube assemblies is to gain atomistic insight into their architecture, and to elucidate precisely how the tubular morphology is constructed from the peptide building blocks. Some of these fine details have been elucidated recently with the use of magic-angle-spinning (MAS) solidstate NMR (SSNMR) spectroscopy.[3] MAS SSNMR measurements of chemical shifts and through-space interatomic distances provide constraints on peptide conformation (e.g., b-strands and turns) and quaternary packing. We describe here a new application of a straightforward SSNMR technique which, when combined with FTIR spectroscopy, reports quantitatively on the orientation of the peptide molecules within the nanotube structure, thereby providing an additional structural constraint not accessible to MAS SSNMR.
机译:蛋白质和肽的自组装成为富含b-折叠的类淀粉样蛋白纤维的过程因其与人类疾病和病症的关系而声名狼藉。肽的自组装成非原纤维超分子结构还可以为生物相容性材料的自下而上设计提供一种通用且方便的机制,其功能特性有利于广泛的实际应用。[1]这些引人入胜且可能有用的纳米级结构的一个子集是肽纳米管,细长的圆柱形结构,其空心中心由肽分子的薄壁界定。[2]优化和利用纳米管组件的性能的一个难以实施的挑战是获得对其结构的原子学见解,并精确阐明如何从肽结构单元构建管状形态。最近,使用魔角旋转(MAS)固态NMR(SSNMR)光谱阐明了其中的一些细节[3]。化学位移和贯穿空间的原子间距离的MAS SSNMR测量提供了对肽构象(例如b链和匝)和四级堆积的限制。我们在这里描述了一种简单的SSNMR技术的新应用,该技术与FTIR光谱结合使用时,定量报告了纳米管结构内肽分子的取向,从而提供了MAS SSNMR无法获得的其他结构约束。

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