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Structural analysis and mapping of individual protein complexes by infrared nanospectroscopy

机译:通过红外纳米光谱对单个蛋白质复合物进行结构分析和作图

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摘要

Mid-infrared spectroscopy is a widely used tool for material identification and secondary structure analysis in chemistry, biology and biochemistry. However, the diffraction limit prevents nanoscale protein studies. Here we introduce mapping of protein structure with 30 nm lateral resolution and sensitivity to individual protein complexes by Fourier transform infrared nanospectroscopy (nano-FTIR). We present local broadband spectra of one virus, ferritin complexes, purple membranes and insulin aggregates, which can be interpreted in terms of their α-helical and/or β-sheet structure. Applying nano-FTIR for studying insulin fibrils—a model system widely used in neurodegenerative disease research—we find clear evidence that 3-nm-thin amyloid-like fibrils contain a large amount of α-helical structure. This reveals the surprisingly high level of protein organization in the fibril’s periphery, which might explain why fibrils associate. We envision a wide application potential of nano-FTIR, including cellular receptor in vitro mapping and analysis of proteins within quaternary structures.
机译:中红外光谱学是化学,生物学和生物化学中用于材料识别和二级结构分析的一种广泛使用的工具。然而,衍射极限阻止了纳米级蛋白质研究。在这里,我们介绍通过傅立叶变换红外纳米光谱仪(nano-FTIR)对蛋白质结构进行侧向分辨率为30 nm以及对单个蛋白质复合物的敏感性的作图。我们介绍了一种病毒,铁蛋白复合物,紫色膜和胰岛素聚集体的局部宽带光谱,可以根据其α-螺旋和/或β-折叠结构进行解释。将nano-FTIR应用于研究胰岛素原纤维(一种广泛用于神经退行性疾病研究的模型系统),我们发现明显的证据表明3nm薄的淀粉样蛋白样原纤维包含大量的α螺旋结构。这揭示了原纤维外围的蛋白质组织水平高得惊人,这可能解释了原纤维为何结合。我们设想纳米FTIR的广泛应用潜力,包括细胞受体的体外作图和四级结构内蛋白质的分析。

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