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加工对丝素蛋白中分子组装和结构构象的影响:通过固体核磁共振进行阐释

Processing Influence on Molecular Assembling and Structural Conformations in Silk Fibroin: Elucidation by Solid-State NMR.

作者信息

Callone Emanuela, Dirè Sandra, Hu Xiao, Motta Antonella

机构信息

Department of Physics & Astronomy, Biomedical & Translational Sciences, Biomedical Engineering, Rowan University, 201 Mullica Hill Road, Glassboro 08028, New Jersey, United States.

BIOtech Research Center, University of Trento, Via delle Regole 101, 38123 Mattarello, Trentino, Italy.

出版信息

ACS Biomater Sci Eng. 2016 May 9;2(5):758-767. doi: 10.1021/acsbiomaterials.5b00507. Epub 2016 Apr 14.

Abstract

This study is devoted to the deep evaluation of processing-induced protein conformation changes by using silk fibroin fibers and their cast films stabilized by different methods as a model. The control of the hierarchical assembling of silk fibroin is the key for finely tuning the biological functions and physical-chemical properties of the final materials for applications in biomedical fields. However, previous methods usually only focused on the change of beta-sheet crystallinity in silk materials, which can not explain a lot of their specific prosperities generated from different processing methods. By using complementary solid-state NMR, together with FTIR and DSC techniques, we for the first time established the correlations between processing conditions and silk fibroin molecular configurations, and experimentally assess the presence and quantify the percentage of the asymmetric 3-fold helical conformation (Silk III) in silk materials, together with their well-known Silk I-like helix/coil dominated and Silk II beta-sheet dominated configurations. This work provides a roadmap for researchers to quantify the percentage of different silk structures by solid NMR, and further understand how silk molecular conformations (Silk I-like, II, III) can impact the properties and functions of different silk materials, that are broadly used today for different biomedical applications.

摘要

本研究致力于以不同方法稳定化的丝素蛋白纤维及其流延膜为模型,对加工诱导的蛋白质构象变化进行深入评估。控制丝素蛋白的分级组装是精确调节最终材料的生物学功能和物理化学性质以用于生物医学领域应用的关键。然而,以往的方法通常只关注丝材料中β-折叠结晶度的变化,这无法解释许多由不同加工方法产生的特定特性。通过使用互补的固态核磁共振技术,结合傅里叶变换红外光谱和差示扫描量热技术,我们首次建立了加工条件与丝素蛋白分子构型之间的相关性,并通过实验评估了丝材料中不对称三股螺旋构象(丝III)的存在及量化其百分比,以及它们广为人知的类丝I螺旋/卷曲主导和丝IIβ-折叠主导构型。这项工作为研究人员提供了一条通过固体核磁共振量化不同丝结构百分比的路线图,并进一步理解丝分子构象(类丝I、II、III)如何影响当今广泛用于不同生物医学应用的不同丝材料的性质和功能。

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