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结构洞察和超稳定莫内林突变体的聚集倾向:用于基于蛋白质的纳米结构材料的新潜在构建块。

Structural insights and aggregation propensity of a super-stable monellin mutant: A new potential building block for protein-based nanostructured materials.

机构信息

Department of Chemical Sciences, University of Naples Federico II, Complesso Universitario di Monte Sant'Angelo, Via Cintia, 80126 Naples, Italy.

Department of Science and Technology, University of Sannio, Via de Sanctis, 82100 Benevento, Italy.

出版信息

Int J Biol Macromol. 2024 Jan;254(Pt 1):127775. doi: 10.1016/j.ijbiomac.2023.127775. Epub 2023 Oct 30.

Abstract

Protein fibrillation is commonly associated with pathologic amyloidosis. However, under appropriate conditions several proteins form fibrillar structures in vitro that can be used for biotechnological applications. MNEI and its variants, firstly designed as single chain derivatives of the sweet protein monellin, are also useful models for protein fibrillary aggregation studies. In this work, we have drawn attention to a protein dubbed Mut9, already characterized as a "super stable" MNEI variant. Comparative analysis of the respective X-ray structures revealed how the substitutions present in Mut9 eliminate several unfavorable interactions and stabilize the global structure. Molecular dynamic predictions confirmed the presence of a hydrogen-bonds network in Mut9 which increases its stability, especially at neutral pH. Thioflavin-T (ThT) binding assays and Fourier transform infrared (FTIR) spectroscopy indicated that the aggregation process occurs both at acidic and neutral pH, with and without addition of NaCl, even if with a different kinetics. Accordingly, Transmission Electron Microscopy (TEM) showed a fibrillar organization of the aggregates in all the tested conditions, albeit with some differences in the quantity and in the morphology of the fibrils. Our data underline the great potential of Mut9, which combines great stability in solution with the versatile conversion into nanostructured biomaterials.

摘要

蛋白质纤丝化通常与病理性淀粉样变性有关。然而,在适当的条件下,几种蛋白质在体外形成纤维状结构,可用于生物技术应用。MNEI 及其变体最初被设计为甜味蛋白莫内林的单链衍生物,也是用于研究蛋白质纤维聚集的有用模型。在这项工作中,我们注意到了一种名为 Mut9 的蛋白质,它已经被表征为“超级稳定”的 MNEI 变体。各自的 X 射线结构的比较分析揭示了 Mut9 中存在的取代如何消除了几个不利的相互作用并稳定了整体结构。分子动力学预测证实了 Mut9 中存在氢键网络,这增加了其稳定性,特别是在中性 pH 值下。噻唑蓝 (ThT) 结合测定和傅里叶变换红外 (FTIR) 光谱表明,在酸性和中性 pH 值下,无论是否添加 NaCl,均会发生聚集过程,尽管动力学有所不同。因此,透射电子显微镜 (TEM) 显示在所有测试条件下,聚集物均呈现纤维状组织,尽管在纤维的数量和形态上存在一些差异。我们的数据强调了 Mut9 的巨大潜力,它将溶液中的高稳定性与转化为纳米结构生物材料的多功能性结合在一起。

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