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溶菌酶自组装的多长度尺度结构研究。

Multi-length scale structural investigation of lysozyme self-assembly.

作者信息

Catalini Sara, Lutz-Bueno Viviane, Usuelli Mattia, Diener Michael, Taschin Andrea, Bartolini Paolo, Foggi Paolo, Paolantoni Marco, Mezzenga Raffaele, Torre Renato

机构信息

Dipartimento di Fisica e Geologia, Università di Perugia, Via Alessandro Pascoli, 06123 Perugia, Italy.

European Laboratory for Non-Linear Spectroscopy, Università di Firenze, Via Nello Carrara 1, 50019 Sesto Fiorentino, Italy.

出版信息

iScience. 2022 Jun 10;25(7):104586. doi: 10.1016/j.isci.2022.104586. eCollection 2022 Jul 15.

Abstract

Reactive amyloid oligomers are responsible for cytotoxicity in amyloid pathologies and because of their unstable nature characterizing their behavior is a challenge. The physics governing the self-assembly of proteins in crowded conditions is extremely complex and its comprehension, despite its paramount relevance to understanding molecular mechanisms inside cells and optimizing pharmaceutical processes, remains inconclusive. Here, we focus on the amyloid oligomerization process in self-crowded lysozyme aqueous solutions in acidic conditions. We reveal that the amyloid oligomers form at high protein concentration and low pH. Through multi-length scale spectroscopic investigations, we find that amyloid oligomers can further interconnect with each other by weak and non-specific interactions forming an extended network that leads to the percolation of the whole system. Our multi-length scale structural analysis follows the thermal history of amyloid oligomers from different perspectives and highlights the impact of hierarchical self-assembly of biological macromolecules on functional properties.

摘要

反应性淀粉样寡聚体是淀粉样病变中细胞毒性的原因,由于其性质不稳定,表征其行为具有挑战性。在拥挤条件下控制蛋白质自组装的物理学极其复杂,尽管其对于理解细胞内分子机制和优化制药过程至关重要,但其理解仍无定论。在此,我们聚焦于酸性条件下自拥挤溶菌酶水溶液中的淀粉样寡聚化过程。我们发现淀粉样寡聚体在高蛋白浓度和低pH值下形成。通过多长度尺度光谱研究,我们发现淀粉样寡聚体可通过弱的非特异性相互作用进一步相互连接,形成一个扩展网络,导致整个系统的渗滤。我们的多长度尺度结构分析从不同角度追踪淀粉样寡聚体的热历史,并突出了生物大分子分级自组装对功能特性的影响。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c2c0/9240868/3cc35e9d67e2/fx1.jpg

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