Institute of Chemistry, University of Graz, Heinrichstr. 28, 8010 Graz, Austria.
Otto Loewi Research Center for Vascular Biology, Immunology and Inflammation, Institute of Pathophysiology and Immunology, Medical University of Graz, Heinrichstr, 31, 8010 Graz, Austria.
J Mol Biol. 2019 Jun 28;431(14):2581-2598. doi: 10.1016/j.jmb.2019.04.031. Epub 2019 Apr 26.
The recent discovery of biologically active fully disordered, so called random fuzzy protein-protein interactions leads to the question of how the high flexibility of these protein complexes correlates to aggregation and pathologic misfolding. We identify the structural mechanism by which a random fuzzy protein complex composed of the intrinsically disordered proteins alpha-Synuclein and SERF1a is able to potentiate cytotoxic aggregation. A structural model derived from an integrated NMR/SAXS analysis of the reconstituted aSyn:SERF1a complex enabled us to observe the partial deprotection of one precise aSyn amyloid nucleation element in the fully unstructured ensemble. This minimal exposure was sufficient to increase the amyloidogenic tendency of SERF1a-bound aSyn. Our findings provide a structural explanation of the previously observed pro-amyloid activity of SERF1a. They further demonstrate that random fuzziness can trigger a structurally organized disease-associated reaction such as amyloid polymerization.
最近发现具有生物活性的完全无序的、所谓的随机模糊蛋白-蛋白相互作用,这引发了一个问题,即这些蛋白复合物的高灵活性如何与聚集和病理性错误折叠相关。我们确定了一种结构机制,即由内在无序蛋白α-突触核蛋白和 SERF1a 组成的随机模糊蛋白复合物能够增强细胞毒性聚集。通过对重新构建的 aSyn:SERF1a 复合物进行 NMR/SAXS 分析的综合分析,我们得出了一个结构模型,使我们能够观察到在完全无结构的整体中,一个精确的 aSyn 淀粉样纤维核形成元件的部分去保护。这种最小的暴露足以增加 SERF1a 结合的 aSyn 的淀粉样倾向。我们的发现为之前观察到的 SERF1a 的促淀粉样活性提供了结构解释。它们进一步表明,随机模糊性可以引发与疾病相关的反应,如淀粉样聚合,这种反应具有结构组织。