In cell NMR reveals cells selectively amplify and structurally remodel amyloid fibrils

Shoyab Ansari, Dominique Lagasca, Rania Dumarieh, Yiling Xiao, Sakshi Krishna, Yang Li, Kendra K Frederick
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Abstract

Amyloid forms of α-synuclein adopt different conformations depending on environmental conditions. Advances in structural biology have accelerated fibril characterization. However, it remains unclear which conformations predominate in biological settings because current methods typically not only require isolating fibrils from their native environments, but they also do not provide insight about flexible regions. To address this, we characterized α-syn amyloid seeds and used sensitivity enhanced nuclear magnetic resonance to investigate the amyloid fibrils resulting from seeded amyloid propagation in different settings. We found that the amyloid fold and conformational preferences of flexible regions are faithfully propagated in vitro and in cellular lysates. However, seeded propagation of amyloids inside cells led to the minority conformation in the seeding population becoming predominant and more ordered, and altered the conformational preferences of flexible regions. The examination of the entire ensemble of protein conformations in biological settings that is made possible with this approach may advance our understanding of protein misfolding disorders and facilitate structure-based drug design efforts.
细胞内核磁共振显示细胞会选择性地放大淀粉样蛋白纤维并对其进行结构重塑
α-突触核蛋白的淀粉样形式会因环境条件的不同而呈现不同的构象。结构生物学的进步加速了纤维的表征。然而,目前仍不清楚在生物环境中哪种构象占主导地位,因为目前的方法通常不仅需要将纤维从其原生环境中分离出来,而且也无法深入了解柔性区域。为了解决这个问题,我们对α-syn淀粉样蛋白种子进行了表征,并利用灵敏度增强核磁共振研究了不同环境下淀粉样蛋白种子传播产生的淀粉样蛋白纤维。我们发现,淀粉样蛋白折叠和柔性区域的构象偏好在体外和细胞裂解液中都能忠实地传播。然而,淀粉样蛋白在细胞内的播种传播会导致播种群体中的少数构象变得占主导地位且更加有序,并改变柔性区域的构象偏好。利用这种方法可以对生物环境中蛋白质构象的整个组合进行检查,这可能会促进我们对蛋白质错误折叠疾病的了解,并有助于基于结构的药物设计工作。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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