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Potentially amyloidogenic conformational intermediates populate the unfolding landscape of transthyretin: Insights from molecular dynamics simulations

机译:潜在的淀粉样蛋白构象中间体构成运甲状腺素蛋白的发展前景:分子动力学模拟的见解

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摘要

Protein aggregation into insoluble fibrillar structures known as amyloid characterizes several neurodegenerative diseases, including Alzheimer's, Huntington's and Creutzfeldt-Jakob. Transthyretin (TTR), a homotetrameric plasma protein, is known to be the causative agent of amyloid pathologies such as FAP (familial amyloid polyneuropathy), FAC (familial amyloid cardiomiopathy) and SSA (senile systemic amyloidosis). It is generally accepted that TTR tetramer dissociation and monomer partial unfolding precedes amyloid fibril formation. To explore the TTR unfolding landscape and to identify potential intermediate conformations with high tendency for amyloid formation, we have performed molecular dynamics unfolding simulations of WT-TTR and L55P-TTR, a highly amyloidogenic TTR variant. Our simulations in explicit water allow the identification of events that clearly discriminate the unfolding behavior of WT and L55P-TTR. Analysis of the simulation trajectories show that (i) the L55P monomers unfold earlier and to a larger extent than the WT; (ii) the single α-helix in the TTR monomer completely unfolds in most of the L55P simulations while remain folded in WT simulations; (iii) L55P forms, early in the simulations, aggregation-prone conformations characterized by full displacement of strands C and D from the main β-sandwich core of the monomer; (iv) L55P shows, late in the simulations, severe loss of the H-bond network and consequent destabilization of the CBEF β-sheet of the β-sandwich; (v) WT forms aggregation-compatible conformations only late in the simulations and upon extensive unfolding of the monomer. These results clearly show that, in comparison with WT, L55P-TTR does present a much higher probability of forming transient conformations compatible with aggregation and amyloid formation.
机译:蛋白质聚集成不溶性纤维状结构(称为淀粉样蛋白)是几种神经退行性疾病的特征,包括阿尔茨海默氏症,亨廷顿氏症和克雅氏病。运甲状腺素蛋白(TTR)是一种同型四聚体血浆蛋白,已知是淀粉样蛋白病的病因,例如FAP(家族性淀粉样变性神经病),FAC(家族性淀粉样变性病)和SSA(老年性系统性淀粉样变性)。通常认为,TTR四聚体解离和单体部分解折叠先于淀粉样原纤维形成。为了探索TTR的展开态势并确定具有高度淀粉样形成趋势的潜在中间构象,我们进行了WT-TTR和L55P-TTR(高度淀粉样生成的TTR变异体)的分子动力学展开模拟。我们在显性水中的模拟可以识别事件,从而清楚地区分WT和L55P-TTR的展开行为。对模拟轨迹的分析表明:(i)L55P单体比WT提前展开且展开程度更大; (ii)在大多数L55P模拟中,TTR单体中的单个α螺旋完全展开,而在WT模拟中保持折叠; (iii)在模拟的早期,L55P形成易于聚集的构象,其特征是链C和D从单体的主要β夹心核心完全置换出来; (iv)L55P在模拟后期显示出H键网络的严重损失,从而导致β三明治的CBEFβ折叠不稳定。 (v)WT仅在模拟后期并且在单体广泛展开时形成聚集相容的构象。这些结果清楚地表明,与WT相比,L55P-TTR确实具有形成与聚集和淀粉样蛋白形成相容的瞬时构象的可能性更高。

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