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Protein misfolding in Dictyostelium: Using a freak of nature to gain insight into a universal problem

机译:Dictyostelium中的蛋白质错误折叠:利用自然界的怪胎来洞察普遍的问题

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摘要

Prion-like proteins can undergo conformational rearrangements from an intrinsically disordered to a highly ordered amyloid state. This ability to change conformation is encoded in distinctive domains, termed prion domains (PrDs). Previous work suggests that PrDs change conformation to affect protein function and create phenotypic diversity. More recent work shows that PrDs can also undergo many weak interactions when disordered, allowing them to organize the intracellular space into dynamic compartments. However, mutations within PrDs and altered aggregation properties have also been linked to age-related diseases in humans. Thus, the physiological role of prion-like proteins, the mechanisms regulating their conformational promiscuity and the links to disease are still unclear. Here, we summarize recent work with prion-like proteins in Dictyostelium discoideum. This work was motivated by the finding that D. discoideum has the highest content of prion-like proteins of all organisms investigated to date. Surprisingly, we find that endogenous and exogenous prion-like proteins remain soluble in D. discoideum and do not misfold and aggregate. We provide evidence that this is due to specific adaptations in the protein quality control machinery, which may allow D. discoideum to tolerate its highly aggregation-prone proteome. We predict that D. discoideum will be an important model to study the function of prion-like proteins and their mechanistic links to disease.
机译:on病毒样蛋白可经历从内在无序到高度有序的淀粉样蛋白状态的构象重排。这种改变构象的能力被编码在称为domain病毒域(PrDs)的独特域中。先前的工作表明PrDs改变构象以影响蛋白质功能并产生表型多样性。最近的工作表明,PrDs在发生混乱时也可能会发生许多弱相互作用,从而使它们能够将细胞内空间组织成动态的间隔。然而,PrDs内的突变和聚集特性的改变也与人类与年龄相关的疾病有关。因此,of病毒样蛋白的生理作用,调节其构象混杂的机制以及与疾病的联系仍不清楚。在这里,我们总结了盘基网柄菌中病毒样蛋白的最新研究。这项工作的动机是发现迪斯科球菌在迄今为止调查的所有生物中具有最高的病毒样蛋白含量。令人惊讶地,我们发现内源性和外源性病毒样蛋白仍可溶于D. discoideum,并且不会错误折叠和聚集。我们提供的证据表明,这是由于蛋白质质量控​​制机制的特定适应,这可能使D. discoideum能够耐受其高度聚集的蛋白质组。我们预测,D。discoideum将成为研究of病毒样蛋白的功能及其与疾病的机制联系的重要模型。

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