Understanding the key features of the spontaneous formation of bona fide prions through a novel methodology that enables their swift and consistent generation.

IF 6.2 2区 医学 Q1 NEUROSCIENCES
Hasier Eraña, Carlos M Díaz-Domínguez, Jorge M Charco, Enric Vidal, Ezequiel González-Miranda, Miguel A Pérez-Castro, Patricia Piñeiro, Rafael López-Moreno, Cristina Sampedro-Torres-Quevedo, Leire Fernández-Veiga, Juan Tasis-Galarza, Nuria L Lorenzo, Aileen Santini-Santiago, Melisa Lázaro, Sandra García-Martínez, Nuno Gonçalves-Anjo, Maitena San-Juan-Ansoleaga, Josu Galarza-Ahumada, Eva Fernández-Muñoz, Samanta Giler, Mikel Valle, Glenn C Telling, Mariví Geijó, Jesús R Requena, Joaquín Castilla
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引用次数: 1

Abstract

Among transmissible spongiform encephalopathies or prion diseases affecting humans, sporadic forms such as sporadic Creutzfeldt-Jakob disease are the vast majority. Unlike genetic or acquired forms of the disease, these idiopathic forms occur seemingly due to a random event of spontaneous misfolding of the cellular PrP (PrPC) into the pathogenic isoform (PrPSc). Currently, the molecular mechanisms that trigger and drive this event, which occurs in approximately one individual per million each year, remain completely unknown. Modelling this phenomenon in experimental settings is highly challenging due to its sporadic and rare occurrence. Previous attempts to model spontaneous prion misfolding in vitro have not been fully successful, as the spontaneous formation of prions is infrequent and stochastic, hindering the systematic study of the phenomenon. In this study, we present the first method that consistently induces spontaneous misfolding of recombinant PrP into bona fide prions within hours, providing unprecedented possibilities to investigate the mechanisms underlying sporadic prionopathies. By fine-tuning the Protein Misfolding Shaking Amplification method, which was initially developed to propagate recombinant prions, we have created a methodology that consistently produces spontaneously misfolded recombinant prions in 100% of the cases. Furthermore, this method gives rise to distinct strains and reveals the critical influence of charged surfaces in this process.

Abstract Image

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通过一种新颖的方法来理解真正朊病毒自发形成的关键特征,使其能够快速一致地产生。
在影响人类的传播性海绵状脑病或朊病毒疾病中,散发性克雅氏病等散发性疾病占绝大多数。与遗传或获得性疾病不同,这些特发性疾病的发生似乎是由于细胞PrP(PrPC)自发错误折叠为致病同种型(PrPSc)的随机事件。目前,触发和驱动这一事件的分子机制仍然完全未知,每年大约每百万人中就有一人发生这一事件。在实验环境中模拟这种现象是非常具有挑战性的,因为它是偶发和罕见的。先前在体外模拟自发朊病毒错误折叠的尝试并没有完全成功,因为朊病毒的自发形成是罕见和随机的,阻碍了对这一现象的系统研究。在这项研究中,我们提出了第一种在数小时内持续诱导重组PrP自发错误折叠为真正朊病毒的方法,为研究散发性朊病毒病的机制提供了前所未有的可能性。通过微调最初用于繁殖重组朊病毒的蛋白质折叠错误振荡扩增方法,我们创造了一种在100%的情况下持续产生自发错误折叠的重组朊病毒。此外,这种方法产生了不同的应变,并揭示了带电表面在这一过程中的关键影响。
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来源期刊
Acta Neuropathologica Communications
Acta Neuropathologica Communications Medicine-Pathology and Forensic Medicine
CiteScore
11.20
自引率
2.80%
发文量
162
审稿时长
8 weeks
期刊介绍: "Acta Neuropathologica Communications (ANC)" is a peer-reviewed journal that specializes in the rapid publication of research articles focused on the mechanisms underlying neurological diseases. The journal emphasizes the use of molecular, cellular, and morphological techniques applied to experimental or human tissues to investigate the pathogenesis of neurological disorders. ANC is committed to a fast-track publication process, aiming to publish accepted manuscripts within two months of submission. This expedited timeline is designed to ensure that the latest findings in neuroscience and pathology are disseminated quickly to the scientific community, fostering rapid advancements in the field of neurology and neuroscience. The journal's focus on cutting-edge research and its swift publication schedule make it a valuable resource for researchers, clinicians, and other professionals interested in the study and treatment of neurological conditions.
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