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Effects of sedimentation, microgravity, hydrodynamic mixing and air–water interface on α-synuclein amyloid formation

The formation of amyloid fibrils is a characterizing feature of a range of protein misfolding diseases, including Parkinson's disease. The propensity of native proteins to form such amyloid fibril, both in vitro and in vivo, is highly sensitive to the surrounding environment, which can alter th...

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Autores principales: Zhou, Jiangtao, Ruggeri, Francesco S., Zimmermann, Manuela R., Meisl, Georg, Longo, Giovanni, Sekatskii, Sergey K., Knowles, Tuomas P. J., Dietler, Giovanni
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8152616/
https://www.ncbi.nlm.nih.gov/pubmed/34094057
http://dx.doi.org/10.1039/d0sc00281j
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author Zhou, Jiangtao
Ruggeri, Francesco S.
Zimmermann, Manuela R.
Meisl, Georg
Longo, Giovanni
Sekatskii, Sergey K.
Knowles, Tuomas P. J.
Dietler, Giovanni
author_facet Zhou, Jiangtao
Ruggeri, Francesco S.
Zimmermann, Manuela R.
Meisl, Georg
Longo, Giovanni
Sekatskii, Sergey K.
Knowles, Tuomas P. J.
Dietler, Giovanni
author_sort Zhou, Jiangtao
collection PubMed
description The formation of amyloid fibrils is a characterizing feature of a range of protein misfolding diseases, including Parkinson's disease. The propensity of native proteins to form such amyloid fibril, both in vitro and in vivo, is highly sensitive to the surrounding environment, which can alter the aggregation kinetics and fibrillization mechanisms. Here, we investigate systematically the influence of several representative environmental stimuli on α-synuclein aggregation, including hydrodynamic mixing, the presence of an air–water interface and sedimentation. Our results show that hydrodynamic mixing and interfacial effects are critical in promoting several microscopic steps of α-synuclein aggregation and amyloid fibril formation. The presence of an air–water interface under agitation significantly promoted primary nucleation. Secondary processes were facilitated by hydrodynamic mixing, produced by 3D rotation and shaking either in the presence or in the absence of an air–water interface. Effects of sedimentation, as investigated in a microgravity incubator, of α-synuclein lead only to minor changes on the aggregation kinetics rates in comparison to static conditions. These results forward the understanding of α-synuclein fibrillization, paving the way for the development of high-throughput assays for the screening of pharmacological approaches targeting Parkinson's disease.
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spelling pubmed-81526162021-06-03 Effects of sedimentation, microgravity, hydrodynamic mixing and air–water interface on α-synuclein amyloid formation Zhou, Jiangtao Ruggeri, Francesco S. Zimmermann, Manuela R. Meisl, Georg Longo, Giovanni Sekatskii, Sergey K. Knowles, Tuomas P. J. Dietler, Giovanni Chem Sci Chemistry The formation of amyloid fibrils is a characterizing feature of a range of protein misfolding diseases, including Parkinson's disease. The propensity of native proteins to form such amyloid fibril, both in vitro and in vivo, is highly sensitive to the surrounding environment, which can alter the aggregation kinetics and fibrillization mechanisms. Here, we investigate systematically the influence of several representative environmental stimuli on α-synuclein aggregation, including hydrodynamic mixing, the presence of an air–water interface and sedimentation. Our results show that hydrodynamic mixing and interfacial effects are critical in promoting several microscopic steps of α-synuclein aggregation and amyloid fibril formation. The presence of an air–water interface under agitation significantly promoted primary nucleation. Secondary processes were facilitated by hydrodynamic mixing, produced by 3D rotation and shaking either in the presence or in the absence of an air–water interface. Effects of sedimentation, as investigated in a microgravity incubator, of α-synuclein lead only to minor changes on the aggregation kinetics rates in comparison to static conditions. These results forward the understanding of α-synuclein fibrillization, paving the way for the development of high-throughput assays for the screening of pharmacological approaches targeting Parkinson's disease. The Royal Society of Chemistry 2020-03-10 /pmc/articles/PMC8152616/ /pubmed/34094057 http://dx.doi.org/10.1039/d0sc00281j Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Zhou, Jiangtao
Ruggeri, Francesco S.
Zimmermann, Manuela R.
Meisl, Georg
Longo, Giovanni
Sekatskii, Sergey K.
Knowles, Tuomas P. J.
Dietler, Giovanni
Effects of sedimentation, microgravity, hydrodynamic mixing and air–water interface on α-synuclein amyloid formation
title Effects of sedimentation, microgravity, hydrodynamic mixing and air–water interface on α-synuclein amyloid formation
title_full Effects of sedimentation, microgravity, hydrodynamic mixing and air–water interface on α-synuclein amyloid formation
title_fullStr Effects of sedimentation, microgravity, hydrodynamic mixing and air–water interface on α-synuclein amyloid formation
title_full_unstemmed Effects of sedimentation, microgravity, hydrodynamic mixing and air–water interface on α-synuclein amyloid formation
title_short Effects of sedimentation, microgravity, hydrodynamic mixing and air–water interface on α-synuclein amyloid formation
title_sort effects of sedimentation, microgravity, hydrodynamic mixing and air–water interface on α-synuclein amyloid formation
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8152616/
https://www.ncbi.nlm.nih.gov/pubmed/34094057
http://dx.doi.org/10.1039/d0sc00281j
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