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Live-cell super-resolution microscopy reveals a primary role for diffusion in polyglutamine-driven aggresome assembly

The mechanisms leading to self-assembly of misfolded proteins into amyloid aggregates have been studied extensively in the test tube under well-controlled conditions. However, to what extent these processes are representative of those in the cellular environment remains unclear. Using super-resoluti...

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Autores principales: Lu, Meng, Banetta, Luca, Young, Laurence J., Smith, Edward J., Bates, Gillian P., Zaccone, Alessio, Kaminski Schierle, Gabriele S., Tunnacliffe, Alan, Kaminski, Clemens F.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Biochemistry and Molecular Biology 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6322900/
https://www.ncbi.nlm.nih.gov/pubmed/30401748
http://dx.doi.org/10.1074/jbc.RA118.003500
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author Lu, Meng
Banetta, Luca
Young, Laurence J.
Smith, Edward J.
Bates, Gillian P.
Zaccone, Alessio
Kaminski Schierle, Gabriele S.
Tunnacliffe, Alan
Kaminski, Clemens F.
author_facet Lu, Meng
Banetta, Luca
Young, Laurence J.
Smith, Edward J.
Bates, Gillian P.
Zaccone, Alessio
Kaminski Schierle, Gabriele S.
Tunnacliffe, Alan
Kaminski, Clemens F.
author_sort Lu, Meng
collection PubMed
description The mechanisms leading to self-assembly of misfolded proteins into amyloid aggregates have been studied extensively in the test tube under well-controlled conditions. However, to what extent these processes are representative of those in the cellular environment remains unclear. Using super-resolution imaging of live cells, we show here that an amyloidogenic polyglutamine-containing protein first forms small, amorphous aggregate clusters in the cytosol, chiefly by diffusion. Dynamic interactions among these clusters limited their elongation and led to structures with a branched morphology, differing from the predominantly linear fibrils observed in vitro. Some of these clusters then assembled via active transport at the microtubule-organizing center and thereby initiated the formation of perinuclear aggresomes. Although it is widely believed that aggresome formation is entirely governed by active transport along microtubules, here we demonstrate, using a combined approach of advanced imaging and mathematical modeling, that diffusion is the principal mechanism driving aggresome expansion. We found that the increasing surface area of the expanding aggresome increases the rate of accretion caused by diffusion of cytosolic aggregates and that this pathway soon dominates aggresome assembly. Our findings lead to a different view of aggresome formation than that proposed previously. We also show that aggresomes mature over time, becoming more compacted as the structure grows. The presence of large perinuclear aggregates profoundly affects the behavior and health of the cell, and our super-resolution imaging results indicate that aggresome formation and development are governed by highly dynamic processes that could be important for the design of potential therapeutic strategies.
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spelling pubmed-63229002019-01-08 Live-cell super-resolution microscopy reveals a primary role for diffusion in polyglutamine-driven aggresome assembly Lu, Meng Banetta, Luca Young, Laurence J. Smith, Edward J. Bates, Gillian P. Zaccone, Alessio Kaminski Schierle, Gabriele S. Tunnacliffe, Alan Kaminski, Clemens F. J Biol Chem Molecular Biophysics The mechanisms leading to self-assembly of misfolded proteins into amyloid aggregates have been studied extensively in the test tube under well-controlled conditions. However, to what extent these processes are representative of those in the cellular environment remains unclear. Using super-resolution imaging of live cells, we show here that an amyloidogenic polyglutamine-containing protein first forms small, amorphous aggregate clusters in the cytosol, chiefly by diffusion. Dynamic interactions among these clusters limited their elongation and led to structures with a branched morphology, differing from the predominantly linear fibrils observed in vitro. Some of these clusters then assembled via active transport at the microtubule-organizing center and thereby initiated the formation of perinuclear aggresomes. Although it is widely believed that aggresome formation is entirely governed by active transport along microtubules, here we demonstrate, using a combined approach of advanced imaging and mathematical modeling, that diffusion is the principal mechanism driving aggresome expansion. We found that the increasing surface area of the expanding aggresome increases the rate of accretion caused by diffusion of cytosolic aggregates and that this pathway soon dominates aggresome assembly. Our findings lead to a different view of aggresome formation than that proposed previously. We also show that aggresomes mature over time, becoming more compacted as the structure grows. The presence of large perinuclear aggregates profoundly affects the behavior and health of the cell, and our super-resolution imaging results indicate that aggresome formation and development are governed by highly dynamic processes that could be important for the design of potential therapeutic strategies. American Society for Biochemistry and Molecular Biology 2019-01-04 2018-11-06 /pmc/articles/PMC6322900/ /pubmed/30401748 http://dx.doi.org/10.1074/jbc.RA118.003500 Text en © 2019 Lu et al. Author's Choice—Final version open access under the terms of the Creative Commons CC-BY license (http://creativecommons.org/licenses/by/4.0) .
spellingShingle Molecular Biophysics
Lu, Meng
Banetta, Luca
Young, Laurence J.
Smith, Edward J.
Bates, Gillian P.
Zaccone, Alessio
Kaminski Schierle, Gabriele S.
Tunnacliffe, Alan
Kaminski, Clemens F.
Live-cell super-resolution microscopy reveals a primary role for diffusion in polyglutamine-driven aggresome assembly
title Live-cell super-resolution microscopy reveals a primary role for diffusion in polyglutamine-driven aggresome assembly
title_full Live-cell super-resolution microscopy reveals a primary role for diffusion in polyglutamine-driven aggresome assembly
title_fullStr Live-cell super-resolution microscopy reveals a primary role for diffusion in polyglutamine-driven aggresome assembly
title_full_unstemmed Live-cell super-resolution microscopy reveals a primary role for diffusion in polyglutamine-driven aggresome assembly
title_short Live-cell super-resolution microscopy reveals a primary role for diffusion in polyglutamine-driven aggresome assembly
title_sort live-cell super-resolution microscopy reveals a primary role for diffusion in polyglutamine-driven aggresome assembly
topic Molecular Biophysics
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6322900/
https://www.ncbi.nlm.nih.gov/pubmed/30401748
http://dx.doi.org/10.1074/jbc.RA118.003500
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