Cargando…

ATP modulates self-perpetuating conformational conversion generating structurally distinct yeast prion amyloids that limit autocatalytic amplification

Prion-like self-perpetuating conformational conversion of proteins into amyloid aggregates is associated with both transmissible neurodegenerative diseases and non-Mendelian inheritance. The cellular energy currency ATP is known to indirectly regulate the formation, dissolution, or transmission of a...

Descripción completa

Detalles Bibliográficos
Autores principales: Mahapatra, Sayanta, Sarbahi, Anusha, Punia, Neha, Joshi, Ashish, Avni, Anamika, Walimbe, Anuja, Mukhopadhyay, Samrat
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Biochemistry and Molecular Biology 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10149227/
https://www.ncbi.nlm.nih.gov/pubmed/36990219
http://dx.doi.org/10.1016/j.jbc.2023.104654
_version_ 1785035123775766528
author Mahapatra, Sayanta
Sarbahi, Anusha
Punia, Neha
Joshi, Ashish
Avni, Anamika
Walimbe, Anuja
Mukhopadhyay, Samrat
author_facet Mahapatra, Sayanta
Sarbahi, Anusha
Punia, Neha
Joshi, Ashish
Avni, Anamika
Walimbe, Anuja
Mukhopadhyay, Samrat
author_sort Mahapatra, Sayanta
collection PubMed
description Prion-like self-perpetuating conformational conversion of proteins into amyloid aggregates is associated with both transmissible neurodegenerative diseases and non-Mendelian inheritance. The cellular energy currency ATP is known to indirectly regulate the formation, dissolution, or transmission of amyloid-like aggregates by providing energy to the molecular chaperones that maintain protein homeostasis. In this work, we demonstrate that ATP molecules, independent of any chaperones, modulate the formation and dissolution of amyloids from a yeast prion domain (NM domain of Saccharomyces cerevisiae Sup35) and restricts autocatalytic amplification by controlling the amount of fragmentable and seeding-competent aggregates. ATP, at (high) physiological concentrations in the presence of Mg(2+), kinetically accelerates NM aggregation. Interestingly, ATP also promotes phase separation–mediated aggregation of a human protein harboring a yeast prion-like domain. We also show that ATP disaggregates preformed NM fibrils in a dose-independent manner. Our results indicate that ATP-mediated disaggregation, unlike the disaggregation by the disaggregase Hsp104, yields no oligomers that are considered one of the critical species for amyloid transmission. Furthermore, high concentrations of ATP delimited the number of seeds by giving rise to compact ATP-bound NM fibrils that exhibited nominal fragmentation by either free ATP or Hsp104 disaggregase to generate lower molecular weight amyloids. In addition, (low) pathologically relevant ATP concentrations restricted autocatalytic amplification by forming structurally distinct amyloids that are found seeding inefficient because of their reduced β-content. Our results provide key mechanistic underpinnings of concentration-dependent chemical chaperoning by ATP against prion-like transmissions of amyloids.
format Online
Article
Text
id pubmed-10149227
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher American Society for Biochemistry and Molecular Biology
record_format MEDLINE/PubMed
spelling pubmed-101492272023-05-01 ATP modulates self-perpetuating conformational conversion generating structurally distinct yeast prion amyloids that limit autocatalytic amplification Mahapatra, Sayanta Sarbahi, Anusha Punia, Neha Joshi, Ashish Avni, Anamika Walimbe, Anuja Mukhopadhyay, Samrat J Biol Chem Research Article Prion-like self-perpetuating conformational conversion of proteins into amyloid aggregates is associated with both transmissible neurodegenerative diseases and non-Mendelian inheritance. The cellular energy currency ATP is known to indirectly regulate the formation, dissolution, or transmission of amyloid-like aggregates by providing energy to the molecular chaperones that maintain protein homeostasis. In this work, we demonstrate that ATP molecules, independent of any chaperones, modulate the formation and dissolution of amyloids from a yeast prion domain (NM domain of Saccharomyces cerevisiae Sup35) and restricts autocatalytic amplification by controlling the amount of fragmentable and seeding-competent aggregates. ATP, at (high) physiological concentrations in the presence of Mg(2+), kinetically accelerates NM aggregation. Interestingly, ATP also promotes phase separation–mediated aggregation of a human protein harboring a yeast prion-like domain. We also show that ATP disaggregates preformed NM fibrils in a dose-independent manner. Our results indicate that ATP-mediated disaggregation, unlike the disaggregation by the disaggregase Hsp104, yields no oligomers that are considered one of the critical species for amyloid transmission. Furthermore, high concentrations of ATP delimited the number of seeds by giving rise to compact ATP-bound NM fibrils that exhibited nominal fragmentation by either free ATP or Hsp104 disaggregase to generate lower molecular weight amyloids. In addition, (low) pathologically relevant ATP concentrations restricted autocatalytic amplification by forming structurally distinct amyloids that are found seeding inefficient because of their reduced β-content. Our results provide key mechanistic underpinnings of concentration-dependent chemical chaperoning by ATP against prion-like transmissions of amyloids. American Society for Biochemistry and Molecular Biology 2023-03-28 /pmc/articles/PMC10149227/ /pubmed/36990219 http://dx.doi.org/10.1016/j.jbc.2023.104654 Text en © 2023 The Authors https://creativecommons.org/licenses/by/4.0/This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Research Article
Mahapatra, Sayanta
Sarbahi, Anusha
Punia, Neha
Joshi, Ashish
Avni, Anamika
Walimbe, Anuja
Mukhopadhyay, Samrat
ATP modulates self-perpetuating conformational conversion generating structurally distinct yeast prion amyloids that limit autocatalytic amplification
title ATP modulates self-perpetuating conformational conversion generating structurally distinct yeast prion amyloids that limit autocatalytic amplification
title_full ATP modulates self-perpetuating conformational conversion generating structurally distinct yeast prion amyloids that limit autocatalytic amplification
title_fullStr ATP modulates self-perpetuating conformational conversion generating structurally distinct yeast prion amyloids that limit autocatalytic amplification
title_full_unstemmed ATP modulates self-perpetuating conformational conversion generating structurally distinct yeast prion amyloids that limit autocatalytic amplification
title_short ATP modulates self-perpetuating conformational conversion generating structurally distinct yeast prion amyloids that limit autocatalytic amplification
title_sort atp modulates self-perpetuating conformational conversion generating structurally distinct yeast prion amyloids that limit autocatalytic amplification
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10149227/
https://www.ncbi.nlm.nih.gov/pubmed/36990219
http://dx.doi.org/10.1016/j.jbc.2023.104654
work_keys_str_mv AT mahapatrasayanta atpmodulatesselfperpetuatingconformationalconversiongeneratingstructurallydistinctyeastprionamyloidsthatlimitautocatalyticamplification
AT sarbahianusha atpmodulatesselfperpetuatingconformationalconversiongeneratingstructurallydistinctyeastprionamyloidsthatlimitautocatalyticamplification
AT punianeha atpmodulatesselfperpetuatingconformationalconversiongeneratingstructurallydistinctyeastprionamyloidsthatlimitautocatalyticamplification
AT joshiashish atpmodulatesselfperpetuatingconformationalconversiongeneratingstructurallydistinctyeastprionamyloidsthatlimitautocatalyticamplification
AT avnianamika atpmodulatesselfperpetuatingconformationalconversiongeneratingstructurallydistinctyeastprionamyloidsthatlimitautocatalyticamplification
AT walimbeanuja atpmodulatesselfperpetuatingconformationalconversiongeneratingstructurallydistinctyeastprionamyloidsthatlimitautocatalyticamplification
AT mukhopadhyaysamrat atpmodulatesselfperpetuatingconformationalconversiongeneratingstructurallydistinctyeastprionamyloidsthatlimitautocatalyticamplification