The epichaperome is a mediator of toxic hippocampal stress and leads to protein connectivity-based dysfunction

The biology of Alzheimer’s disease (AD) remains unknown. We propose AD is a protein connectivity-based dysfunction disorder whereby a switch of the chaperome into epichaperomes rewires proteome-wide connectivity, leading to brain circuitry malfunction that can be corrected by novel therapeutics.

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Autores principales: Maria Carmen Inda, Suhasini Joshi, Tai Wang, Alexander Bolaender, Srinivasa Gandu, John Koren III, Alicia Yue Che, Tony Taldone, Pengrong Yan, Weilin Sun, Mohammad Uddin, Palak Panchal, Matthew Riolo, Smit Shah, Afsar Barlas, Ke Xu, Lon Yin L. Chan, Alexandra Gruzinova, Sarah Kishinevsky, Lorenz Studer, Valentina Fossati, Scott A. Noggle, Julie R. White, Elisa de Stanchina, Sonia Sequeira, Kyle H. Anthoney, John W. Steele, Katia Manova-Todorova, Sujata Patil, Mark P. Dunphy, NagaVaraKishore Pillarsetty, Ana C. Pereira, Hediye Erdjument-Bromage, Thomas A. Neubert, Anna Rodina, Stephen D. Ginsberg, Natalia De Marco Garcia, Wenjie Luo, Gabriela Chiosis
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Lenguaje:EN
Publicado: Nature Portfolio 2020
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Acceso en línea:https://doaj.org/article/c776838301d2406eb50617b6e0cb86a1
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spelling oai:doaj.org-article:c776838301d2406eb50617b6e0cb86a12021-12-02T15:39:23ZThe epichaperome is a mediator of toxic hippocampal stress and leads to protein connectivity-based dysfunction10.1038/s41467-019-14082-52041-1723https://doaj.org/article/c776838301d2406eb50617b6e0cb86a12020-01-01T00:00:00Zhttps://doi.org/10.1038/s41467-019-14082-5https://doaj.org/toc/2041-1723The biology of Alzheimer’s disease (AD) remains unknown. We propose AD is a protein connectivity-based dysfunction disorder whereby a switch of the chaperome into epichaperomes rewires proteome-wide connectivity, leading to brain circuitry malfunction that can be corrected by novel therapeutics.Maria Carmen IndaSuhasini JoshiTai WangAlexander BolaenderSrinivasa GanduJohn Koren IIIAlicia Yue CheTony TaldonePengrong YanWeilin SunMohammad UddinPalak PanchalMatthew RioloSmit ShahAfsar BarlasKe XuLon Yin L. ChanAlexandra GruzinovaSarah KishinevskyLorenz StuderValentina FossatiScott A. NoggleJulie R. WhiteElisa de StanchinaSonia SequeiraKyle H. AnthoneyJohn W. SteeleKatia Manova-TodorovaSujata PatilMark P. DunphyNagaVaraKishore PillarsettyAna C. PereiraHediye Erdjument-BromageThomas A. NeubertAnna RodinaStephen D. GinsbergNatalia De Marco GarciaWenjie LuoGabriela ChiosisNature PortfolioarticleScienceQENNature Communications, Vol 11, Iss 1, Pp 1-19 (2020)
institution DOAJ
collection DOAJ
language EN
topic Science
Q
spellingShingle Science
Q
Maria Carmen Inda
Suhasini Joshi
Tai Wang
Alexander Bolaender
Srinivasa Gandu
John Koren III
Alicia Yue Che
Tony Taldone
Pengrong Yan
Weilin Sun
Mohammad Uddin
Palak Panchal
Matthew Riolo
Smit Shah
Afsar Barlas
Ke Xu
Lon Yin L. Chan
Alexandra Gruzinova
Sarah Kishinevsky
Lorenz Studer
Valentina Fossati
Scott A. Noggle
Julie R. White
Elisa de Stanchina
Sonia Sequeira
Kyle H. Anthoney
John W. Steele
Katia Manova-Todorova
Sujata Patil
Mark P. Dunphy
NagaVaraKishore Pillarsetty
Ana C. Pereira
Hediye Erdjument-Bromage
Thomas A. Neubert
Anna Rodina
Stephen D. Ginsberg
Natalia De Marco Garcia
Wenjie Luo
Gabriela Chiosis
The epichaperome is a mediator of toxic hippocampal stress and leads to protein connectivity-based dysfunction
description The biology of Alzheimer’s disease (AD) remains unknown. We propose AD is a protein connectivity-based dysfunction disorder whereby a switch of the chaperome into epichaperomes rewires proteome-wide connectivity, leading to brain circuitry malfunction that can be corrected by novel therapeutics.
format article
author Maria Carmen Inda
Suhasini Joshi
Tai Wang
Alexander Bolaender
Srinivasa Gandu
John Koren III
Alicia Yue Che
Tony Taldone
Pengrong Yan
Weilin Sun
Mohammad Uddin
Palak Panchal
Matthew Riolo
Smit Shah
Afsar Barlas
Ke Xu
Lon Yin L. Chan
Alexandra Gruzinova
Sarah Kishinevsky
Lorenz Studer
Valentina Fossati
Scott A. Noggle
Julie R. White
Elisa de Stanchina
Sonia Sequeira
Kyle H. Anthoney
John W. Steele
Katia Manova-Todorova
Sujata Patil
Mark P. Dunphy
NagaVaraKishore Pillarsetty
Ana C. Pereira
Hediye Erdjument-Bromage
Thomas A. Neubert
Anna Rodina
Stephen D. Ginsberg
Natalia De Marco Garcia
Wenjie Luo
Gabriela Chiosis
author_facet Maria Carmen Inda
Suhasini Joshi
Tai Wang
Alexander Bolaender
Srinivasa Gandu
John Koren III
Alicia Yue Che
Tony Taldone
Pengrong Yan
Weilin Sun
Mohammad Uddin
Palak Panchal
Matthew Riolo
Smit Shah
Afsar Barlas
Ke Xu
Lon Yin L. Chan
Alexandra Gruzinova
Sarah Kishinevsky
Lorenz Studer
Valentina Fossati
Scott A. Noggle
Julie R. White
Elisa de Stanchina
Sonia Sequeira
Kyle H. Anthoney
John W. Steele
Katia Manova-Todorova
Sujata Patil
Mark P. Dunphy
NagaVaraKishore Pillarsetty
Ana C. Pereira
Hediye Erdjument-Bromage
Thomas A. Neubert
Anna Rodina
Stephen D. Ginsberg
Natalia De Marco Garcia
Wenjie Luo
Gabriela Chiosis
author_sort Maria Carmen Inda
title The epichaperome is a mediator of toxic hippocampal stress and leads to protein connectivity-based dysfunction
title_short The epichaperome is a mediator of toxic hippocampal stress and leads to protein connectivity-based dysfunction
title_full The epichaperome is a mediator of toxic hippocampal stress and leads to protein connectivity-based dysfunction
title_fullStr The epichaperome is a mediator of toxic hippocampal stress and leads to protein connectivity-based dysfunction
title_full_unstemmed The epichaperome is a mediator of toxic hippocampal stress and leads to protein connectivity-based dysfunction
title_sort epichaperome is a mediator of toxic hippocampal stress and leads to protein connectivity-based dysfunction
publisher Nature Portfolio
publishDate 2020
url https://doaj.org/article/c776838301d2406eb50617b6e0cb86a1
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