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Longitudinal modeling of human neuronal aging identifies RCAN1-TFEB pathway contributing to neurodegeneration of Huntington’s disease

Aging is a common risk factor in neurodegenerative disorders and the ability to investigate aging of neurons in an isogenic background would facilitate discovering the interplay between neuronal aging and onset of neurodegeneration. Here, we perform direct neuronal reprogramming of longitudinally co...

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Autores principales: Lee, Seong Won, Oh, Young Mi, Victor, Matheus B., Strunilin, Ilya, Chen, Shawei, Dahiya, Sonika, Dolle, Roland E., Pak, Stephen C., Silverman, Gary A., Perlmutter, David H., Yoo, Andrew S.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Journal Experts 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10197783/
https://www.ncbi.nlm.nih.gov/pubmed/37214956
http://dx.doi.org/10.21203/rs.3.rs-2815300/v1
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author Lee, Seong Won
Oh, Young Mi
Victor, Matheus B.
Strunilin, Ilya
Chen, Shawei
Dahiya, Sonika
Dolle, Roland E.
Pak, Stephen C.
Silverman, Gary A.
Perlmutter, David H.
Yoo, Andrew S.
author_facet Lee, Seong Won
Oh, Young Mi
Victor, Matheus B.
Strunilin, Ilya
Chen, Shawei
Dahiya, Sonika
Dolle, Roland E.
Pak, Stephen C.
Silverman, Gary A.
Perlmutter, David H.
Yoo, Andrew S.
author_sort Lee, Seong Won
collection PubMed
description Aging is a common risk factor in neurodegenerative disorders and the ability to investigate aging of neurons in an isogenic background would facilitate discovering the interplay between neuronal aging and onset of neurodegeneration. Here, we perform direct neuronal reprogramming of longitudinally collected human fibroblasts to reveal genetic pathways altered at different ages. Comparative transcriptome analysis of longitudinally aged striatal medium spiny neurons (MSNs), a primary neuronal subtype affected in Huntington’s disease (HD), identified pathways associated with RCAN1, a negative regulator of calcineurin. Notably, RCAN1 undergoes age-dependent increase at the protein level detected in reprogrammed MSNs as well as in human postmortem striatum. In patient-derived MSNs of adult-onset HD (HD-MSNs), counteracting RCAN1 by gene knockdown (KD) rescued HD-MSNs from degeneration. The protective effect of RCAN1 KD was associated with enhanced chromatin accessibility of genes involved in longevity and autophagy, mediated through enhanced calcineurin activity, which in turn dephosphorylates and promotes nuclear localization of TFEB transcription factor. Furthermore, we reveal that G2-115 compound, an analog of glibenclamide with autophagy-enhancing activities, reduces the RCAN1-Calcineurin interaction, phenocopying the effect of RCAN1 KD. Our results demonstrate that RCAN1 is a potential genetic or pharmacological target whose reduction-of-function increases neuronal resilience to neurodegeneration in HD through chromatin reconfiguration.
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spelling pubmed-101977832023-05-20 Longitudinal modeling of human neuronal aging identifies RCAN1-TFEB pathway contributing to neurodegeneration of Huntington’s disease Lee, Seong Won Oh, Young Mi Victor, Matheus B. Strunilin, Ilya Chen, Shawei Dahiya, Sonika Dolle, Roland E. Pak, Stephen C. Silverman, Gary A. Perlmutter, David H. Yoo, Andrew S. Res Sq Article Aging is a common risk factor in neurodegenerative disorders and the ability to investigate aging of neurons in an isogenic background would facilitate discovering the interplay between neuronal aging and onset of neurodegeneration. Here, we perform direct neuronal reprogramming of longitudinally collected human fibroblasts to reveal genetic pathways altered at different ages. Comparative transcriptome analysis of longitudinally aged striatal medium spiny neurons (MSNs), a primary neuronal subtype affected in Huntington’s disease (HD), identified pathways associated with RCAN1, a negative regulator of calcineurin. Notably, RCAN1 undergoes age-dependent increase at the protein level detected in reprogrammed MSNs as well as in human postmortem striatum. In patient-derived MSNs of adult-onset HD (HD-MSNs), counteracting RCAN1 by gene knockdown (KD) rescued HD-MSNs from degeneration. The protective effect of RCAN1 KD was associated with enhanced chromatin accessibility of genes involved in longevity and autophagy, mediated through enhanced calcineurin activity, which in turn dephosphorylates and promotes nuclear localization of TFEB transcription factor. Furthermore, we reveal that G2-115 compound, an analog of glibenclamide with autophagy-enhancing activities, reduces the RCAN1-Calcineurin interaction, phenocopying the effect of RCAN1 KD. Our results demonstrate that RCAN1 is a potential genetic or pharmacological target whose reduction-of-function increases neuronal resilience to neurodegeneration in HD through chromatin reconfiguration. American Journal Experts 2023-05-09 /pmc/articles/PMC10197783/ /pubmed/37214956 http://dx.doi.org/10.21203/rs.3.rs-2815300/v1 Text en https://creativecommons.org/licenses/by/4.0/This work is licensed under a Creative Commons Attribution 4.0 International License (https://creativecommons.org/licenses/by/4.0/) , which allows reusers to distribute, remix, adapt, and build upon the material in any medium or format, so long as attribution is given to the creator. The license allows for commercial use.
spellingShingle Article
Lee, Seong Won
Oh, Young Mi
Victor, Matheus B.
Strunilin, Ilya
Chen, Shawei
Dahiya, Sonika
Dolle, Roland E.
Pak, Stephen C.
Silverman, Gary A.
Perlmutter, David H.
Yoo, Andrew S.
Longitudinal modeling of human neuronal aging identifies RCAN1-TFEB pathway contributing to neurodegeneration of Huntington’s disease
title Longitudinal modeling of human neuronal aging identifies RCAN1-TFEB pathway contributing to neurodegeneration of Huntington’s disease
title_full Longitudinal modeling of human neuronal aging identifies RCAN1-TFEB pathway contributing to neurodegeneration of Huntington’s disease
title_fullStr Longitudinal modeling of human neuronal aging identifies RCAN1-TFEB pathway contributing to neurodegeneration of Huntington’s disease
title_full_unstemmed Longitudinal modeling of human neuronal aging identifies RCAN1-TFEB pathway contributing to neurodegeneration of Huntington’s disease
title_short Longitudinal modeling of human neuronal aging identifies RCAN1-TFEB pathway contributing to neurodegeneration of Huntington’s disease
title_sort longitudinal modeling of human neuronal aging identifies rcan1-tfeb pathway contributing to neurodegeneration of huntington’s disease
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10197783/
https://www.ncbi.nlm.nih.gov/pubmed/37214956
http://dx.doi.org/10.21203/rs.3.rs-2815300/v1
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