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Serotonin regulates mitochondrial biogenesis and function in rodent cortical neurons via the 5-HT(2A) receptor and SIRT1–PGC-1α axis

Mitochondria in neurons, in addition to their primary role in bioenergetics, also contribute to specialized functions, including regulation of synaptic transmission, Ca(2+) homeostasis, neuronal excitability, and stress adaptation. However, the factors that influence mitochondrial biogenesis and fun...

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Autores principales: Fanibunda, Sashaina E., Deb, Sukrita, Maniyadath, Babukrishna, Tiwari, Praachi, Ghai, Utkarsha, Gupta, Samir, Figueiredo, Dwight, Weisstaub, Noelia, Gingrich, Jay A., Vaidya, Ashok D. B., Kolthur-Seetharam, Ullas, Vaidya, Vidita A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: National Academy of Sciences 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6561197/
https://www.ncbi.nlm.nih.gov/pubmed/31072928
http://dx.doi.org/10.1073/pnas.1821332116
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author Fanibunda, Sashaina E.
Deb, Sukrita
Maniyadath, Babukrishna
Tiwari, Praachi
Ghai, Utkarsha
Gupta, Samir
Figueiredo, Dwight
Weisstaub, Noelia
Gingrich, Jay A.
Vaidya, Ashok D. B.
Kolthur-Seetharam, Ullas
Vaidya, Vidita A.
author_facet Fanibunda, Sashaina E.
Deb, Sukrita
Maniyadath, Babukrishna
Tiwari, Praachi
Ghai, Utkarsha
Gupta, Samir
Figueiredo, Dwight
Weisstaub, Noelia
Gingrich, Jay A.
Vaidya, Ashok D. B.
Kolthur-Seetharam, Ullas
Vaidya, Vidita A.
author_sort Fanibunda, Sashaina E.
collection PubMed
description Mitochondria in neurons, in addition to their primary role in bioenergetics, also contribute to specialized functions, including regulation of synaptic transmission, Ca(2+) homeostasis, neuronal excitability, and stress adaptation. However, the factors that influence mitochondrial biogenesis and function in neurons remain poorly elucidated. Here, we identify an important role for serotonin (5-HT) as a regulator of mitochondrial biogenesis and function in rodent cortical neurons, via a 5-HT(2A) receptor-mediated recruitment of the SIRT1–PGC-1α axis, which is relevant to the neuroprotective action of 5-HT. We found that 5-HT increased mitochondrial biogenesis, reflected through enhanced mtDNA levels, mitotracker staining, and expression of mitochondrial components. This resulted in higher mitochondrial respiratory capacity, oxidative phosphorylation (OXPHOS) efficiency, and a consequential increase in cellular ATP levels. Mechanistically, the effects of 5-HT were mediated via the 5-HT(2A) receptor and master modulators of mitochondrial biogenesis, SIRT1 and PGC-1α. SIRT1 was required to mediate the effects of 5-HT on mitochondrial biogenesis and function in cortical neurons. In vivo studies revealed that 5-HT(2A) receptor stimulation increased cortical mtDNA and ATP levels in a SIRT1-dependent manner. Direct infusion of 5-HT into the neocortex and chemogenetic activation of 5-HT neurons also resulted in enhanced mitochondrial biogenesis and function in vivo. In cortical neurons, 5-HT enhanced expression of antioxidant enzymes, decreased cellular reactive oxygen species, and exhibited neuroprotection against excitotoxic and oxidative stress, an effect that required SIRT1. These findings identify 5-HT as an upstream regulator of mitochondrial biogenesis and function in cortical neurons and implicate the mitochondrial effects of 5-HT in its neuroprotective action.
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spelling pubmed-65611972019-06-17 Serotonin regulates mitochondrial biogenesis and function in rodent cortical neurons via the 5-HT(2A) receptor and SIRT1–PGC-1α axis Fanibunda, Sashaina E. Deb, Sukrita Maniyadath, Babukrishna Tiwari, Praachi Ghai, Utkarsha Gupta, Samir Figueiredo, Dwight Weisstaub, Noelia Gingrich, Jay A. Vaidya, Ashok D. B. Kolthur-Seetharam, Ullas Vaidya, Vidita A. Proc Natl Acad Sci U S A PNAS Plus Mitochondria in neurons, in addition to their primary role in bioenergetics, also contribute to specialized functions, including regulation of synaptic transmission, Ca(2+) homeostasis, neuronal excitability, and stress adaptation. However, the factors that influence mitochondrial biogenesis and function in neurons remain poorly elucidated. Here, we identify an important role for serotonin (5-HT) as a regulator of mitochondrial biogenesis and function in rodent cortical neurons, via a 5-HT(2A) receptor-mediated recruitment of the SIRT1–PGC-1α axis, which is relevant to the neuroprotective action of 5-HT. We found that 5-HT increased mitochondrial biogenesis, reflected through enhanced mtDNA levels, mitotracker staining, and expression of mitochondrial components. This resulted in higher mitochondrial respiratory capacity, oxidative phosphorylation (OXPHOS) efficiency, and a consequential increase in cellular ATP levels. Mechanistically, the effects of 5-HT were mediated via the 5-HT(2A) receptor and master modulators of mitochondrial biogenesis, SIRT1 and PGC-1α. SIRT1 was required to mediate the effects of 5-HT on mitochondrial biogenesis and function in cortical neurons. In vivo studies revealed that 5-HT(2A) receptor stimulation increased cortical mtDNA and ATP levels in a SIRT1-dependent manner. Direct infusion of 5-HT into the neocortex and chemogenetic activation of 5-HT neurons also resulted in enhanced mitochondrial biogenesis and function in vivo. In cortical neurons, 5-HT enhanced expression of antioxidant enzymes, decreased cellular reactive oxygen species, and exhibited neuroprotection against excitotoxic and oxidative stress, an effect that required SIRT1. These findings identify 5-HT as an upstream regulator of mitochondrial biogenesis and function in cortical neurons and implicate the mitochondrial effects of 5-HT in its neuroprotective action. National Academy of Sciences 2019-05-28 2019-05-09 /pmc/articles/PMC6561197/ /pubmed/31072928 http://dx.doi.org/10.1073/pnas.1821332116 Text en Copyright © 2019 the Author(s). Published by PNAS. https://creativecommons.org/licenses/by-nc-nd/4.0/ https://creativecommons.org/licenses/by-nc-nd/4.0/This open access article is distributed under Creative Commons Attribution-NonCommercial-NoDerivatives License 4.0 (CC BY-NC-ND) (https://creativecommons.org/licenses/by-nc-nd/4.0/) .
spellingShingle PNAS Plus
Fanibunda, Sashaina E.
Deb, Sukrita
Maniyadath, Babukrishna
Tiwari, Praachi
Ghai, Utkarsha
Gupta, Samir
Figueiredo, Dwight
Weisstaub, Noelia
Gingrich, Jay A.
Vaidya, Ashok D. B.
Kolthur-Seetharam, Ullas
Vaidya, Vidita A.
Serotonin regulates mitochondrial biogenesis and function in rodent cortical neurons via the 5-HT(2A) receptor and SIRT1–PGC-1α axis
title Serotonin regulates mitochondrial biogenesis and function in rodent cortical neurons via the 5-HT(2A) receptor and SIRT1–PGC-1α axis
title_full Serotonin regulates mitochondrial biogenesis and function in rodent cortical neurons via the 5-HT(2A) receptor and SIRT1–PGC-1α axis
title_fullStr Serotonin regulates mitochondrial biogenesis and function in rodent cortical neurons via the 5-HT(2A) receptor and SIRT1–PGC-1α axis
title_full_unstemmed Serotonin regulates mitochondrial biogenesis and function in rodent cortical neurons via the 5-HT(2A) receptor and SIRT1–PGC-1α axis
title_short Serotonin regulates mitochondrial biogenesis and function in rodent cortical neurons via the 5-HT(2A) receptor and SIRT1–PGC-1α axis
title_sort serotonin regulates mitochondrial biogenesis and function in rodent cortical neurons via the 5-ht(2a) receptor and sirt1–pgc-1α axis
topic PNAS Plus
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6561197/
https://www.ncbi.nlm.nih.gov/pubmed/31072928
http://dx.doi.org/10.1073/pnas.1821332116
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