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Histone H3 serotonylation dynamics in dorsal raphe nucleus contribute to stress- and antidepressant-mediated gene expression and behavior

BACKGROUND: Major depressive disorder (MDD), along with related mood disorders, is a debilitating illness that affects millions of individuals worldwide. While chronic stress increases incidence levels of mood disorders, stress-mediated disruptions in brain function that precipitate these illnesses...

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Autores principales: Al-Kachak, Amni, Fulton, Sasha L., Di Salvo, Giuseppina, Chan, Jennifer C, Farrelly, Lorna A., Lepack, Ashley E., Bastle, Ryan M., Kong, Lingchun, Cathomas, Flurin, Newman, Emily L., Menard, Caroline, Ramakrishnan, Aarthi, Safovich, Polina, Lyu, Yang, Covington, Herbert E., Shen, Li, Gleason, Kelly, Tamminga, Carol A., Russo, Scott J., Maze, Ian
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Cold Spring Harbor Laboratory 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10187276/
https://www.ncbi.nlm.nih.gov/pubmed/37205414
http://dx.doi.org/10.1101/2023.05.04.539464
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author Al-Kachak, Amni
Fulton, Sasha L.
Di Salvo, Giuseppina
Chan, Jennifer C
Farrelly, Lorna A.
Lepack, Ashley E.
Bastle, Ryan M.
Kong, Lingchun
Cathomas, Flurin
Newman, Emily L.
Menard, Caroline
Ramakrishnan, Aarthi
Safovich, Polina
Lyu, Yang
Covington, Herbert E.
Shen, Li
Gleason, Kelly
Tamminga, Carol A.
Russo, Scott J.
Maze, Ian
author_facet Al-Kachak, Amni
Fulton, Sasha L.
Di Salvo, Giuseppina
Chan, Jennifer C
Farrelly, Lorna A.
Lepack, Ashley E.
Bastle, Ryan M.
Kong, Lingchun
Cathomas, Flurin
Newman, Emily L.
Menard, Caroline
Ramakrishnan, Aarthi
Safovich, Polina
Lyu, Yang
Covington, Herbert E.
Shen, Li
Gleason, Kelly
Tamminga, Carol A.
Russo, Scott J.
Maze, Ian
author_sort Al-Kachak, Amni
collection PubMed
description BACKGROUND: Major depressive disorder (MDD), along with related mood disorders, is a debilitating illness that affects millions of individuals worldwide. While chronic stress increases incidence levels of mood disorders, stress-mediated disruptions in brain function that precipitate these illnesses remain elusive. Serotonin-associated antidepressants (ADs) remain the first line of therapy for many with depressive symptoms, yet low remission rates and delays between treatment and symptomatic alleviation have prompted skepticism regarding precise roles for serotonin in the precipitation of mood disorders. Our group recently demonstrated that serotonin epigenetically modifies histone proteins (H3K4me3Q5ser) to regulate transcriptional permissiveness in brain. However, this phenomenon has not yet been explored following stress and/or AD exposures. METHODS: We employed a combination of genome-wide and biochemical analyses in dorsal raphe nucleus (DRN) of male and female mice exposed to chronic social defeat stress to examine the impact of stress exposures on H3K4me3Q5ser dynamics, as well as associations between the mark and stress-induced gene expression. We additionally assessed stress-induced regulation of H3K4me3Q5ser following AD exposures, and employed viral-mediated gene therapy to reduce H3K4me3Q5ser levels in DRN and examine the impact on stress-associated gene expression and behavior. RESULTS: We found that H3K4me3Q5ser plays important roles in stress-mediated transcriptional plasticity. Chronically stressed mice displayed dysregulated H3K4me3Q5ser dynamics in DRN, with both AD- and viral-mediated disruption of these dynamics proving sufficient to rescue stress-mediated gene expression and behavior. CONCLUSIONS: These findings establish a neurotransmission-independent role for serotonin in stress-/AD-associated transcriptional and behavioral plasticity in DRN.
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spelling pubmed-101872762023-05-17 Histone H3 serotonylation dynamics in dorsal raphe nucleus contribute to stress- and antidepressant-mediated gene expression and behavior Al-Kachak, Amni Fulton, Sasha L. Di Salvo, Giuseppina Chan, Jennifer C Farrelly, Lorna A. Lepack, Ashley E. Bastle, Ryan M. Kong, Lingchun Cathomas, Flurin Newman, Emily L. Menard, Caroline Ramakrishnan, Aarthi Safovich, Polina Lyu, Yang Covington, Herbert E. Shen, Li Gleason, Kelly Tamminga, Carol A. Russo, Scott J. Maze, Ian bioRxiv Article BACKGROUND: Major depressive disorder (MDD), along with related mood disorders, is a debilitating illness that affects millions of individuals worldwide. While chronic stress increases incidence levels of mood disorders, stress-mediated disruptions in brain function that precipitate these illnesses remain elusive. Serotonin-associated antidepressants (ADs) remain the first line of therapy for many with depressive symptoms, yet low remission rates and delays between treatment and symptomatic alleviation have prompted skepticism regarding precise roles for serotonin in the precipitation of mood disorders. Our group recently demonstrated that serotonin epigenetically modifies histone proteins (H3K4me3Q5ser) to regulate transcriptional permissiveness in brain. However, this phenomenon has not yet been explored following stress and/or AD exposures. METHODS: We employed a combination of genome-wide and biochemical analyses in dorsal raphe nucleus (DRN) of male and female mice exposed to chronic social defeat stress to examine the impact of stress exposures on H3K4me3Q5ser dynamics, as well as associations between the mark and stress-induced gene expression. We additionally assessed stress-induced regulation of H3K4me3Q5ser following AD exposures, and employed viral-mediated gene therapy to reduce H3K4me3Q5ser levels in DRN and examine the impact on stress-associated gene expression and behavior. RESULTS: We found that H3K4me3Q5ser plays important roles in stress-mediated transcriptional plasticity. Chronically stressed mice displayed dysregulated H3K4me3Q5ser dynamics in DRN, with both AD- and viral-mediated disruption of these dynamics proving sufficient to rescue stress-mediated gene expression and behavior. CONCLUSIONS: These findings establish a neurotransmission-independent role for serotonin in stress-/AD-associated transcriptional and behavioral plasticity in DRN. Cold Spring Harbor Laboratory 2023-09-16 /pmc/articles/PMC10187276/ /pubmed/37205414 http://dx.doi.org/10.1101/2023.05.04.539464 Text en https://creativecommons.org/licenses/by-nd/4.0/This work is licensed under a Creative Commons Attribution-NoDerivatives 4.0 International License (https://creativecommons.org/licenses/by-nd/4.0/) , which allows reusers to copy and distribute the material in any medium or format in unadapted form only, and only so long as attribution is given to the creator. The license allows for commercial use.
spellingShingle Article
Al-Kachak, Amni
Fulton, Sasha L.
Di Salvo, Giuseppina
Chan, Jennifer C
Farrelly, Lorna A.
Lepack, Ashley E.
Bastle, Ryan M.
Kong, Lingchun
Cathomas, Flurin
Newman, Emily L.
Menard, Caroline
Ramakrishnan, Aarthi
Safovich, Polina
Lyu, Yang
Covington, Herbert E.
Shen, Li
Gleason, Kelly
Tamminga, Carol A.
Russo, Scott J.
Maze, Ian
Histone H3 serotonylation dynamics in dorsal raphe nucleus contribute to stress- and antidepressant-mediated gene expression and behavior
title Histone H3 serotonylation dynamics in dorsal raphe nucleus contribute to stress- and antidepressant-mediated gene expression and behavior
title_full Histone H3 serotonylation dynamics in dorsal raphe nucleus contribute to stress- and antidepressant-mediated gene expression and behavior
title_fullStr Histone H3 serotonylation dynamics in dorsal raphe nucleus contribute to stress- and antidepressant-mediated gene expression and behavior
title_full_unstemmed Histone H3 serotonylation dynamics in dorsal raphe nucleus contribute to stress- and antidepressant-mediated gene expression and behavior
title_short Histone H3 serotonylation dynamics in dorsal raphe nucleus contribute to stress- and antidepressant-mediated gene expression and behavior
title_sort histone h3 serotonylation dynamics in dorsal raphe nucleus contribute to stress- and antidepressant-mediated gene expression and behavior
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10187276/
https://www.ncbi.nlm.nih.gov/pubmed/37205414
http://dx.doi.org/10.1101/2023.05.04.539464
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