The activity-dependent histone variant H2BE modulates the life span of olfactory neurons

We have identified a replication-independent histone variant, Hist2h2be (referred to herein as H2be), which is expressed exclusively by olfactory chemosensory neurons. Levels of H2BE are heterogeneous among olfactory neurons, but stereotyped according to the identity of the co-expressed olfactory re...

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Main Authors: Stephen W Santoro, Catherine Dulac
Format: Article
Language:English
Published: eLife Sciences Publications Ltd 2012-12-01
Series:eLife
Subjects:
Online Access:https://elifesciences.org/articles/00070
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spelling doaj-041b93cddc3447bda31825e920dd63902021-04-30T23:25:02ZengeLife Sciences Publications LtdeLife2050-084X2012-12-01110.7554/eLife.00070The activity-dependent histone variant H2BE modulates the life span of olfactory neuronsStephen W Santoro0Catherine Dulac1Howard Hughes Medical Institute, Department of Molecular and Cellular Biology, Harvard University, Cambridge, United StatesHoward Hughes Medical Institute, Department of Molecular and Cellular Biology, Harvard University, Cambridge, United StatesWe have identified a replication-independent histone variant, Hist2h2be (referred to herein as H2be), which is expressed exclusively by olfactory chemosensory neurons. Levels of H2BE are heterogeneous among olfactory neurons, but stereotyped according to the identity of the co-expressed olfactory receptor (OR). Gain- and loss-of-function experiments demonstrate that changes in H2be expression affect olfactory function and OR representation in the adult olfactory epithelium. We show that H2BE expression is reduced by sensory activity and that it promotes neuronal cell death, such that inactive olfactory neurons display higher levels of the variant and shorter life spans. Post-translational modifications (PTMs) of H2BE differ from those of the canonical H2B, consistent with a role for H2BE in altering transcription. We propose a physiological function for H2be in modulating olfactory neuron population dynamics to adapt the OR repertoire to the environment.https://elifesciences.org/articles/00070histoneolfactoryepigenetics
collection DOAJ
language English
format Article
sources DOAJ
author Stephen W Santoro
Catherine Dulac
spellingShingle Stephen W Santoro
Catherine Dulac
The activity-dependent histone variant H2BE modulates the life span of olfactory neurons
eLife
histone
olfactory
epigenetics
author_facet Stephen W Santoro
Catherine Dulac
author_sort Stephen W Santoro
title The activity-dependent histone variant H2BE modulates the life span of olfactory neurons
title_short The activity-dependent histone variant H2BE modulates the life span of olfactory neurons
title_full The activity-dependent histone variant H2BE modulates the life span of olfactory neurons
title_fullStr The activity-dependent histone variant H2BE modulates the life span of olfactory neurons
title_full_unstemmed The activity-dependent histone variant H2BE modulates the life span of olfactory neurons
title_sort activity-dependent histone variant h2be modulates the life span of olfactory neurons
publisher eLife Sciences Publications Ltd
series eLife
issn 2050-084X
publishDate 2012-12-01
description We have identified a replication-independent histone variant, Hist2h2be (referred to herein as H2be), which is expressed exclusively by olfactory chemosensory neurons. Levels of H2BE are heterogeneous among olfactory neurons, but stereotyped according to the identity of the co-expressed olfactory receptor (OR). Gain- and loss-of-function experiments demonstrate that changes in H2be expression affect olfactory function and OR representation in the adult olfactory epithelium. We show that H2BE expression is reduced by sensory activity and that it promotes neuronal cell death, such that inactive olfactory neurons display higher levels of the variant and shorter life spans. Post-translational modifications (PTMs) of H2BE differ from those of the canonical H2B, consistent with a role for H2BE in altering transcription. We propose a physiological function for H2be in modulating olfactory neuron population dynamics to adapt the OR repertoire to the environment.
topic histone
olfactory
epigenetics
url https://elifesciences.org/articles/00070
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