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Updated: Mar 24, 2026

Author Spotlight: Enhancements in Gene Expression Regulation Research
Published on: September 15, 2023
Histone turnover and chromatin accessibility: Critical mediators of neurological development, plasticity, and disease
Wendy Wenderski1, Ian Maze2,3
1Department of Developmental Biology, Stanford University, Stanford, CA, USA.
Abstract:
In postmitotic neurons, nucleosomal turnover was long considered to be a static process that is inconsequential to transcription. However, our recent studies in human and rodent brain indicate that replication-independent (RI) nucleosomal turnover, which requires the histone variant H3.3, is dynamic throughout life and is necessary for activity-dependent gene expression, synaptic connectivity, and cognition. H3.3 turnover also facilitates cellular lineage specification and plays a role in suppressing the expression of heterochromatic repetitive elements, including mutagenic transposable sequences, in mouse embryonic stem cells. In this essay, we review mechanisms and functions for RI nucleosomal turnover in brain and present the hypothesis that defects in histone dynamics may represent a common mechanism underlying neurological aging and disease.
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