Phosphorylation of BigH1 regulates its expression pattern and promotes embryonic development

Metazoan genomes typically encode several linker histone variants, often expressed in a tissue- or developmental stage-specific manner. The Drosophila melanogaster genome contains only two linker histone variants: H1 is present in somatic cells, while BigH1 substitutes H1 in the germline and early embryos. In the early stages of embryogenesis, BigH1 is replaced by H1 in the chromatin of somatic cells, contributing to the initiation and maintenance of the zygotic gene expression program. Nevertheless, the molecular mechanism of this exchange and the possible functions of post-translational modifications of BigH1 in this process remain elusive. Here, we identify phosphorylation as a key post-translational regulator of BigH1 dynamics. Using proteomics and targeted mutagenesis of the endogenous BigH1 locus, we show that the loss of N-terminal phosphorylation results in persistent retention of BigH1 in somatic nuclei throughout embryogenesis, indicating a failure in BigH1 turnover. In contrast, disruption of C-terminal phosphorylation does not markedly affect BigH1 clearance but increases defects during early nuclear divisions and compromises embryonic development, particularly under suboptimal conditions. Together, these findings demonstrate that domain-specific phosphorylation differentially regulates BigH1 function, coordinating its early embryonic role with its subsequent removal from the chromatin.

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Publication Details

Journal
FEBS Journal
Published
2026-09-15
DOI
https://doi.org/10.1111/febs.70715
Primary Topic
Genomics and Chromatin Dynamics
Type
article
Field-Weighted Citation Impact
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article

Phosphorylation of BigH1 regulates its expression pattern and promotes embryonic development

Aladár Pettkó‐Szandtner, Gyula Timinszky, Anikó Szabó, Balázs Vedelek et al.
FEBS Journal
Genomics and Chromatin Dynamics
article

Phosphorylation of BigH1 regulates its expression pattern and promotes embryonic development

Aladár Pettkó‐Szandtner, Gyula Timinszky, Anikó Szabó, Balázs Vedelek, Imre Boros, Péter Vilmos, Zoltán Villányi, László Henn, Bence György Gombás, Ramóna Pék
article en

Abstract

Metazoan genomes typically encode several linker histone variants, often expressed in a tissue- or developmental stage-specific manner. The Drosophila melanogaster genome contains only two linker histone variants: H1 is present in somatic cells, while BigH1 substitutes H1 in the germline and early embryos. In the early stages of embryogenesis, BigH1 is replaced by H1 in the chromatin of somatic cells, contributing to the initiation and maintenance of the zygotic gene expression program. Nevertheless, the molecular mechanism of this exchange and the possible functions of post-translational modifications of BigH1 in this process remain elusive. Here, we identify phosphorylation as a key post-translational regulator of BigH1 dynamics. Using proteomics and targeted mutagenesis of the endogenous BigH1 locus, we show that the loss of N-terminal phosphorylation results in persistent retention of BigH1 in somatic nuclei throughout embryogenesis, indicating a failure in BigH1 turnover. In contrast, disruption of C-terminal phosphorylation does not markedly affect BigH1 clearance but increases defects during early nuclear divisions and compromises embryonic development, particularly under suboptimal conditions. Together, these findings demonstrate that domain-specific phosphorylation differentially regulates BigH1 function, coordinating its early embryonic role with its subsequent removal from the chromatin.

FEBS Journal
University of Szeged (HU), HUN-REN Szegedi Biológiai Kutatóközpont (HU)
Horizon 2020 Framework Programme, Nemzeti Kutatási, Fejlesztési és Innovaciós Alap
Openalex Percentile: Top 19%
Genomics and Chromatin Dynamics
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