The role of linker histone H1.2 in tumor progression, resistance, and clinical translation

Linker histone H1 has traditionally been regarded as a structural scaffold that stabilizes higher-order chromatin organization. Recent evidence, however, indicates that H1 variants are dynamic chromatin regulators with variant-specific functions in cancer. Among them, H1.2, encoded by H1-2 (formerly HIST1H1C), has emerged as a context-dependent regulator of chromatin compaction, DNA damage signaling, transcription, stress adaptation, and cell fate. This review summarizes the structural and post-translational features of H1.2 and examines how these properties contribute to tumor progression, invasion, metastasis, and therapeutic resistance. We focus on H1.2-mediated control of the cell cycle, Polycomb-dependent gene silencing, oncogenic transcriptional programs, genotoxic stress tolerance, redox-metabolic adaptation, apoptosis evasion, epithelial-mesenchymal transition-associated drug tolerance, and immune microenvironment remodeling. We also evaluate H1.2 as a tissue-based or circulating biomarker, a post-translational modification-based functional readout, and a guide for biomarker-driven combination therapy. Although direct pharmacological targeting remains preliminary, isoform-selective modulation and interventions targeting H1.2-associated regulatory pathways may expand its future therapeutic potential in precision oncology.

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Publication Details

Journal
Epigenomics
Published
2026-10-01
DOI
https://doi.org/10.1080/17501911.2026.2740944
Primary Topic
Genomics and Chromatin Dynamics
Type
article
Field-Weighted Citation Impact
0.00
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article

The role of linker histone H1.2 in tumor progression, resistance, and clinical translation

Jiayang Zhou, Ling Zheng, Yangkai Li, Kun Huang et al.
Epigenomics
Genomics and Chromatin Dynamics
article

The role of linker histone H1.2 in tumor progression, resistance, and clinical translation

Jiayang Zhou, Ling Zheng, Yangkai Li, Kun Huang, Jiajian Shi
article en

Abstract

Linker histone H1 has traditionally been regarded as a structural scaffold that stabilizes higher-order chromatin organization. Recent evidence, however, indicates that H1 variants are dynamic chromatin regulators with variant-specific functions in cancer. Among them, H1.2, encoded by H1-2 (formerly HIST1H1C), has emerged as a context-dependent regulator of chromatin compaction, DNA damage signaling, transcription, stress adaptation, and cell fate. This review summarizes the structural and post-translational features of H1.2 and examines how these properties contribute to tumor progression, invasion, metastasis, and therapeutic resistance. We focus on H1.2-mediated control of the cell cycle, Polycomb-dependent gene silencing, oncogenic transcriptional programs, genotoxic stress tolerance, redox-metabolic adaptation, apoptosis evasion, epithelial-mesenchymal transition-associated drug tolerance, and immune microenvironment remodeling. We also evaluate H1.2 as a tissue-based or circulating biomarker, a post-translational modification-based functional readout, and a guide for biomarker-driven combination therapy. Although direct pharmacological targeting remains preliminary, isoform-selective modulation and interventions targeting H1.2-associated regulatory pathways may expand its future therapeutic potential in precision oncology.

Epigenomics
Wuhan University (CN), Huazhong University of Science and Technology (CN)
Good health and well-being
Openalex Percentile: Top 19%
Genomics and Chromatin Dynamics
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