Retrotransposable element derepression distinguishes DNMT3A-mutant from TET2-mutant clonal haematopoiesis

Abstract Clonal haematopoiesis (CH) is driven by somatic mutations in haematopoietic stem cells that generate clonal populations detectable in peripheral blood and is present in 10–20% of individuals over the age of 65. Mutations in DNMT3A and TET2 are the most common drivers and have been linked to inflammatory phenotypes and increased risk of haematologic and cardiovascular disease. However, the cell-intrinsic mechanisms connecting these mutations to inflammatory signalling remain incompletely understood. Because retrotransposable elements (RTEs) are epigenetically regulated and can activate innate immune pathways when derepressed, we hypothesised that RTE reactivation may represent a mutation-specific mechanism linking clonal haematopoiesis driver mutations to inflammatory pathways. We analysed RTE expression and clonal burden in peripheral blood mononuclear cell (PBMC) samples from 56 individuals with CH and 12 non-CH controls using integrated genomic and transcriptomic approaches, with complementary validation by TARGET-seq across haematopoietic lineages. High variant allele frequency (VAF; > 10%) DNMT3A -mutant clones exhibited widespread derepression of RTEs, particularly LINE and LTR families, whereas TET2 -mutant clones showed a trend towards reduced RTE expression relative to controls. Transcriptomic analyses revealed that DNMT3A high-variant allele frequency clones with elevated RTE expression were enriched for inflammatory signalling pathways, including TNF-α/NF-κB signalling, interferon responses, and senescence-associated signatures. In contrast, TET2 -mutant clones lacked these RTE-associated inflammatory signatures and instead showed enrichment of oxidative phosphorylation, reactive oxygen species signalling, and a mechanistic target of rapamycin complex 1 pathway. These findings were reproduced in an independent cohort. Collectively, our results highlight mutation-specific inflammatory mechanisms in clonal haematopoiesis and provide a foundation for future functional and preclinical studies to determine whether modulation of RTE activity can influence the inflammatory phenotype of DNMT3A-mutant CH and represent a potential therapeutic strategy.

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Journal
GeroScience
Published
2026-09-16
DOI
https://doi.org/10.1007/s11357-026-02510-6
Primary Topic
Acute Myeloid Leukemia Research
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article
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article

Retrotransposable element derepression distinguishes DNMT3A-mutant from TET2-mutant clonal haematopoiesis

Alfredo Iacoangeli, Laarni Bonganay, Khadijeh Alishah, Nogayhan Seymen et al.
GeroScience
Acute Myeloid Leukemia Research
article

Retrotransposable element derepression distinguishes DNMT3A-mutant from TET2-mutant clonal haematopoiesis

Alfredo Iacoangeli, Laarni Bonganay, Khadijeh Alishah, Nogayhan Seymen, Eric C. W. So, Xuesen Zheng, Kai Yi Mok, Niels Asger Jakobsen, James Carmichael, Louis‐François Handfield, Mohammad M. Karimi, Sheeba Irshad, Sıla Gerlevik, Yi-Ting Tsai, Maroof Hasan, Sarah Mackie, Lynn Quek, Paresh Vyas, Merilyn M. Albuquerque, Viktoria Uksaite, Ghulam J. Mufti, Nicholas Bianchini, Giorgio Napolitani, Sylvia Durandeau, Hanae Roussotte, Bernd Zeisig, Jen Lewis, I. Richard Thompson, Rajasekhar N. V. S. Suragani, Anita K. Gandhi
article en

Abstract

Abstract Clonal haematopoiesis (CH) is driven by somatic mutations in haematopoietic stem cells that generate clonal populations detectable in peripheral blood and is present in 10–20% of individuals over the age of 65. Mutations in DNMT3A and TET2 are the most common drivers and have been linked to inflammatory phenotypes and increased risk of haematologic and cardiovascular disease. However, the cell-intrinsic mechanisms connecting these mutations to inflammatory signalling remain incompletely understood. Because retrotransposable elements (RTEs) are epigenetically regulated and can activate innate immune pathways when derepressed, we hypothesised that RTE reactivation may represent a mutation-specific mechanism linking clonal haematopoiesis driver mutations to inflammatory pathways. We analysed RTE expression and clonal burden in peripheral blood mononuclear cell (PBMC) samples from 56 individuals with CH and 12 non-CH controls using integrated genomic and transcriptomic approaches, with complementary validation by TARGET-seq across haematopoietic lineages. High variant allele frequency (VAF; > 10%) DNMT3A -mutant clones exhibited widespread derepression of RTEs, particularly LINE and LTR families, whereas TET2 -mutant clones showed a trend towards reduced RTE expression relative to controls. Transcriptomic analyses revealed that DNMT3A high-variant allele frequency clones with elevated RTE expression were enriched for inflammatory signalling pathways, including TNF-α/NF-κB signalling, interferon responses, and senescence-associated signatures. In contrast, TET2 -mutant clones lacked these RTE-associated inflammatory signatures and instead showed enrichment of oxidative phosphorylation, reactive oxygen species signalling, and a mechanistic target of rapamycin complex 1 pathway. These findings were reproduced in an independent cohort. Collectively, our results highlight mutation-specific inflammatory mechanisms in clonal haematopoiesis and provide a foundation for future functional and preclinical studies to determine whether modulation of RTE activity can influence the inflammatory phenotype of DNMT3A-mutant CH and represent a potential therapeutic strategy.

GeroScience
King's College London (GB), Guy's and St Thomas' NHS Foundation Trust (GB), South London and Maudsley NHS Foundation Trust (GB), Breast Cancer Now (GB), University of Oxford (GB), London Cancer (GB), MRC Weatherall Institute of Molecular Medicine (GB), King's College Hospital NHS Foundation Trust (GB), Bristol-Myers Squibb (Sweden) (SE), Perron Institute for Neurological and Translational Science (AU), Oxford BioMedica (United Kingdom) (GB), Oxford University Hospitals NHS Trust (GB)
Openalex Percentile: Top 11%
Acute Myeloid Leukemia Research
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