<p>Clonal haematopoiesis arises when a haematopoietic stem cell (HSC) acquires a mutation that confers a competitive advantage over wild-type HSCs, resulting in its clonal expansion. Individuals with clonal haematopoiesis are at increased risk of developing haematologic neoplasms and other age-related inflammatory illnesses<sup><CitationRef AdditionalCitationIDS="CR2 CR3" CitationID="CR1">1</CitationRef>–<CitationRef CitationID="CR4">4</CitationRef></sup>. Suppressing the expansion of mutant HSCs may prevent these outcomes; however, such interventions have not yet been identified. The most common clonal haematopoiesis driver mutations are in the <i>DNMT3A</i> gene, with arginine 882 (R882) being a mutation hotspot<sup><CitationRef AdditionalCitationIDS="CR2" CitationID="CR1">1</CitationRef>–<CitationRef CitationID="CR3">3</CitationRef>,<CitationRef AdditionalCitationIDS="CR6" CitationID="CR5">5</CitationRef>–<CitationRef CitationID="CR7">7</CitationRef></sup>. Here we show that mouse haematopoietic stem and progenitor cells (HSPCs) carrying the <i>Dnmt3a</i><sup>R878H/+</sup> mutation, equivalent to human <i>DNMT3A</i><sup>R882H/+</sup>, have increased mitochondrial respiration compared with wild-type cells and are dependent on this metabolic reprogramming for their competitive advantage. Treatment with metformin, an anti-diabetic drug that inhibits mitochondrial respiration<sup><CitationRef CitationID="CR8">8</CitationRef></sup>, reduced the competitive advantage of <i>Dnmt3a</i><sup>R878H/+</sup> HSCs. Through a multi-omics approach, we found that metformin acts by enhancing methylation potential in <i>Dnmt3a</i><sup>R878H/+</sup> HSPCs and reversing the aberrant DNA CpG methylation and histone H3 K27 trimethylation profiles in these cells. Metformin also reduced the competitive advantage of human <i>DNMT3A</i><sup>R882H</sup> HSPCs generated by prime editing. Our findings provide preclinical rationale for investigating metformin as a preventive intervention against <i>DNMT3A</i> R882 mutation-driven clonal haematopoiesis in humans.</p>

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Metformin reduces the competitive advantage of Dnmt3aR878H HSPCs

  • Mohsen Hosseini,
  • Veronique Voisin,
  • Ali Chegini,
  • Angelica Varesi,
  • Severine Cathelin,
  • Dhanoop Manikoth Ayyathan,
  • Alex C. H. Liu,
  • Yitong Yang,
  • Vivian Wang,
  • Abdula Maher,
  • Eric Grignano,
  • Julie A. Reisz,
  • Angelo D’Alessandro,
  • Kira Young,
  • Yiyan Wu,
  • Martina Fiumara,
  • Samuele Ferrari,
  • Luigi Naldini,
  • Federico Gaiti,
  • Shraddha Pai,
  • Grace Egan,
  • Aaron D. Schimmer,
  • Gary D. Bader,
  • John E. Dick,
  • Stephanie Z. Xie,
  • Jennifer J. Trowbridge,
  • Steven M. Chan

摘要

Clonal haematopoiesis arises when a haematopoietic stem cell (HSC) acquires a mutation that confers a competitive advantage over wild-type HSCs, resulting in its clonal expansion. Individuals with clonal haematopoiesis are at increased risk of developing haematologic neoplasms and other age-related inflammatory illnesses14. Suppressing the expansion of mutant HSCs may prevent these outcomes; however, such interventions have not yet been identified. The most common clonal haematopoiesis driver mutations are in the DNMT3A gene, with arginine 882 (R882) being a mutation hotspot13,57. Here we show that mouse haematopoietic stem and progenitor cells (HSPCs) carrying the Dnmt3aR878H/+ mutation, equivalent to human DNMT3AR882H/+, have increased mitochondrial respiration compared with wild-type cells and are dependent on this metabolic reprogramming for their competitive advantage. Treatment with metformin, an anti-diabetic drug that inhibits mitochondrial respiration8, reduced the competitive advantage of Dnmt3aR878H/+ HSCs. Through a multi-omics approach, we found that metformin acts by enhancing methylation potential in Dnmt3aR878H/+ HSPCs and reversing the aberrant DNA CpG methylation and histone H3 K27 trimethylation profiles in these cells. Metformin also reduced the competitive advantage of human DNMT3AR882H HSPCs generated by prime editing. Our findings provide preclinical rationale for investigating metformin as a preventive intervention against DNMT3A R882 mutation-driven clonal haematopoiesis in humans.