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A progeria syndrome links DNA hypermethylation to age-related pathology

  • Dan Sarni,
  • Gráinne Neary,
  • Paula L. Carroll,
  • Chris S. Vink,
  • Caroline V. Billard,
  • Tomoya Isobe,
  • Xiong Weng,
  • Jordan R. Portman,
  • Daniel L. McCartney,
  • Patricia Heyn,
  • Rob J. van ‘t Hof,
  • Linda R. Morrison,
  • Carol-Anne Martin,
  • Colin Stok,
  • Margaret E. Harley,
  • Andrea Leitch,
  • Maarten van den Ancker,
  • Nic Robertson,
  • Laura Kitto,
  • Richard Clark,
  • Michael Rennie,
  • Anna Popravko,
  • Jessica J. McClure,
  • David A. Parry,
  • Giuseppina Camiolo,
  • Tom Leah,
  • Hélène Jakobczyk,
  • Roly Megaw,
  • Lisa McKie,
  • Grant F. Marshall,
  • Nika Balkic,
  • Jeanne Amiel,
  • Tania Barragán Arévalo,
  • Grace Bronken McCarthy,
  • Catherine A. Buchanan,
  • Alexandre Buffet,
  • Alberto Cascón,
  • Benjamin Cogne,
  • Solene Conrad,
  • Anna Maria Cueto-González,
  • Maria Currás-Freixes,
  • Gunnar Douzgos Houge,
  • Chin-To Fong,
  • Jaya K. George-Abraham,
  • Kate Gibson,
  • Lourdes Ibáñez,
  • Nicola Longo,
  • Charlotte Lussey-Lepoutre,
  • Bradley S. Miller,
  • Alejandro Moles-Fernandez,
  • Nishitha R. Pillai,
  • Tatiana Tvrdik,
  • Marie Vincent,
  • Emiy Yokoyama,
  • Catherine M. Abbott,
  • Francisco Jose Sanchez-Luque,
  • Katrin Ottersbach,
  • Cosimo De Bari,
  • Anke J. Roelofs,
  • Rebekah Tillotson,
  • Kamil R. Kranc,
  • Sara J. Brown,
  • Riccardo E. Marioni,
  • Mihaela Crisan,
  • Berthold Göttgens,
  • Neil C. Henderson,
  • Robert K. Semple,
  • Kevin B. Myant,
  • Elaine Dzierzak,
  • Martin A. M. Reijns,
  • Duncan Sproul,
  • Andrew P. Jackson

摘要

Declining tissue function and regenerative capacity underlie many chronic diseases. Experimentally establishing the mechanistic basis for such tissue aging presents substantial challenges, given decades-long timescales and multifactorial origins. Epigenetic alterations have been proposed to have a key etiological role, but whether they are correlative or causal remains a key unanswered question, as does their contribution to specific age-related pathologies. Here we describe an epigenetically driven accelerated aging syndrome. We demonstrate that DNMT3A gain-of-function mutations in Heyn–Sproul–Jackson syndrome recapitulate age-related gains in DNA methylation (DNAme), cause multilineage stem cell dysfunction, and phenocopy aspects of aging in humans and mice. We also show that region-specific DNA hypermethylation at lineage-specific genes can explain reduced stem cell output and lineage skewing. Hence, starting from a Mendelian disorder, we implicate DNAme-mediated stem cell dysfunction in the etiology of medically important age-related hematological, bone and metabolic pathologies, which might be targetable by future therapies.