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Functional landscape of ubiquitin linkages couples K29-linked ubiquitylation to epigenome integrity

Authors

  • Javier Arroyo-Gomez
  • Matthew J. Murray
  • Claire Guérillon
  • Juanjuan Wang
  • Ekaterina Isaakova
  • Nazaret Reverón-Gómez
  • Mikaela Koutrouli
  • Aldwin Suryo Rahmanto
  • Katrine Mitrofanov
  • Andreas Ingham
  • Sofie Schovsbo
  • Katrine Weischenfeldt
  • Fabian Coscia
  • Dimitris Typas
  • Moritz Völker-Albert
  • Victor Solis
  • Lars Juhl Jensen
  • Anja Groth
  • Andreas Mund
  • Petra Beli
  • Robert F. Shearer
  • Niels Mailand

Journal

  • EMBO Journal

Citation

  • EMBO J 44 (23): 6944-6978

Abstract

  • Linkage-specific ubiquitin chains govern the outcome of numerous critical ubiquitin-dependent signaling processes, but their targets and functional impacts remain incompletely understood due to a paucity of tools for their specific detection and manipulation. Here, we applied a cell-based ubiquitin replacement strategy enabling targeted conditional abrogation of each of the seven lysine-based ubiquitin linkages in human cells to profile system-wide impacts of disabling formation of individual chain types. This revealed proteins and processes regulated by each of these poly-ubiquitin topologies and indispensable roles of K48-, K63- and K27-linkages in cell proliferation. We show that K29-linked ubiquitylation is strongly associated with chromosome biology, and that the H3K9me3 methyltransferase SUV39H1 is a prominent cellular target of this modification. K29-linked ubiquitylation catalyzed by TRIP12 and reversed by TRABID constitutes the essential degradation signal for SUV39H1 and is primed and extended by CullinRING ubiquitin ligase activity. Preventing K29-linkage-dependent SUV39H1 turnover deregulates H3K9me3 homeostasis but not other histone modifications. Collectively, these data resources illuminate cellular functions of linkage-specific ubiquitin chains and establish a key role of K29-linked ubiquitylation in epigenome integrity.


DOI

doi:10.1038/s44318-025-00599-7