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In contrast to our extensive knowledge on covalent small ubiquitin-like modifier (SUMO) target proteins, we are limited in our understanding of non-covalent SUMO-binding proteins. We identify interactors of different SUMO isoforms-monomeric SUMO1, monomeric SUMO2, or linear trimeric SUMO2 chains-using a mass spectrometry-based proteomics approach. We identify 379 proteins that bind to different SUMO isoforms, mainly in a preferential manner. Interestingly, XRCC4 is the only DNA repair protein in our screen with a preference for SUMO2 trimers over mono-SUMO2, as well as the only protein in our screen that belongs to the non-homologous end joining (NHEJ) DNA double-strand break repair pathway. A SUMO interaction motif (SIM) in XRCC4 regulates its recruitment to sites of DNA damage and phosphorylation of S320 by DNA-PKcs. Our data highlight the importance of non-covalent and covalent sumoylation for DNA double-strand break repair via the NHEJ pathway and provide a resource of SUMO isoform interactors.
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http://dx.doi.org/10.1016/j.celrep.2021.108691 | DOI Listing |
Dev Biol
September 2025
School of Biological and Chemical Sciences, University of Galway, Biomedical Sciences Building, Newcastle Road, Galway H91 W2TY, Ireland. Electronic address:
The transcription factor Six1 and its co-activator Eya1 play central and varied roles during the development of sensory neurons derived from the cranial placodes in vertebrates. Previous studies suggested that these proteins promote both the maintenance of proliferative neuronal progenitors and neuronal differentiation. Context-specific interactions of Six1 and/or Eya1 with different cofactors are likely to contribute to the activation of distinct target genes during different stages of placodal neurogenesis.
View Article and Find Full Text PDFMol Plant
September 2025
Division of Life Sciences and Medicine; Division of Molecular & Cell Biophysics, Hefei National Science Center for Interdisciplinary Sciences at the Microscale; MOE Key Laboratory for Membraneless Organelles and Cellular Dynamics; University of Science and Technology of China, The Innovation Academy
Abiotic stresses severely threaten global food security, underscoring the need for resilient crop varieties. We identified OsSPT38, a previously uncharacterized SUMO E3 ligase in rice, and discovered a rare gain-of-function mutation (Gly212Asp) that enhances both stress resilience and yield. This phenotype was validated in 18 additional independent mutants and by base editing in the elite indica cultivar Huanghuazhan.
View Article and Find Full Text PDFJ Cell Biol
October 2025
Department of Biology, Carnegie Mellon University, Pittsburgh, PA, USA.
Many cancers use an alternative lengthening of telomeres (ALT) pathway for telomere maintenance. ALT telomeric DNA synthesis occurs in ALT-associated PML bodies (APBs). However, the mechanisms by which APBs form are not well understood.
View Article and Find Full Text PDFThe Mre11 nuclease is part of the highly conserved MRX complex involved in the repair of DNA double-strand breaks (DSBs). During meiosis in budding yeast, MRX is also required for the programmed induction of DSBs by Spo11, thereby initiating homologous recombination to promote accurate chromosome segregation. Recruitment of Mre11 to meiotic DSB sites depends on Rec114-Mei4 and Mer2 (RMM), which are thought to organize the meiotic DSB machinery by a mechanism involving biomolecular condensation.
View Article and Find Full Text PDFJ Biol Chem
August 2025
Institute of Tumor Biology, University Medical Center Hamburg-Eppendorf, Hamburg, Germany. Electronic address:
The developmental transcription factor grainyhead-like 2 (GRHL2) has been attributed both tumor-suppressive and pro-tumorigenic functions in a large variety of human cancers. Despite its fundamental role in cancer development and progression, mechanisms modulating expression or activity of GRHL2 in cancer cells still remain elusive. We identified several components of the SUMOylation machinery as candidate GRHL2 interactors using a yeast two-hybrid screening approach and a single major GRHL2 SUMOylation site at lysine residue 159.
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