4.8 Article

MLL-fusion-driven leukemia requires SETD2 to safeguard genomic integrity

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NATURE COMMUNICATIONS
卷 9, 期 -, 页码 -

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NATURE RESEARCH
DOI: 10.1038/s41467-018-04329-y

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资金

  1. European FP7 Marie-Curie Initial Training Network HEM_ID
  2. National Research, Development and Innovation Office, Hungary [NVKP_16-1-2016-0037]
  3. National Institutes of Health grant [NCI RO1 CA174793, NCI 5P01CA013106-Project 4]
  4. Leukemia AMP
  5. Lymphoma Society Scholar Award
  6. Austrian Science Fund (FWF) [F4704]
  7. SFB grant of the Austrian Science Fund (FWF) [F4710]
  8. Boehringer Ingelheim
  9. ERA-NET Grant [I 2192-B22]
  10. FWF Stand-Alone Grant [P 29250-B30]
  11. FWF SFB Grant [F 4711-B20]
  12. Austrian Research Promotion Agency (FFG) [857935]
  13. European Research Council under the European Union's Horizon research and innovation programme [336860/StG, 695214/AdG, 727416/PoC, 636855/StG]
  14. NATIONAL CANCER INSTITUTE [R01CA174793, P01CA013106] Funding Source: NIH RePORTER

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MLL-fusions represent a large group of leukemia drivers, whose diversity originates from the vast molecular heterogeneity of C-terminal fusion partners of MLL. While studies of selected MLL-fusions have revealed critical molecular pathways, unifying mechanisms across all MLL-fusions remain poorly understood. We present the first comprehensive survey of protein-protein interactions of seven distantly related MLL-fusion proteins. Functional investigation of 128 conserved MLL-fusion-interactors identifies a specific role for the lysine methyltransferase SETD2 in MLL-leukemia. SETD2 loss causes growth arrest and differentiation of AML cells, and leads to increased DNA damage. In addition to its role in H3K36 tri-methylation, SETD2 is required to maintain high H3K79 di-methylation and MLL-AF9-binding to critical target genes, such as Hoxa9. SETD2 loss synergizes with pharmacologic inhibition of the H3K79 methyltransferase DOT1L to induce DNA damage, growth arrest, differentiation, and apoptosis. These results uncover a dependency for SETD2 during MLL-leukemogenesis, revealing a novel actionable vulnerability in this disease.

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