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      Unique and Shared Epigenetic Programs of the CREBBP and EP300 Acetyltransferases in Germinal Center B Cells Reveal Targetable Dependencies in Lymphoma

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          SUMMARY

          Inactivating mutations of the CREBBP and EP300 acetyltransferases are among the most common genetic alterations in diffuse large B cell lymphoma (DLBCL) and follicular lymphoma (FL). Here, we examined the relationship between these two enzymes in germinal center (GC) B cells, the normal counterpart of FL and DLBCL, and in lymphomagenesis by using conditional GC-directed deletion mouse models targeting Crebbp or Ep300. We found that CREBBP and EP300 modulate common as well as distinct transcriptional programs implicated in separate anatomic and functional GC compartments. Consistently, deletion of Ep300 but not Crebbp impaired the fitness of GC B cells in vivo. Combined loss of Crebbp and Ep300 completely abrogated GC formation, suggesting that these proteins partially compensate for each other through common transcriptional targets. This synthetic lethal interaction was retained in CREBBP-mutant DLBCL cells and could be pharmacologically targeted with selective small molecule inhibitors of CREBBP and EP300 function. These data provide proof-of-principle for the clinical development of EP300-specific inhibitors in FL and DLBCL.

          In Brief

          Loss-of-function mutations of CREBBP and EP300 are frequent and early events in the pathogenesis of FL and DLBCL, the two most common lymphoma subtypes. Meyer et al. uncover distinct as well as compensatory roles for these acetyltransferases in separate compartments of the germinal center and exploit this notion to document an EP300-dependency in CREBBP-deficient lymphoma cells that can be targeted therapeutically.

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          Author and article information

          Journal
          9432918
          8591
          Immunity
          Immunity
          Immunity
          1074-7613
          1097-4180
          16 May 2020
          10 September 2019
          17 September 2019
          17 September 2020
          : 51
          : 3
          : 535-547.e9
          Affiliations
          [1 ]Institute for Cancer Genetics, Columbia University, New York, NY 10032, USA
          [2 ]Department of Pathology and Cell Biology, Columbia University, New York, NY 10032, USA
          [3 ]Cell Centric, Chesterford Research Park, Little Chesterford, Cambridge, CB10 1XL, UK
          [4 ]Department of Genetics & Development, Columbia University, New York, NY 10032, USA
          [5 ]Department of Microbiology & Immunology, Columbia University, New York, NY 10032, USA
          [6 ]Herbert Irving Comprehensive Cancer Center, Columbia University, New York, NY 10032, USA
          [7 ]Lead Contact
          Author notes

          AUTHORS CONTRIBUTIONS

          Conceptualization: L.P.; Methodology: L.P. and S.N.M.; Investigation: S.N.M., C.S., S.V., E.B, M.H., L.G.-I, R.D., T.V., and L.P.; Software: A.B.H. andK.B.; Validation: L.P.; Formal Analysis: S.N.M., A.B.H., and L.P.; Resources: N.B.; Data Curation: A.H. and L.P.; Writing – Original Draft: L.P., S.N.M.; Writing – Review & Editing: L.P., R.D.-F., S.N.M., S.V., E.B, M.H., K.B., C.S.; Visualization: L.P., S.N.M., S.V.; Supervision: L.P., R.D.-F.; Project administration: L.P.; Funding Acquisition: L.P., R.D.-F.

          [* ]Correspondence: lp171@ 123456cumc.columbia.edu
          Article
          PMC7362711 PMC7362711 7362711 nihpa1539075
          10.1016/j.immuni.2019.08.006
          7362711
          31519498
          4ad62e37-c6ea-49de-97c7-391b95f693d0
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