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A new type of transcriptional reprogramming by an IRF4 mutation in lymphoma

Schleussner, N.; Cauchy, P.; Franke, V.; Giefing, M.; Fornes, O.; Vankadari, N.; Assi, S.; Costanza, M.; Weniger, M. A.; Akalin, A.; Anagnostopoulos, I.; Bukur, T.; Casarotto, M. G.; Damm, F.; Daumke, O.; Edginton-White, B.; Gebhardt, J. C. M.; Grau, M.; Grunwald, S.; Hansmann, M.-L.; Hartmann, S.; Huber, L.; Kärgel, E.; Lusatis, S.; Noerenberg, D.; Obier, N.; Pannicke, U.; Pfaus, A.; Reisser, A.; Rosenwald, A.; Schwarz, K.; Sundararaj, S.; Weilemann, A.; Winkler, W.; Xu, W.; Lenz, G.; Rajewsky, K.; Wasserman, W. W.; Cockerill, P. N.; Scheidereit, C.; Siebert, R.; Küppers, R.; Grosschedl, R.

2022-12-29 cancer biology
10.1101/2022.12.29.522203 bioRxiv
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SUMMARY PARAGRAPHDisease-causing mutations in genes encoding transcription factors (TFs) are a recurrent finding in hematopoietic malignancies and might involve key regulators of lineage adherence and cellular differentiation1-3. Such mutations can affect TF-interactions with their cognate DNA-binding motifs4, 5. Whether and how TF-mutations impact upon the nature of binding to TF composite elements (CE) and influence their interaction with other TFs is unclear. Here, we report a new mechanism of TF alteration in human lymphomas with perturbed B cell identity. It is caused by a recurrent somatic missense mutation c.295T>C (p.Cys99Arg; p.C99R) targeting the center of the DNA-binding domain of Interferon Regulatory Factor 4 (IRF4), a key TF in immune cell-differentiation and -activation6, 7. IRF4-C99R fundamentally alters IRF4 DNA-binding, with loss-of-binding to canonical IRF motifs and neomorphic gain-of-binding to canonical and non-canonical IRF composite elements (CEs). Furthermore, IRF4-C99R thoroughly modifies IRF4 function, by blocking IRF4-dependent plasma cell induction, and up-regulating disease-specific genes in a non-canonical Activator Protein-1 (AP-1)-IRF-CE (AICE)-dependent manner. Our data explain how a single arginine mutation creates a complex switch of TF specificity and gene regulation. These data open the possibility of designing specific inhibitors to block the neomorphic, disease-causing DNA-binding activities of a mutant transcription factor.

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