Canonical BAF complex regulates the oncogenic program in human T-cell acute lymphoblastic leukemia

Author:

Aoki Kazunari1,Hyuga Mizuki2,Tarumoto Yusuke1,Nishibuchi Gohei1ORCID,Ueda Atsushi1,Ochi Yotaro3,Sugino Seiichi1,Mikami Takashi4ORCID,Kobushi Hirokazu5ORCID,Kato Itaru4ORCID,Akahane Koshi6ORCID,Inukai Takeshi7,Takaori-Kondo Akifumi5ORCID,Takita Junko5,Ogawa Seishi3,Yusa Kosuke8

Affiliation:

1. Institute for Life and Medical Sciences, Kyoto University, Kyoto, Japan

2. Graduate School of Medicine, Kyoto University, Japan

3. WPI-ASHBi, Kyoto University, Japan

4. Kyoto University, Kyoto, Japan

5. Graduate School of Medicine, Kyoto University, Kyoto, Japan

6. University of Yamanashi, Chuo, Japan

7. University of Yamanashi, School of Medicine, Yamanashi, Japan

8. Institute for Life and Medical Sciences, Kyoto University, Japan

Abstract

Acute leukemia cells require bone marrow microenvironments, termed niches, which provide leukemic cells with niche factors that are essential for leukemic cell survival and/or proliferation. However, it remains unclear how the dynamics of the leukemic cell-niche interaction are regulated. Using a genome-wide CRISPR screen, we discovered that canonical BRG1/BRM-associated factor (cBAF), a variant of the switch/sucrose non-fermenting chromatin remodeling complex, regulates migratory response of human T-cell acute lymphoblastic leukemia (T-ALL) cells to a niche factor CXCL12. Mechanistically, cBAF maintains chromatin accessibility and allows RUNX1 to bind to CXCR4 enhancer regions. cBAF inhibition evicts RUNX1 from the genome, resulting in CXCR4 downregulation and impaired migration activity. In addition, cBAF maintains chromatin accessibility preferentially at RUNX1 binding sites, ensuring RUNX1 binding at these sites, and is required for expression of RUNX1-regulated genes, such as CDK6; therefore, cBAF inhibition negatively impacts cell proliferation and profoundly induces apoptosis. This anticancer effect was also confirmed using T-ALL xenograft models, suggesting cBAF as a promising therapeutic target. Thus, we provide novel evidence that cBAF regulates the RUNX1-driven leukemic program and governs migration activity toward CXCL12 and cell-autonomous growth in human T-ALL.

Publisher

American Society of Hematology

Subject

Cell Biology,Hematology,Immunology,Biochemistry

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