Deregulation and epigenetic modification of BCL2-family genes cause resistance to venetoclax in hematologic malignancies

威尼斯人 彪马 癌症研究 MCL1 阿扎胞苷 淋巴瘤 表观遗传学 生物 白血病 医学 免疫学 慢性淋巴细胞白血病 DNA甲基化 遗传学 细胞凋亡 下调和上调 基因 基因表达
作者
Daniel Thomalla,Laura Beckmann,Christina Grimm,Matteo Oliverio,Lydia Meder,Carmen Herling,Pascal Nieper,T. Feldmann,Olaf Merkel,Eva Lorsy,Alexandra da Palma Guerreiro,J. von Jan,Ilmars Kisis,Elena Wasserburger,Julia Claasen,E. Faitschuk-Meyer,Janine Altmüller,Peter Nürnberg,T.-P. Yang,Matthias Lienhard
出处
期刊:Blood [Elsevier BV]
卷期号:140 (20): 2113-2126 被引量:78
标识
DOI:10.1182/blood.2021014304
摘要

The BCL2 inhibitor venetoclax has been approved to treat different hematological malignancies. Because there is no common genetic alteration causing resistance to venetoclax in chronic lymphocytic leukemia (CLL) and B-cell lymphoma, we asked if epigenetic events might be involved in venetoclax resistance. Therefore, we employed whole-exome sequencing, methylated DNA immunoprecipitation sequencing, and genome-wide clustered regularly interspaced short palindromic repeats (CRISPR)/CRISPR-associated protein 9 screening to investigate venetoclax resistance in aggressive lymphoma and high-risk CLL patients. We identified a regulatory CpG island within the PUMA promoter that is methylated upon venetoclax treatment, mediating PUMA downregulation on transcript and protein level. PUMA expression and sensitivity toward venetoclax can be restored by inhibition of methyltransferases. We can demonstrate that loss of PUMA results in metabolic reprogramming with higher oxidative phosphorylation and adenosine triphosphate production, resembling the metabolic phenotype that is seen upon venetoclax resistance. Although PUMA loss is specific for acquired venetoclax resistance but not for acquired MCL1 resistance and is not seen in CLL patients after chemotherapy-resistance, BAX is essential for sensitivity toward both venetoclax and MCL1 inhibition. As we found loss of BAX in Richter's syndrome patients after venetoclax failure, we defined BAX-mediated apoptosis to be critical for drug resistance but not for disease progression of CLL into aggressive diffuse large B-cell lymphoma in vivo. A compound screen revealed TRAIL-mediated apoptosis as a target to overcome BAX deficiency. Furthermore, antibody or CAR T cells eliminated venetoclax resistant lymphoma cells, paving a clinically applicable way to overcome venetoclax resistance.
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