SIRT2 deacylase modulators control B cell metabolic reprogramming in EBV infection and mitogenic activation

成果类型:
Article
署名作者:
Hill, Kaeden K.; Barry, Ashley P.; Reinoso-Vizcaino, Nicolas M.; Haynes, Lauren E.; Bonglack, Emmanuela N.; Ferreira, Davis F.; Miller, Sara E.; Hirschey, Matthew D.; Chiang, Lillian W.; Remiszewski, Stacy; Luftig, Micah A.
署名单位:
Duke University; University of Cambridge; Duke University; Duke University; National University of Singapore
刊物名称:
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA
ISSN/ISSBN:
0027-8424; 1091-6490
DOI:
10.1073/pnas.2532225123
发表日期:
2026-09-01
页码:
e2532225123
关键词:
B cell Epstein-Barr virus lymphoma sirtuin mitochondria PROTEIN ACYLATION tumor-suppressor gene-expression CALCIUM-IONS acetylation SIRTUINS deacetylation regulators survival stress
摘要:
Sirtuin-2 (SIRT2) is a cellular deacylase, regulating cell cycle progression and metabolic homeostasis. Recently, SIRT2 has emerged as a target with both anticancer and antiviral potential. However, the role and targetability of SIRT2 in viral-driven cancers remains unexplored. Epstein-Barr virus (EBV) is a ubiquitous herpesvirus with oncogenic potential that establishes latency in B lymphocytes and is typically controlled by a robust T cell immune response. In settings that compromise this response, such as immune suppression following transplant, EBV can cause B cell lymphomas. With broad immunosuppression and varying response rates limiting the effectiveness of existing lymphoma therapeutics, new strategies are necessary. Here, we report that SIRT2-selective compounds block EBV-mediated B cell transformation and EBV or mitogen-driven B cell division in vitro. SIRT2 modulation significantly alters gene expression and metabolism of EBV-infected B cells, reducing mitochondrial respiration, driving mitochondrial swelling, and inducing nutrient stress and autophagy. Treatment with SIRT2 modulators drives hyperacetylation of targets involved in lipid metabolism, central carbon metabolism, and oxidative phosphorylation. EBV-positive and EBV-negative B cell lymphomas rely on glycolysis to avoid cell death after SIRT2 modulation, revealing a metabolic vulnerability that can be harnessed to kill lymphoma cells. Overall, we have identified how SIRT2 could be implicated as a target of therapeutic potential for B cell lymphomas, while also defining fundamental roles for extranuclear lysine acetylation in regulating B cell proliferation and metabolism.
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