Monocarboxylate transporter antagonism reveals metabolic vulnerabilities of viral-driven lymphomas
Epstein-Barr Virus (EBV) is a ubiquitous herpesvirus that typically causes asymptomatic infection but can promote B lymphoid tumors in the immune-suppressed. In vitro, EBV infection of primary B cells stimulates glycolysis during immortalization into lymphoblastoid cell lines (LCLs). Lactate export during glycolysis is crucial for continued proliferation of many cancer cells-part of a phenomenon known as the "Warburg effect," and is mediated by the monocarboxylate transporters 1 and 4 (MCT1 and MCT4). However, the role of MCT1/4 has yet to be studied in EBV-associated malignancies which display Warburg-like metabolism in vitro. Here, we show that EBV infection of B lymphocytes directly promotes temporal induction of MCT1 and MCT4 through the viral proteins EBNA2 and LMP1 respectively, with MCT1 being induced early after infection and MCT4 late. Remarkably, singular MCT1 inhibition early, and dual MCT1/4 inhibition in LCLs using a novel MCT4-selective inhibitor led to growth arrest and lactate buildup. Metabolic profiling in LCLs revealed significatly reduced oxygen consumption rates (OCR) and NAD+/NADH ratios, contrary to prevous observations of increased OCR and unaltered NAD+/NADH ratios in MCT1/MCT4-inhibited cancer cells. Furthermore, U-13C6 glucose labeling of MCT1/4-inhibited LCLs also revealed increased labeling of glutathione in the presence of elevated ROS and depleted glutathione pools, as well as increased labeling of de novo pyrimidine biosynthetic intermediates, suggesting broad effects on LCL metabolism. These vulnerabilities sensitized LCLs as well as EBV+, and the related gammaherpesvirus KSHV+ lymphoma cell lines to killing by metformin and phenformin, pointing at a novel therapeutic approach for viral lymphomas.