4.7 Article

Kaposi's Sarcoma Herpesvirus MicroRNAs Induce Metabolic Transformation of Infected Cells

Journal

PLOS PATHOGENS
Volume 10, Issue 9, Pages -

Publisher

PUBLIC LIBRARY SCIENCE
DOI: 10.1371/journal.ppat.1004400

Keywords

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Funding

  1. Cancer Research UK [C7893/A13100, C7893/A12796]
  2. Leukaemia & Lymphoma Research [10005]
  3. EMBO long-term fellowship [ALTF 1589-2010]
  4. Cancer Research UK [13100] Funding Source: researchfish
  5. Great Ormond Street Hospital Childrens Charity [W1062] Funding Source: researchfish
  6. Medical Research Council [MC_qA137913, MC_U137973817, G1000801g] Funding Source: researchfish
  7. MRC [MC_U137973817, MC_qA137913] Funding Source: UKRI

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Altered cell metabolism inherently connected h pathological conditions including cancer and viral infections. Kaposi' coma-associated herpesvirus (KSHV) is the etiological agent of Kaposrs sarcoma (KS). KS tumour cells display features of lymphatic endothelial differentiation and in their vast majority are latently infected with KSHV, while a small number are lytically infected, producing virions. Latently infected cells express only a subset of viral genes, mainly located within the latency-associated region, among them 12 microRNAs. Notably, the metabolic properties of KSHV-infected cells closely resemble the metabolic hallmarks of cancer cells. However, how and why KSHV alters host cell metabolism remains poorly understood. Here, we investigated the effect of KSHV infection on the metabolic profile of primary dermal microvascular lymphatic endothelial cells (LEC) and the functional relevance of this effect. We found that the KSHV microRNAs within the oncogenic cluster collaborate to decrease mitochondria biogenesis and to induce aerobic glycolysis in infected cells. KSHV microRNAs expression decreases oxygen consumption, increase lactate secretion and glucose uptake, stabilize HIFI a. and decreases mitochondria copy number. Importantly this metabolic shift important for latency maintenance and provides a growth advantage. Mechanistically we show that KSHV alters host cell energy metabolism through microRNA-mediated down regulation of EGLN2 and HSPA9. Our data suggest that h KSHV microRNAs induce a metabolic transformation by concurrent regulation of two independent pathways; transcriptional reprograming via HIFI activation and reduction of mitochondria biogenesis through down regulation of the mitochondrial import machinery. These findings implicate viral microRNAs in the regulation of the cellular metabolism and highlight new potential avenues to inhibit viral latency.

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