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Updated: Mar 11, 2026

Merkel Cell Polyomavirus Infection and Detection
Published on: February 7, 2019
Merkel Cell Polyomavirus Small T Antigen Promotes Pro-Glycolytic Metabolic Perturbations Required for Transformation
Christian Berrios1,2, Megha Padi3,4, Mark A Keibler5
1Department of Medical Oncology, Dana-Farber Cancer Institute, Boston, Massachusetts, United States of America.
Abstract:
Merkel cell polyomavirus (MCPyV) is an etiological agent of Merkel cell carcinoma (MCC), a highly aggressive skin cancer. The MCPyV small tumor antigen (ST) is required for maintenance of MCC and can transform normal cells. To gain insight into cellular perturbations induced by MCPyV ST, we performed transcriptome analysis of normal human fibroblasts with inducible expression of ST. MCPyV ST dynamically alters the cellular transcriptome with increased levels of glycolytic genes, including the monocarboxylate lactate transporter SLC16A1 (MCT1). Extracellular flux analysis revealed increased lactate export reflecting elevated aerobic glycolysis in ST expressing cells. Inhibition of MCT1 activity suppressed the growth of MCC cell lines and impaired MCPyV-dependent transformation of IMR90 cells. Both NF-κB and MYC have been shown to regulate MCT1 expression. While MYC was required for MCT1 induction, MCPyV-induced MCT1 levels decreased following knockdown of the NF-κB subunit RelA, supporting a synergistic activity between MCPyV and MYC in regulating MCT1 levels. Several MCC lines had high levels of MYCL and MYCN but not MYC. Increased levels of MYCL was more effective than MYC or MYCN in increasing extracellular acidification in MCC cells. Our results demonstrate the effects of MCPyV ST on the cellular transcriptome and reveal that transformation is dependent, at least in part, on elevated aerobic glycolysis.
Insights
Merkel cell polyomavirus small tumor antigen (ST) drives cancer cell growth by increasing aerobic glycolysis. Inhibiting lactate transporter MCT1 suppresses Merkel cell carcinoma (MCC) growth and transformation.
Area of Science:
- Oncology
- Virology
- Molecular Biology
Background:
- Merkel cell polyomavirus (MCPyV) causes Merkel cell carcinoma (MCC), an aggressive skin cancer.
- The MCPyV small tumor antigen (ST) is crucial for MCC maintenance and cellular transformation.
Purpose of the Study:
- To investigate cellular changes induced by MCPyV ST.
- To understand the role of aerobic glycolysis and MCT1 in MCPyV-driven transformation and MCC.
Main Methods:
- Transcriptome analysis of human fibroblasts expressing MCPyV ST.
- Extracellular flux analysis to measure aerobic glycolysis.
- Inhibition of monocarboxylate transporter 1 (MCT1) and gene knockdown experiments (NF-κB, MYC, MYCL, MYCN).
Main Results:
- MCPyV ST upregulates glycolytic genes, including MCT1, leading to increased aerobic glycolysis and lactate export.
- MCT1 inhibition suppressed MCC cell growth and MCPyV-dependent cell transformation.
- MYC was required for MCT1 induction, and NF-κB (RelA) synergistically regulated MCPyV-induced MCT1 levels.
- MYCL expression enhanced extracellular acidification in MCC cells more than MYC or MYCN.
Conclusions:
- MCPyV ST significantly alters cellular transcriptome, promoting aerobic glycolysis.
- Elevated aerobic glycolysis, mediated by MCT1, is essential for MCPyV-driven cell transformation and MCC progression.
- Synergistic regulation of MCT1 by MYC/MYCL and NF-κB is implicated in MCC pathogenesis.
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