MCT4 regulates de novo pyrimidine biosynthesis in GBM in a lactate-independent manner

Author:

Spina Raffaella123,Voss Dillon M4,Yang Xiaohua5,Sohn Jason W5,Vinkler Robert5,Schraner Julianna5,Sloan Anthony4,Welford Scott M67,Avril Norbert8,Ames Heather M13,Woodworth Graeme F23,Bar Eli E123ORCID

Affiliation:

1. Department of Pathology, University of Maryland School of Medicine, Baltimore, Maryland, USA

2. Department of Neurosurgery, University of Maryland School of Medicine, Baltimore, Maryland, USA

3. Marlene and Stewart Greenebaum Comprehensive Cancer Center, University of Maryland School of Medicine, Baltimore, Maryland, USA

4. Department of Neurological Surgery, Case Western Reserve University School of Medicine, Cleveland, Ohio, USA

5. Department of Radiation Oncology, Case Western Reserve University School of Medicine, Cleveland, Ohio, USA

6. Department of Radiation Oncology, Miller School of Medicine, University of Miami, Miami, Florida, USA

7. Sylvester Comprehensive Cancer Center, Miller School of Medicine, University of Miami, Miami, Florida, USA

8. Department of Radiology, Division of Nuclear Medicine, Case Western Reserve University School of Medicine, Cleveland, Ohio, USA

Abstract

Abstract Background Necrotic foci with surrounding hypoxic cellular pseudopalisades and microvascular hyperplasia are histological features found in glioblastoma (GBM). We have previously shown that monocarboxylate transporter 4 (MCT4) is highly expressed in necrotic/hypoxic regions in GBM and that increased levels of MCT4 are associated with worse clinical outcomes. Methods A combined transcriptomics and metabolomics analysis was performed to study the effects of MCT4 depletion in hypoxic GBM neurospheres. Stable and inducible MCT4-depletion systems were used to evaluate the effects of and underlining mechanisms associated with MCT4 depletion in vitro and in vivo, alone and in combination with radiation. Results This study establishes that conditional depletion of MCT4 profoundly impairs self-renewal and reduces the frequency and tumorigenicity of aggressive, therapy-resistant, glioblastoma stem cells. Mechanistically, we observed that MCT4 depletion induces anaplerotic glutaminolysis and abrogates de novo pyrimidine biosynthesis. The latter results in a dramatic increase in DNA damage and apoptotic cell death, phenotypes that were readily rescued by pyrimidine nucleosides supplementation. Consequently, we found that MCT4 depletion promoted a significant prolongation of survival of animals bearing established orthotopic xenografts, an effect that was extended by adjuvant treatment with focused radiation. Conclusions Our findings establish a novel role for MCT4 as a critical regulator of cellular deoxyribonucleotide levels and provide a new therapeutic direction related to MCT4 depletion in GBM.

Funder

National Institutes of Health

National Cancer Institute

Publisher

Oxford University Press (OUP)

Subject

Electrical and Electronic Engineering,Building and Construction

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