MiR-200c-based metabolic modulation in glioblastoma cells as a strategy to overcome tumor chemoresistance

Author:

Cardoso Ana M1,Morais Catarina M12,Sousa Madalena12,Rebelo Olinda3,Tão Hermínio4,Barbosa Marcos45,Pedroso de Lima Maria C1,Jurado Amália S12

Affiliation:

1. CNC—Center for Neuroscience and Cell Biology, CIBB—Centre for Innovative Biomedicine and Biotechnology, University of Coimbra, IIIUC—Institute for Interdisciplinary Research, Coimbra, Portugal

2. Department of Life Sciences, University of Coimbra, Calçada Martim de Freitas, Coimbra 3000-456, Portugal

3. Neuropathology Laboratory, Neurology Service, University Hospital of Coimbra, Coimbra 3004-561, Portugal

4. Neurosurgery Service, University Hospital of Coimbra, Coimbra 3004-561, Portugal

5. Faculty of Medicine, University of Coimbra, Coimbra 3000-548, Portugal

Abstract

Abstract Glioblastoma (GB) is the most aggressive and common form of primary brain tumor characterized by fast proliferation, high invasion and resistance to current standard treatment. The average survival rate post-diagnosis is 14.6 months, despite the aggressive standard post-surgery radiotherapy concomitant with chemotherapy with temozolomide (TMZ). Currently, efforts are being endowed to develop new and more efficient therapeutic approaches capable to overcome chemoresistance, inhibit tumor progression and improve overall patient survival rate. Abnormal microRNA (miRNA) expression has been correlated with chemoresistance, proliferation and resistance to apoptosis, which result from their master regulatory role of gene expression. Altered cell metabolism, favoring glycolysis, was identified as an emerging cancer hallmark and has been described in GB, thus offering a new target for innovative GB therapies. In this work, we hypothesized that a gene therapy-based strategy consisting of the overexpression of a miRNA downregulated in GB and predicted to target crucial metabolic enzymes might promote a shift of GB cell metabolism, decreasing the glycolytic dependence of tumor cells and contributing to their sensitization to chemotherapy with TMZ. The increase of miR-200c levels in DBTRG cells resulted in downregulation of messenger RNA of enzymes involved in bioenergetics pathways and impaired cell metabolism and mobility. In addition, miR-200c overexpression prior to DBTRG cell exposure to TMZ resulted in cell cycle arrest. Overall, our results show that miR-200c overexpression could offer a way to overcome chemoresistance developed by GB cells in response to current standard chemotherapy, providing an improvement to current GB standard treatment, with benefit for patient outcome.

Funder

Portuguese national funds via FCT—Fundação para a Ciência e a Tecnologia

COMPETE 2020—Operational Programme for Competitiveness and Internationalisation

Centro 2020 Regional Operational Programme

Publisher

Oxford University Press (OUP)

Subject

Genetics(clinical),Genetics,Molecular Biology,General Medicine

Reference42 articles.

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