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Mitochondrial DNA alterations may influence the cisplatin responsiveness of oral squamous cell carcinoma. | LitMetric

Mitochondrial DNA alterations may influence the cisplatin responsiveness of oral squamous cell carcinoma.

Sci Rep

Drug and Herbal Research Centre, Faculty of Pharmacy, Universiti Kebangsaan Malaysia, Jalan Raja Muda Abdul Aziz, 50300, Kuala Lumpur, Malaysia.

Published: May 2020

AI Article Synopsis

  • Cisplatin is the primary treatment for oral squamous cell carcinoma (OSCC), but its effectiveness is often reduced due to cellular resistance.
  • This study investigates the relationship between mitochondrial DNA (mtDNA) changes and cisplatin sensitivity in OSCC cell lines and stem cell-like tumor spheres, revealing that altered energy metabolism may lead to resistance.
  • Using advanced sequencing techniques, the research found that variations in mtDNA content and structure in different cell lines could explain their differing responses to cisplatin, suggesting a need for further study on mtDNA's role in treatment outcomes.

Article Abstract

Cisplatin is the first-line chemotherapeutic agent for the treatment of oral squamous cell carcinoma (OSCC). However, the intrinsic or acquired resistance against cisplatin remains a major obstacle to treatment efficacy in OSCC. Recently, mitochondrial DNA (mtDNA) alterations have been reported in a variety of cancers. However, the role of mtDNA alterations in OSCC has not been comprehensively studied. In this study, we evaluated the correlation between mtDNA alterations (mtDNA content, point mutations, large-scale deletions, and methylation status) and cisplatin sensitivity using two OSCC cell lines, namely SAS and H103, and stem cell-like tumour spheres derived from SAS. By microarray analysis, we found that the tumour spheres profited from aberrant lipid and glucose metabolism and became resistant to cisplatin. By qPCR analysis, we found that the cells with less mtDNA were less responsive to cisplatin (H103 and the tumour spheres). Based on the findings, we theorised that the metabolic changes in the tumour spheres probably resulted in mtDNA depletion, as the cells suppressed mitochondrial respiration and switched to an alternative mode of energy production, i.e. glycolysis. Then, to ascertain the origin of the variation in mtDNA content, we used MinION, a nanopore sequencer, to sequence the mitochondrial genomes of H103, SAS, and the tumour spheres. We found that the lower cisplatin sensitivity of H103 could have been caused by a constellation of genetic and epigenetic changes in its mitochondrial genome. Future work may look into how changes in mtDNA translate into an impact on cell function and therefore cisplatin response.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC7217862PMC
http://dx.doi.org/10.1038/s41598-020-64664-3DOI Listing

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