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Updated: Mar 8, 2026

Author Spotlight: Transmitochondrial Cybrid Generation Using Cancer Cell Lines
Published on: March 17, 2023
Mitochondrial mutations and metabolic adaptation in pancreatic cancer
Rae-Anne Hardie1,2, Ellen van Dam1, Mark Cowley1
1The Kinghorn Cancer Centre, Garvan Institute of Medical Research, Darlinghurst, NSW 2010 Australia.
Background:
Pancreatic cancer has a five-year survival rate of ~8%, with characteristic molecular heterogeneity and restricted treatment options. Targeting metabolism has emerged as a potentially effective therapeutic strategy for cancers such as pancreatic cancer, which are driven by genetic alterations that are not tractable drug targets. Although somatic mitochondrial genome (mtDNA) mutations have been observed in various tumors types, understanding of metabolic genotype-phenotype relationships is limited.
Methods:
We deployed an integrated approach combining genomics, metabolomics, and phenotypic analysis on a unique cohort of patient-derived pancreatic cancer cell lines (PDCLs). Genome analysis was performed via targeted sequencing of the mitochondrial genome (mtDNA) and nuclear genes encoding mitochondrial components and metabolic genes. Phenotypic characterization of PDCLs included measurement of cellular oxygen consumption rate (OCR) and extracellular acidification rate (ECAR) using a Seahorse XF extracellular flux analyser, targeted metabolomics and pathway profiling, and radiolabelled glutamine tracing.
Results:
We identified 24 somatic mutations in the mtDNA of 12 patient-derived pancreatic cancer cell lines (PDCLs). A further 18 mutations were identified in a targeted study of ~1000 nuclear genes important for mitochondrial function and metabolism. Comparison with reference datasets indicated a strong selection bias for non-synonymous mutants with predicted functional effects. Phenotypic analysis showed metabolic changes consistent with mitochondrial dysfunction, including reduced oxygen consumption and increased glycolysis. Metabolomics and radiolabeled substrate tracing indicated the initiation of reductive glutamine metabolism and lipid synthesis in tumours.
Conclusions:
The heterogeneous genomic landscape of pancreatic tumours may converge on a common metabolic phenotype, with individual tumours adapting to increased anabolic demands via different genetic mechanisms. Targeting resulting metabolic phenotypes may be a productive therapeutic strategy.
Insights
Pancreatic cancer cells adapt metabolism through various genetic mutations, leading to mitochondrial dysfunction. Targeting these metabolic changes offers a promising therapeutic avenue for this deadly disease.
Area of Science:
- Cancer Biology
- Metabolic Pathways
- Genomics
Background:
- Pancreatic cancer exhibits poor survival rates (~8%) and molecular heterogeneity, limiting treatment options.
- Targeting cancer cell metabolism is a promising strategy, especially for pancreatic cancer driven by non-druggable genetic alterations.
- Somatic mitochondrial DNA (mtDNA) mutations are found in tumors, but their metabolic implications are not well understood.
Purpose of the Study:
- To investigate the relationship between genomic alterations, particularly in mitochondrial DNA, and metabolic phenotypes in pancreatic cancer.
- To identify potential therapeutic targets by understanding how pancreatic tumors adapt their metabolism.
Main Methods:
- Integrated analysis of genomics, metabolomics, and phenotypic assays on patient-derived pancreatic cancer cell lines (PDCLs).
- Targeted sequencing of mitochondrial and nuclear genes involved in mitochondrial function and metabolism.
- Measurement of cellular respiration (OCR) and glycolysis (ECAR), metabolomic profiling, and radiolabeled glutamine tracing.
Main Results:
- Identified 24 somatic mtDNA mutations and 18 nuclear gene mutations in PDCLs, with a bias towards functionally significant mutations.
- Observed metabolic alterations indicative of mitochondrial dysfunction, including decreased oxygen consumption and increased glycolysis.
- Detected reductive glutamine metabolism and lipid synthesis, suggesting metabolic adaptation to anabolic demands.
Conclusions:
- Despite genomic heterogeneity, pancreatic tumors may converge on a common metabolic phenotype.
- Tumors utilize diverse genetic mechanisms to adapt metabolism and meet anabolic needs.
- Targeting the resulting metabolic phenotypes presents a viable therapeutic strategy for pancreatic cancer.
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