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Heterogeneity of Metabolic Vulnerability in Imatinib -Resistant Gastrointestinal Stromal Tumor
Wen-Kuan Huang1,2, Jiwei Gao1, Ziqing Chen1
1Department of Oncology-Pathology, Karolinska Institutet, BioClinicum J6:20, Karolinska University Hospital, SE-17164 Solna, Sweden.
Abstract:
Metabolic reprogramming is a hallmark of cancer cells in response to targeted therapy. Decreased glycolytic activity with enhanced mitochondrial respiration secondary to imatinib has been shown in imatinib-sensitive gastrointestional stromal tumors (GIST). However, the role of energy metabolism in imatinib-resistant GIST remains poorly characterized. Here, we investigated the effect of imatinib treatment on glycolysis and oxidative phosphorylation (OXPHOS), as well as the effect of inhibition of these energy metabolisms on cell viability in imatinib-resistant and -sensitive GIST cell lines. We observed that imatinib treatment increased OXPHOS in imatinib-sensitive, but not imatinib-resistant, GIST cells. Imatinib also reduced the expression of mitochondrial biogenesis activators (peroxisome proliferator-activated receptor coactivator-1 alpha (PGC1α), nuclear respiratory factor 2 (NRF2), and mitochondrial transcription factor A (TFAM)) and mitochondrial mass in imatinib-sensitive GIST cells. Lower TFAM levels were also observed in imatinib-sensitive GISTs than in tumors from untreated patients. Using the Seahorse system, we observed bioenergetics diversity among the GIST cell lines. One of the acquired resistant cell lines (GIST 882R) displayed a highly metabolically active phenotype with higher glycolysis and OXPHOS levels compared with the parental GIST 882, while the other resistant cell line (GIST T1R) had a similar basal glycolytic activity but lower mitochondrial respiration than the parental GIST T1. Further functional assays demonstrated that GIST 882R was more vulnerable to glycolysis inhibition than GIST 882, while GIST T1R was more resistant to OXPHOS inhibition than GIST T1. These findings highlight the diverse energy metabolic adaptations in GIST cells that allow them to survive upon imatinib treatment and reveal the potential of targeting the metabolism for GIST therapy.
Insights
Metabolic reprogramming in gastrointestinal stromal tumors (GIST) influences imatinib resistance. Targeting cancer cell metabolism, including glycolysis and oxidative phosphorylation (OXPHOS), offers potential therapeutic strategies for GIST.
Area of Science:
- Cancer Biology
- Metabolic Pathways
- Gastrointestinal Stromal Tumors (GIST)
Background:
- Metabolic reprogramming is a key adaptation in cancer cells undergoing targeted therapy.
- Imatinib treatment in imatinib-sensitive GIST shows decreased glycolysis and increased mitochondrial respiration (OXPHOS).
- The role of energy metabolism in imatinib-resistant GIST remains largely uncharacterized.
Purpose of the Study:
- To investigate the impact of imatinib on glycolysis and OXPHOS in imatinib-resistant and -sensitive GIST cells.
- To evaluate the effect of inhibiting these metabolic pathways on GIST cell viability.
- To understand the bioenergetic diversity and adaptations in GIST cells contributing to imatinib resistance.
Main Methods:
- Utilized Seahorse system to measure glycolysis and OXPHOS in GIST cell lines.
- Assessed the expression of mitochondrial biogenesis activators (PGC1α, NRF2, TFAM) and mitochondrial mass.
- Performed functional assays to test the sensitivity of GIST cells to glycolysis and OXPHOS inhibition.
Main Results:
- Imatinib increased OXPHOS in sensitive GIST cells but not in resistant cells.
- Imatinib reduced mitochondrial biogenesis and mass in sensitive GIST cells.
- Resistant GIST cell lines exhibited diverse metabolic phenotypes, with one showing increased glycolysis and OXPHOS, and another showing reduced mitochondrial respiration.
Conclusions:
- GIST cells display diverse metabolic adaptations to survive imatinib treatment.
- Specific resistant GIST subtypes show differential vulnerabilities to glycolysis or OXPHOS inhibition.
- Targeting cancer cell metabolism presents a promising therapeutic avenue for imatinib-resistant GIST.
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