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Published on: January 7, 2019
Depleting chemoresponsive mitochondrial fission mediator DRP1 does not mitigate sarcoma resistance
Karolina Borankova1,2, Matyas Solny1, Maria Krchniakova1
1Department of Experimental Biology, Faculty of Science, Masaryk University, Brno, Czech Republic.
Abstract:
Specific patterns of mitochondrial dynamics have been repeatedly reported to promote drug resistance in cancer. However, whether targeting mitochondrial fission- and fusion-related proteins could be leveraged to combat multidrug-resistant pediatric sarcomas is poorly understood. Here, we demonstrated that the expression and activation of the mitochondrial fission mediator DRP1 are affected by chemotherapy exposure in common pediatric sarcomas, namely, rhabdomyosarcoma and osteosarcoma. Unexpectedly, decreasing DRP1 activity through stable DRP1 knockdown neither attenuated sarcoma drug resistance nor affected growth rate or mitochondrial network morphology. The minimal impact on sarcoma cell physiology, along with the up-regulation of fission adaptor proteins (MFF and FIS1) detected in rhabdomyosarcoma cells, suggests an alternative DRP1-independent mitochondrial fission mechanism that may efficiently compensate for the lack of DRP1 activity. By exploring the upstream mitophagy and mitochondrial fission regulator, AMPKα1, we found that markedly reduced AMPKα1 levels are sufficient to maintain AMPK signaling capacity without affecting chemosensitivity. Collectively, our findings challenge the direct involvement of DRP1 in pediatric sarcoma drug resistance and highlight the complexity of yet-to-be-characterized noncanonical regulators of mitochondrial dynamics.
Insights
Targeting mitochondrial fission protein DRP1 does not affect drug resistance in pediatric sarcomas. Alternative DRP1-independent mechanisms and regulators like AMPKα1 may play a role in mitochondrial dynamics and cancer progression.
Area of Science:
- Cell Biology
- Cancer Research
- Mitochondrial Dynamics
Background:
- Mitochondrial dynamics are implicated in cancer drug resistance.
- The role of mitochondrial fission/fusion proteins in pediatric sarcomas is unclear.
Purpose of the Study:
- Investigate DRP1's role in multidrug-resistant pediatric sarcomas.
- Explore alternative mechanisms of mitochondrial fission.
Main Methods:
- Stable DRP1 knockdown in rhabdomyosarcoma and osteosarcoma cells.
- Assessed drug resistance, growth rate, and mitochondrial morphology.
- Analyzed expression of fission adaptors (MFF, FIS1) and AMPKα1.
Main Results:
- DRP1 knockdown did not alter drug resistance, growth, or mitochondrial networks.
- Up-regulation of MFF and FIS1 suggests DRP1-independent fission.
- Reduced AMPKα1 levels did not affect chemosensitivity.
Conclusions:
- DRP1 is not directly involved in pediatric sarcoma drug resistance.
- Noncanonical regulators of mitochondrial dynamics are likely involved.
- Further research is needed to characterize these alternative pathways.
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