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Updated: Nov 2, 2025

Author Spotlight: Unveiling the Role of TMOD3 in Platinum Resistance and Immune Infiltration in Ovarian Cancer
Published on: August 2, 2024
Mitochondrial structural alterations in ovarian cancer patient-derived xenografts resistant to cisplatin
Francesca Ricci1, Alessandro Corbelli2, Roberta Affatato1,3
1Laboratory of Molecular Pharmacology, Istituto di Ricerche Farmacologiche Mario Negri-IRCCS Via Mario Negri 2, Milan 20156, Italy.
Abstract:
Mitochondria have attracted attention in cancer research as organelles associated with tumor development and response to therapy. We recently reported acquisition of resistance to cisplatin (DDP) associated with a metabolic rewiring in ovarian cancer patient-derived xenografts (PDXs) models. DDP-resistant PDXs models were obtained mimicking the clinical setting, treating mice bearing sensitive-DDP tumors with multiple cycles of DDP until the development of resistance. To further characterize the metabolic rewiring, the present study focused on tumor mitochondria. We analysed by transmission electron microscopy the mitochondria structure in two models of DDP-resistant and the corresponding DDP-sensitive PDXs and evaluated tumor mDNA content, the expression of genes and proteins involved in mitochondria functionality, and mitochondria fitness-related processes, such as autophagy. We observed a decrease in the number of mitochondria paralleled by an increased volume in DDP-resistant versus DDP-sensitive PDXs. DDP-resistant PDXs presented a higher percentage of damaged mitochondria, in particular of type 2 (concave-shape), and type 3 (cristolysis) damage. We found no difference in the mDNA content, and the expression of genes involved in mitochondrial biogenesis was similar between the sensitive and resistant PDXs. An upregulation of some genes involved in mitochondrial fitness in DDP-R versus DDP-S PDXs was observed. At protein level, no difference in the expression of proteins involved in mitochondrial function and biogenesis, and in autophagy/mitophagy was found. We here reported that the acquisition of DDP resistance is associated with morphological alterations in mitochondria, even if we couldn't find any dysregulation in the studied genes/proteins that could explain the observed differences.
Insights
Cisplatin resistance in ovarian cancer is linked to changes in mitochondria structure, not gene or protein expression. Damaged mitochondria increase, but underlying molecular causes remain unclear.
Area of Science:
- Mitochondrial biology
- Cancer research
- Ovarian cancer therapeutics
Background:
- Mitochondria play a key role in cancer development and therapy response.
- Acquired resistance to cisplatin (DDP) in ovarian cancer is associated with metabolic changes.
- Patient-derived xenografts (PDXs) models mimic clinical settings for studying drug resistance.
Purpose of the Study:
- To investigate mitochondrial alterations in DDP-resistant ovarian cancer PDXs.
- To characterize changes in mitochondrial structure, DNA content, gene/protein expression, and fitness processes.
Main Methods:
- Transmission electron microscopy (TEM) for mitochondrial morphology analysis.
- Quantification of mitochondrial DNA (mDNA) content.
- Gene and protein expression analysis for mitochondrial function, biogenesis, and autophagy/mitophagy.
Main Results:
- DDP-resistant PDXs showed decreased mitochondria numbers and increased volume compared to sensitive PDXs.
- A higher percentage of damaged mitochondria (types 2 and 3) was observed in resistant PDXs.
- No significant differences in mDNA content or expression of most studied genes/proteins related to mitochondrial function, biogenesis, or mitophagy were found.
Conclusions:
- Acquisition of DDP resistance in ovarian cancer is associated with significant morphological changes in tumor mitochondria.
- Despite morphological alterations, the study did not identify specific dysregulations in the investigated genes or proteins that explain the observed mitochondrial damage and resistance.
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