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Updated: Mar 30, 2026

Author Spotlight: Transmitochondrial Cybrid Generation Using Cancer Cell Lines
Published on: March 17, 2023
Melanoma cells release dysfunctional mitochondria to the tumor microenvironment and circulation in association with
Nicolás Georges-Calderón1, Camila Fuentes2, Yessia Hidalgo3
1Laboratorio de Medicina Nano-Regenerativa, Centro de Investigación e Innovación Biomédica (CiiB), Universidad de los Andes, Santiago, 7620086, Chile; IMPACT, Center of Interventional Medicine for Precision and Advanced Cellular Therapy, Santiago, 7620086, Chile; Programa de Doctorado en Biomedicina, Facultad de Medicina, Universidad de los Andes, Santiago, 7620086, Chile.
Abstract:
Recent evidence establishes that melanoma cells actively uptake mitochondria from stromal cells; however, the mitochondrial release in a physiological context remains unstudied. Here, we show that melanoma cells release dysfunctional mitochondria into the extracellular space through a predominantly non-vesicular route. Using melanocyte Melan-a and melanoma B16-F1 and B16-F10 cell lines, we observed increased extracellular mitochondrial release in malignant cells. Electron microscopy revealed these mitochondria lacked cristae and were primarily free organelles. Membrane potential analysis confirmed their dysfunctional state. Mitophagy analysis using mtKeima showed that, under oxidative stress, melanoma cells failed to activate canonical mitophagy and instead upregulated mitochondrial release as an alternative MQC mechanism. Western blot analysis revealed a fission-biased mitochondrial network in melanoma cells, with elevated phospho-DRP1/DRP1 ratio, and a tendency to reduce MFN1 and OPA1. Together with PINK1/ATG7 downregulation and BNIP3/NIX upregulation, suggest a secretory mitophagy phenotype. Tumor-derived mitochondria were detected in both the tumor microenvironment and plasma of melanoma-bearing mice, with extracellular mitochondria levels correlating with tumor burden. Plasma from melanoma patients exhibited elevated levels of TOMM20+ mitochondria compared to healthy donors. Transcriptomic analysis of The Cancer Genome Atlas melanoma cohort revealed that high expression of MQC-related genes DRP1 and BNIP3L was associated with worse prognosis. Collectively, our findings uncover a tumor-intrinsic, non-canonical MQC pathway that releases dysfunctional mitochondria. This mechanism establishes a new paradigm of tumor-host systemic communication, wherein circulating tumor-derived mitochondria might actively influence disease progression. These findings open avenues for developing non-invasive biomarkers and therapeutic strategies targeting mitochondrial release.
Insights
Melanoma cells release dysfunctional mitochondria extracellularly via a non-canonical pathway, acting as a novel quality control mechanism. Circulating tumor mitochondria may influence disease progression, offering potential biomarker and therapeutic targets.
Area of Science:
- Cell Biology
- Cancer Biology
- Mitochondrial Biology
Background:
- Melanoma cells are known to uptake mitochondria, but their release mechanisms are unexplored.
- Mitochondrial quality control (MQC) is crucial for cellular health.
Purpose of the Study:
- To investigate the mechanisms and physiological relevance of mitochondrial release by melanoma cells.
- To explore the role of mitochondrial release as an MQC pathway in melanoma.
Main Methods:
- Utilized melanocyte and melanoma cell lines (Melan-a, B16-F1, B16-F10).
- Employed electron microscopy, membrane potential analysis, mtKeima for mitophagy assays, Western blotting, and analysis of The Cancer Genome Atlas (TCGA) data.
- Detected tumor-derived mitochondria in mouse plasma and analyzed plasma from melanoma patients.
Main Results:
- Malignant melanoma cells release dysfunctional, non-cristae mitochondria via a non-vesicular route.
- Melanoma cells upregulate mitochondrial release as an MQC mechanism, failing to activate canonical mitophagy under stress.
- Elevated extracellular mitochondria levels correlate with tumor burden in mice, and circulating mitochondria are increased in melanoma patients.
- High expression of MQC genes DRP1 and BNIP3L is linked to poorer prognosis in melanoma patients.
Conclusions:
- Melanoma cells employ a non-canonical, tumor-intrinsic MQC pathway involving the release of dysfunctional mitochondria.
- This secretory mitophagy phenotype establishes a new model of tumor-host communication, with circulating mitochondria potentially driving disease progression.
- Findings suggest novel non-invasive biomarkers and therapeutic strategies targeting mitochondrial release in melanoma.
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