Mitochondrial Fission Factor (MFF) Inhibits Mitochondrial Metabolism and Reduces Breast Cancer Stem Cell (CSC)

Rosa Sánchez-Alvarez1, Ernestina Marianna De Francesco2,3, Marco Fiorillo2

  • 1Division of Cancer Sciences, Faculty of Biology, Medicine and Health, School of Medical Sciences, University of Manchester, Manchester, United Kingdom.

Frontiers in Oncology
|November 16, 2020
PubMed

Insights

Enhanced mitochondrial fission impairs cancer stem cell (CSC) metabolism and propagation. Overexpressing Mitochondrial Fission Factor (MFF) in breast cancer cells reduced CSC activity and promoted quiescence, suggesting a therapeutic target.

Area of Science:

  • Cell Biology
  • Cancer Research
  • Mitochondrial Biology

Background:

  • Breast cancer stem cells (CSCs) rely on mitochondrial metabolism for propagation.
  • Targeting mitochondrial function offers a strategy to eradicate CSCs.
  • Mitochondrial fission's role in CSC dysfunction is not fully understood.

Purpose of the Study:

  • To investigate how mitochondrial fission impacts mitochondrial dysfunction, metabolic flux, and stemness in breast cancer cells.
  • To determine if enhanced mitochondrial fission can inhibit CSC propagation.

Main Methods:

  • Generated an isogenic MCF7 cell line overexpressing Mitochondrial Fission Factor (MCF7-MFF).
  • Assessed mitochondrial mass and activity using MitoTracker probes.
  • Analyzed metabolic flux (OXPHOS, glycolysis) via Seahorse XFe96.
  • Evaluated CSC activity using 3D-tumorsphere assays and ALDH activity.

Main Results:

  • MFF overexpression reduced mitochondrial mass and activity.
  • MCF7-MFF cells showed inhibited OXPHOS and glycolysis.
  • CSC activity and ALDH marker expression were significantly reduced in MCF7-MFF cells.
  • Proteomic analysis revealed upregulation of proteins related to mitochondrial dysfunction and quiescence.

Conclusions:

  • Enhanced mitochondrial fission impairs mitochondrial function, inhibiting CSC propagation and promoting quiescence.
  • Targeting mitochondrial fission presents a potential therapeutic strategy for breast cancer treatment.
  • Mitochondrial dysfunction induced by fission can activate cell death pathways.

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