Autophagy inhibitors regulate TRAIL sensitivity in human malignant cells by targeting the mitochondrial network and

Asuka Onoe-Takahashi1, Manami Suzuki-Karasaki2, Miki Suzuki-Karasaki2

  • 1Division of Physiology, Department of Biomedical Sciences, Nihon University School of Medicine, Tokyo 173‑8610, Japan.

Insights

Blocking autophagy enhances cancer cell death from drugs. Autophagy inhibitors combined with tumor necrosis factor-related apoptosis-inducing ligand (TRAIL) show promise for treating TRAIL-resistant cancers by disrupting tumor cell mitochondria.

Area of Science:

  • Cell Biology
  • Cancer Research
  • Biochemistry

Background:

  • Autophagy inhibition enhances drug-induced apoptosis in cancer cells, suggesting autophagy counteracts this process.
  • Previous work showed autophagy inhibitors increase sensitivity to tumor necrosis factor-related apoptosis-inducing ligand (TRAIL) in melanoma and osteosarcoma cells.

Purpose of the Study:

  • To investigate how autophagy inhibitors affect mitochondrial networks and calcium (Ca2+) dynamics in tumor cells treated with TRAIL.
  • To compare the effects of TRAIL and autophagy inhibitors on tumor cells versus normal fibroblasts.

Main Methods:

  • Utilized live-cell imaging to observe mitochondrial morphology and dynamics.
  • Assessed cellular responses to TRAIL and various autophagy inhibitors (e.g., 3-methyladenine, chloroquine) alone and in combination.
  • Measured mitochondrial calcium loading and store-operated calcium entry.

Main Results:

  • TRAIL increased autophagic flux in tumor cells but not fibroblasts.
  • TRAIL induced mild mitochondrial fragmentation, while autophagy inhibitors caused fusion in tumor cells.
  • Combined TRAIL and autophagy inhibitor treatment led to severe mitochondrial fragmentation, swelling, and clustering in tumor cells, preceded by reduced mitochondrial Ca2+ uptake.

Conclusions:

  • Co-treatment with TRAIL and autophagy inhibitors causes tumor-selective mitochondrial dysfunction.
  • This combination therapy represents a potential strategy for targeting TRAIL-resistant cancers by exploiting mitochondrial and calcium dysregulation.

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