Siramesine triggers cell death through destabilisation of mitochondria, but not lysosomes

M Hafner Česen1, U Repnik, V Turk

  • 11] Department of Biochemistry and Molecular and Structural Biology, Jožef Stefan Institute, Jamova 39, 1000 Ljubljana, Slovenia [2] Jožef Stefan's International Postgraduate School, Jamova 39, 1000 Ljubljana, Slovenia.

Cell Death & Disease
|October 5, 2013
PubMed

Insights

Siramesine induces cancer cell death by destabilizing mitochondria, independent of lysosomal damage. This compound likely targets multiple molecules, not just sigma-2 receptors, offering potential for new anticancer drug development.

Area of Science:

  • Biochemistry
  • Cell Biology
  • Pharmacology

Background:

  • Siramesine, a sigma-2 receptor agonist, shows anticancer activity but its mechanism is unclear.
  • Understanding siramesine's action is crucial for developing novel cancer therapies.

Purpose of the Study:

  • To elucidate the mechanism of siramesine-induced cell death.
  • To investigate the roles of mitochondria and lysosomes in siramesine's anticancer effects.
  • To explore siramesine's molecular targets beyond sigma-2 receptors.

Main Methods:

  • Induction of cell death in cancer cell lines (HaCaT, U-87MG) using siramesine.
  • Assessment of apoptosis, mitochondrial membrane potential (MMP), lysosomal pH, and cathepsin activity.
  • Evaluation of antioxidant effects (α-tocopherol, N-acetyl-cysteine) on siramesine-induced toxicity.

Main Results:

  • Siramesine rapidly induces cell death above 20 μM, involving MMP loss and caspase activation in some cell lines.
  • Lysosomal pH increases without lysosomal membrane permeabilization or enzyme release.
  • Lipophilic antioxidant α-tocopherol mitigates mitochondrial damage but not lysosomal changes.
  • Lower siramesine concentrations (<15 μM) cause delayed cell death linked to metabolic imbalance.
  • Mitochondrial destabilization is a key event, independent of lysosomal damage.

Conclusions:

  • Siramesine-induced cancer cell death primarily results from mitochondrial destabilization.
  • Lysosomal function is altered but not the primary driver of acute cell death.
  • Siramesine's mechanism involves multiple cellular targets, not solely sigma-2 receptors.
  • Findings guide the design of next-generation siramesine analogues for enhanced anticancer potential.

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