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Updated: May 7, 2026

Live-cell Imaging of Lysosomal Membrane Permeabilization During Necroptosis
Published on: November 14, 2025
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.
Abstract:
A sigma-2 receptor agonist siramesine has been shown to trigger cell death of cancer cells and to exhibit a potent anticancer activity in vivo. However, its mechanism of action is still poorly understood. We show that siramesine can induce rapid cell death in a number of cell lines at concentrations above 20 μM. In HaCaT cells, cell death was accompanied by caspase activation, rapid loss of mitochondrial membrane potential (MMP), cytochrome c release, cardiolipin peroxidation and typical apoptotic morphology, whereas in U-87MG cells most apoptotic hallmarks were not notable, although MMP was rapidly lost. In contrast to the rapid loss of MMP above 20 μM siramesine, a rapid increase in lysosomal pH was observed at all concentrations tested (5-40 μM); however, it was not accompanied by lysosomal membrane permeabilisation (LMP) and the release of lysosomal enzymes into the cytosol. Increased lysosomal pH reduced the lysosomal degradation potential as indicated by the accumulation of immature forms of cysteine cathepsins. The lipophilic antioxidant α-tocopherol, but not the hydrophilic antioxidant N-acetyl-cysteine, considerably reduced cell death and destabilisation of mitochondrial membranes, but did not prevent the increase in lysosomal pH. At concentrations below 15 μM, siramesine triggered cell death after 2 days or later, which seems to be associated with a general metabolic and energy imbalance due to defects in the endocytic pathway, intracellular trafficking and energy production, and not by a specific molecular event. Overall, we show that cell death in siramesine-treated cells is induced by destabilisation of mitochondria and is independent of LMP and the release of cathepsins into the cytosol. Moreover, it is unlikely that siramesine acts exclusively through sigma-2 receptors, but rather through multiple molecular targets inside the cell. Our findings are therefore of significant importance in designing the next generation of siramesine analogues with high anticancer potential.
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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