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Visualization of Vascular Ca2+ Signaling Triggered by Paracrine Derived ROS
Published on: December 21, 2011
Ca2+ overload- and ROS-associated mitochondrial dysfunction contributes to δ-tocotrienol-mediated paraptosis in
Michela Raimondi1, Fabrizio Fontana1, Monica Marzagalli1
1Department of Pharmacological and Biomolecular Sciences, Università degli Studi di Milano, Milan, Italy.
Abstract:
Melanoma is an aggressive tumor with still poor therapy outcomes. δ-tocotrienol (δ-TT) is a vitamin E derivative displaying potent anti-cancer properties. Previously, we demonstrated that δ-TT triggers apoptosis in human melanoma cells. Here, we investigated whether it might also activate paraptosis, a non-canonical programmed cell death. In accordance with the main paraptotic features, δ-TT was shown to promote cytoplasmic vacuolization, associated with endoplasmic reticulum/mitochondrial dilation and protein synthesis, as well as MAPK activation in A375 and BLM cell lines. Moreover, treated cells exhibited a significant reduced expression of OXPHOS complex I and a marked decrease in oxygen consumption and mitochondrial membrane potential, culminating in decreased ATP synthesis and AMPK phosphorylation. This mitochondrial dysfunction resulted in ROS overproduction, found to be responsible for paraptosis induction. Additionally, δ-TT caused Ca2+ homeostasis disruption, with endoplasmic reticulum-derived ions accumulating in mitochondria and activating the paraptotic signaling. Interestingly, by using both IP3R and VDAC inhibitors, a close cause-effect relationship between mitochondrial Ca2+ overload and ROS generation was evidenced. Collectively, these results provide novel insights into δ-TT anti-melanoma activity, highlighting its ability to induce mitochondrial dysfunction-mediated paraptosis. δ-tocotrienol induces paraptotic cell death in human melanoma cells, causing endoplasmic reticulum dilation and mitochondrial swelling. These alterations induce an impairment of mitochondrial function, ROS production and calcium overload.
Insights
Delta-tocotrienol (δ-TT) triggers a non-canonical cell death called paraptosis in human melanoma cells. This vitamin E derivative induces mitochondrial dysfunction, leading to cell death and offering new therapeutic strategies.
Area of Science:
- Oncology
- Cell Biology
- Biochemistry
Background:
- Melanoma is an aggressive cancer with limited treatment options.
- Delta-tocotrienol (δ-TT), a vitamin E derivative, shows anti-cancer effects.
- Previous studies indicated δ-TT induces apoptosis in melanoma cells.
Purpose of the Study:
- To investigate if δ-TT can induce paraptosis, a distinct programmed cell death pathway, in human melanoma.
- To elucidate the mechanisms underlying δ-TT-induced paraptosis.
Main Methods:
- Treatment of A375 and BLM melanoma cell lines with δ-TT.
- Assessment of paraptotic features: cytoplasmic vacuolization, endoplasmic reticulum/mitochondrial dilation.
- Analysis of protein synthesis, MAPK activation, OXPHOS complex I expression, oxygen consumption, mitochondrial membrane potential, ATP synthesis, and AMPK phosphorylation.
- Measurement of reactive oxygen species (ROS) production and intracellular calcium (Ca2+) levels.
- Use of IP3R and VDAC inhibitors to explore the relationship between mitochondrial Ca2+ and ROS.
Main Results:
- δ-TT induced cytoplasmic vacuolization and endoplasmic reticulum/mitochondrial dilation, characteristic of paraptosis.
- δ-TT treatment reduced OXPHOS complex I, oxygen consumption, ATP synthesis, and AMPK phosphorylation, indicating mitochondrial dysfunction.
- Mitochondrial dysfunction led to increased ROS production, which was identified as a key mediator of paraptosis.
- δ-TT disrupted Ca2+ homeostasis, causing mitochondrial Ca2+ overload and activating paraptotic signaling.
- A direct link between mitochondrial Ca2+ accumulation and ROS generation was established.
Conclusions:
- δ-TT effectively induces paraptosis in human melanoma cells.
- The mechanism involves mitochondrial dysfunction, leading to ROS overproduction and Ca2+ dysregulation.
- These findings highlight δ-TT's potential as a therapeutic agent against melanoma by exploiting non-canonical cell death pathways.
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