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Induction of Invasive Transitional Cell Bladder Carcinoma in Immune Intact Human MUC1 Transgenic Mice: A Model for Immunotherapy Development
Published on: October 30, 2013
Mitochondria are the primary target in isothiocyanate-induced apoptosis in human bladder cancer cells
1Department of Chemoprevention, Roswell Park Cancer Institute, Basic Science 711, Elm and Carlton Streets, Buffalo, NY 14263, USA.
Abstract:
Many isothiocysanates (ITC) are promising cancer-preventive agents, and induction of apoptosis is one of their underlying mechanisms of action. We recently found that caspase-9 was preferentially activated over other initiator caspases in human bladder cancer UM-UC-3 cells. We report here that caspase-9 activation is the major step leading to ITC-induced apoptosis in this cell line. More importantly, our results show that caspase-9 activation by the ITCs may result primarily from mitochondrial damage. Four common naturally occurring ITCs were studied, including allyl ITC, benzyl ITC (BITC), phenethyl ITC (PEITC), and sulforaphane. BITC and PEITC showed more potent mitochondria-damaging ability than the other two ITCs, correlating well with their stronger apoptosis-inducing potentials. Furthermore, BITC and PEITC damaged both the outer and inner mitochondrial membranes. Use of isolated mitochondria allowed us to establish that ITCs, and more importantly their major intracellular derivatives (glutathione conjugates) at concentrations that are readily achievable in cells, damage mitochondria, leading to the collapse of mitochondrial trans-membrane potential and release of cytochrome c. The mitochondria-damaging potencies of the ITCs correlate well with their lipophilicities. Bcl-2 family members are known to influence the stability of mitochondrial membrane. Our results show that the ITCs caused phosphorylation of Bcl-2, induced mitochondrial translocation of Bak, and disrupted the association of Bcl-xl with both Bak and Bax in mitochondrial membrane, indicating that ITC-induced mitochondrial damage results at least in part from modulation of select Bcl-2 family members.
Insights
Isothiocyanates (ITCs) induce apoptosis in bladder cancer cells by damaging mitochondria and activating caspase-9. This mitochondrial damage involves alterations in Bcl-2 family proteins, leading to programmed cell death.
Area of Science:
- Cell Biology
- Cancer Research
- Biochemistry
Background:
- Isothiocyanates (ITCs) are recognized for their cancer-preventive properties.
- Apoptosis induction is a key mechanism of action for ITCs.
- Previous research indicated preferential caspase-9 activation in human bladder cancer cells.
Purpose of the Study:
- To elucidate the role of caspase-9 activation in isothiocyanate-induced apoptosis.
- To investigate the involvement of mitochondrial damage in this process.
- To compare the effects of four natural ITCs on bladder cancer cells.
Main Methods:
- Investigated caspase-9 activation in human bladder cancer UM-UC-3 cells treated with ITCs.
- Assessed mitochondrial damage, including membrane potential and cytochrome c release.
- Analyzed the modulation of Bcl-2 family proteins (Bcl-2, Bcl-xl, Bak, Bax).
Main Results:
- Caspase-9 activation is the primary pathway for ITC-induced apoptosis in UM-UC-3 cells.
- Benzyl isothiocyanate (BITC) and phenethyl isothiocyanate (PEITC) exhibited potent mitochondria-damaging and apoptosis-inducing effects.
- ITCs and their glutathione conjugates damage mitochondria, leading to cytochrome c release and Bcl-2 family protein modulation.
Conclusions:
- ITC-induced apoptosis in bladder cancer cells is predominantly mediated by caspase-9 activation.
- Mitochondrial damage, influenced by Bcl-2 family proteins, is a critical upstream event.
- The lipophilicity of ITCs correlates with their mitochondria-damaging potency.
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