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Examining BCL-2 Family Function with Large Unilamellar Vesicles
Published on: October 5, 2012
Involvement of proapoptotic Bcl-2 family members in parthenolide-induced mitochondrial dysfunction and apoptosis
Siyuan Zhang1, Choon-Nam Ong, Han-Ming Shen
1Department of Community, Occupational and Family Medicine, Faculty of Medicine (MD3), National University of Singapore, 16 Medical Drive, Singapore 117597.
Abstract:
Parthenolide is a sesquiterpene lactone responsible for the bioactivities of Feverfew. Besides its potent anti-inflammatory effect, this compound has recently been reported to induce apoptosis in cancer cells, possibly through mitochondrial dysfunction. In the present study, we attempted to examine parthenolide-mediated cell death signaling pathway by focusing on the involvement of Bcl-2 family members. Using a human colorectal cancer cell line COLO205, we first demonstrated that parthenolide acted through the cell death receptor pathway to activate caspase 8. Following caspase 8 activation, Bid, a proapoptotic Bcl-2 member, was cleaved and this cleavage then triggered Bax conformational changes and Bax translocation from cytosol to mitochondrial membrane. Meanwhile, another proapoptotic protein, Bak, was up-regulated and oligomerized on the mitochondrial membrane. All these alterations were found to be prerequisite for the subsequent release of proapopototic mitochondrial proteins, including cytochrome c and Samc, in parthenolide-treated cells. Moreover, selective inhibition of caspase 8 activity by a synthetic caspase inhibitor (IETD-FMK) or overexpression of a viral protein (CrmA) suppressed the cleavage of Bid, conformational changes of Bax, cytochrome c release, and apoptosis. Therefore, the proapoptotic Bcl-2 family members are important mediators relaying the cell death signaling elicited by parthenolide from caspase 8 to downstream effector caspases such as caspase 3, and eventually to cell death.
Insights
Parthenolide induces cancer cell death by activating caspase 8, which triggers mitochondrial changes via Bcl-2 family proteins. This pathway is crucial for parthenolide
Area of Science:
- Molecular Biology
- Cell Biology
- Biochemistry
Background:
- Parthenolide, a sesquiterpene lactone from Feverfew, exhibits anti-inflammatory and anticancer properties.
- Recent studies suggest parthenolide induces cancer cell apoptosis via mitochondrial dysfunction.
Purpose of the Study:
- To investigate the role of Bcl-2 family members in parthenolide-induced cancer cell death signaling.
- To elucidate the specific pathway mediating parthenolide's apoptotic effects.
Main Methods:
- Utilized human colorectal cancer cell line COLO205.
- Examined caspase 8 activation, Bid cleavage, Bax/Bak activity, and mitochondrial protein release.
- Employed caspase 8 inhibition (IETD-FMK) and CrmA overexpression to validate the pathway.
Main Results:
- Parthenolide activated the cell death receptor pathway, initiating caspase 8 activation.
- Caspase 8 activation led to Bid cleavage, Bax conformational changes, and Bak upregulation.
- These events promoted cytochrome c and Samc release from mitochondria, culminating in apoptosis.
Conclusions:
- Proapoptotic Bcl-2 family members are key mediators in parthenolide-induced apoptosis.
- The signaling pathway involves caspase 8 activation, mitochondrial perturbation, and downstream effector caspases.
- Parthenolide effectively triggers cancer cell death through this well-defined molecular cascade.
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