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Yeast As a Chassis for Developing Functional Assays to Study Human P53
Published on: August 4, 2019
The molecular mechanism of Noxa-induced mitochondrial dysfunction in p53-mediated cell death
Young-Woo Seo1, Jin Na Shin, Kang Hee Ko
1Department of Biochemistry, Chosun University School of Medicine, Dong-Gu, Gwangju 501-759, Korea.
Abstract:
Genotoxic stresses stabilize the p53 tumor suppressor protein which, in turn, transactivates target genes to cause apoptosis. Although Noxa, a "BH3-only" member of the Bcl-2 family, was shown to be a target of p53-mediated transactivation and to function as a mediator of p53-dependent apoptosis through mitochondrial dysfunction, the molecular mechanism by which Noxa causes mitochondrial dysfunction is largely unknown. Here we show that two domains (BH3 domain and mitochondrial targeting domain) in Noxa are essential for the release of cytochrome c from mitochondria. Noxa-induced cytochrome c release is inhibited by permeability transition pore inhibitors such as CsA or MgCl2, and Noxa induces an ultra-structural change of mitochondria yielding "swollen" mitochondria that are unlike changes induced by tBid. This indicates that Noxa may activate the permeability transition-related pore to release cytochrome c from mitochondria into cytosol. Moreover, Bak-oligomerization, which is an essential event for tBid-induced cytochrome c release in the extrinsic death signaling pathway, is not associated with Noxa-induced cytochrome c release. This finding suggests that the pathway of Noxa-induced mitochondrial dysfunction is distinct from the one of tBid-induced mitochondrial dysfunction. Thus, we propose that there are at least two different pathways of mitochondrial dysfunction; one mediated through Noxa in response to genotoxic stresses and the other through tBid in response to death ligands.
Insights
Genotoxic stress triggers p53 protein stabilization, leading to apoptosis. Noxa, a key mediator, induces mitochondrial dysfunction and cytochrome c release via a distinct pathway, separate from tBid.
Area of Science:
- Cellular Biology
- Molecular Biology
- Biochemistry
Background:
- Genotoxic stresses stabilize p53, inducing apoptosis.
- Noxa, a BH3-only protein, mediates p53-dependent apoptosis via mitochondrial dysfunction.
- The precise mechanism of Noxa-induced mitochondrial dysfunction remains unclear.
Purpose of the Study:
- To elucidate the molecular mechanism by which Noxa induces mitochondrial dysfunction.
- To investigate the role of Noxa's domains in cytochrome c release.
- To compare Noxa-mediated mitochondrial dysfunction with that induced by tBid.
Main Methods:
- Investigated the role of Noxa's BH3 and mitochondrial targeting domains in cytochrome c release.
- Utilized permeability transition pore inhibitors (CsA, MgCl2).
- Examined mitochondrial ultrastructural changes and Bak-oligomerization.
Main Results:
- Noxa's BH3 and mitochondrial targeting domains are crucial for cytochrome c release.
- Noxa-induced cytochrome c release is inhibited by permeability transition pore inhibitors.
- Noxa induces mitochondrial swelling, distinct from tBid-induced changes, and does not involve Bak-oligomerization.
Conclusions:
- Noxa likely activates the permeability transition pore to release cytochrome c.
- Noxa-induced mitochondrial dysfunction operates via a pathway distinct from tBid.
- At least two distinct pathways mediate mitochondrial dysfunction: one via Noxa (genotoxic stress) and another via tBid (death ligands).
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