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Updated: May 27, 2026

Activation of Apoptosis by Cytoplasmic Microinjection of Cytochrome c
Published on: June 29, 2011
Integration of apoptosis and metabolism
C H Yi1, H Vakifahmetoglu-Norberg, J Yuan
1Department of Cell Biology, Harvard Medical School, Boston, Massachusetts 02115, USA.
Abstract:
Apoptotic resistance is a hallmark of human cancers. Recent advances have contributed to our understanding of the molecular mechanisms that intimately integrate cell metabolism and apoptosis. Coordinated activation of the proapoptotic Bcl-2 family and the caspase family during apoptosis often leads to permeabilization of the mitochondrial outer membrane and release of multiple enzymes that normally function in regulating energy production and metabolism. The roles of these metabolic enzymes in promoting caspase activation demonstrate a primordial need to couple apoptotic cell death and metabolic catastrophe during cellular destruction. The Bcl-2 family also directly interacts with the multiple metabolic regulators to protect or promote mitochondrial damage during apoptosis. However, the integration of metabolism and apoptosis is not simply limited to the maintenance of mitochondrial integrity. A recent study demonstrates that the NatA complex, a protein N-α-acetyltransferase complex, is required for DNA damage-mediated apoptosis and suggests that regulation of protein acetylation might provide an important mechanism for regulating apoptotic sensitivity. Since acetyl-CoA (coenzyme A) is a key cofactor for the NatA complex, protein acetylation is subject to the availability of acetyl-CoA and, thus, under metabolic regulation. The revelation that protein N-α-acetylation is regulated by Bcl-xL, a major antiapoptotic mitochondrial protein, demonstrates a mechanism by which metabolism can regulate the activation of multiple key apoptotic factors simultaneously.
Insights
Cancer cells resist apoptosis by linking metabolism and cell death. New findings show protein acetylation, regulated by metabolism and Bcl-xL, controls apoptotic sensitivity, offering novel therapeutic targets.
Area of Science:
- Molecular Biology
- Cellular Metabolism
- Cancer Biology
Background:
- Apoptotic resistance is a key feature of human cancers.
- Metabolism and apoptosis are intricately linked at the molecular level.
- Mitochondrial outer membrane permeabilization releases metabolic enzymes that promote caspase activation.
Purpose of the Study:
- To explore the integration of cell metabolism and apoptosis beyond mitochondrial integrity.
- To investigate the role of protein acetylation in DNA damage-mediated apoptosis.
- To elucidate the mechanism by which metabolic regulation influences apoptotic sensitivity.
Main Methods:
- Review of recent advances in understanding the integration of metabolism and apoptosis.
- Analysis of the role of the NatA complex (protein N-α-acetyltransferase) in apoptosis.
- Examination of the link between acetyl-CoA availability, protein acetylation, and apoptotic regulation.
Main Results:
- The NatA complex is essential for DNA damage-induced apoptosis.
- Protein acetylation, regulated by acetyl-CoA availability, influences apoptotic sensitivity.
- Bcl-xL, an antiapoptotic protein, regulates protein N-α-acetylation, linking metabolism to apoptotic factor activation.
Conclusions:
- Metabolism plays a critical role in regulating apoptotic sensitivity through protein acetylation.
- The interplay between metabolic status, protein acetylation, and Bcl-xL offers a novel mechanism for controlling apoptosis.
- Targeting metabolic regulation of protein acetylation may provide new strategies to overcome cancer's apoptotic resistance.
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