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Published on: March 5, 2018
Regulation of the Apaf-1/caspase-9 apoptosome by caspase-3 and XIAP
Hua Zou1, Ruomei Yang, Junshan Hao
1Idun Pharmaceuticals, Inc., San Diego, California 92121, USA.
Abstract:
The apoptosome is a multiprotein complex comprising Apaf-1, cytochrome c, and caspase-9 that functions to activate caspase-3 downstream of mitochondria in response to apoptotic signals. Binding of cytochrome c and dATP to Apaf-1 in the cytosol leads to the assembly of a heptameric complex in which each Apaf-1 subunit is bound noncovalently to a procaspase-9 subunit via their respective CARD domains. Assembly of the apoptosome results in the proteolytic cleavage of procaspase-9 at the cleavage site PEPD(315) to yield the large (p35) and small (p12) caspase-9 subunits. In addition to the PEPD site, caspase-9 contains a caspase-3 cleavage site (DQLD(330)), which when cleaved, produces a smaller p10 subunit in which the NH(2)-terminal 15 amino acids of p12, including the XIAP BIR3 binding motif, are removed. Using purified proteins in a reconstituted reaction in vitro, we have assessed the relative impact of Asp(315) and Asp(330) cleavage on caspase-9 activity within the apoptosome. In addition, we characterized the effect of caspase-3 feedback cleavage of caspase-9 on the rate of caspase-3 activation, and the potential ramifications of Asp(330) cleavage on XIAP-mediated inhibition of the apoptosome. We have found that cleavage of procaspase-9 at Asp(330) to generate p35, p10 or p37, p10 forms resulted in a significant increase (up to 8-fold) in apoptosome activity compared with p35/p12. The significance of this increase was demonstrated by the near complete loss of apoptosome-mediated caspase-3 activity when a point mutant (D330A) of procaspase-9 was substituted for wild-type procaspase-9 in the apoptosome. In addition, cleavage at Asp(330) exposed a novel p10 NH(2)-terminal peptide motif (AISS) that retained the ability to mediate XIAP inhibition of caspase-9. Thus, whereas feedback cleavage of caspase-9 by caspase-3 significantly increases the activity of the apoptosome, it does little to attenuate its sensitivity to inhibition by XIAP.
Insights
The apoptosome, crucial for apoptosis, becomes up to 8-fold more active when caspase-3 cleaves caspase-9 at Asp(330). This cleavage enhances activity without reducing XIAP inhibition, impacting apoptosis regulation.
Area of Science:
- Cellular biology
- Molecular mechanisms of apoptosis
Background:
- The apoptosome is a key protein complex regulating apoptosis, comprising Apaf-1, cytochrome c, and caspase-9.
- Apoptosome assembly initiates caspase-3 activation, a critical step in programmed cell death.
Purpose of the Study:
- To investigate the impact of specific cleavage sites on caspase-9 activity within the apoptosome.
- To determine how caspase-3 feedback cleavage of caspase-9 affects apoptosome function and XIAP inhibition.
Main Methods:
- In vitro reconstitution assays using purified proteins.
- Site-directed mutagenesis to create a D330A procaspase-9 mutant.
- Assessment of apoptosome activity and caspase-3 activation rates.
Main Results:
- Cleavage of procaspase-9 at Asp(330) by caspase-3 significantly increases apoptosome activity (up to 8-fold).
- A D330A mutant showed a near-complete loss of apoptosome-mediated caspase-3 activity, highlighting Asp(330)'s importance.
- Cleavage at Asp(330) exposes a motif that maintains XIAP inhibition of caspase-9.
Conclusions:
- Caspase-3 feedback cleavage of caspase-9 at Asp(330) is a critical regulator that potentiates apoptosome activity.
- This enhanced apoptosome activity remains sensitive to XIAP-mediated inhibition, suggesting a balanced control mechanism in apoptosis.
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