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Published on: March 14, 2019
Mechanistic insights into CED-4-mediated activation of CED-3
Weijiao Huang1, Tianyu Jiang, Wooyoung Choi
1Ministry of Education Protein Science Laboratory, Center for Structural Biology, School of Life Sciences.
Abstract:
Programmed cell death in Caenorhabditis elegans requires activation of the caspase CED-3, which strictly depends on CED-4. CED-4 forms an octameric apoptosome, which binds the CED-3 zymogen and facilitates its autocatalytic maturation. Despite recent advances, major questions remain unanswered. Importantly, how CED-4 recognizes CED-3 and how such binding facilitates CED-3 activation remain completely unknown. Here we demonstrate that the L2' loop of CED-3 directly binds CED-4 and plays a major role in the formation of an active CED-4-CED-3 holoenzyme. The crystal structure of the CED-4 apoptosome bound to the L2' loop fragment of CED-3, determined at 3.2 Å resolution, reveals specific interactions between a stretch of five hydrophobic amino acids from CED-3 and a shallow surface pocket within the hutch of the funnel-shaped CED-4 apoptosome. Structure-guided biochemical analysis confirms the functional importance of the observed CED-4-CED-3 interface. Structural analysis together with published evidence strongly suggest a working model in which two molecules of CED-3 zymogen, through specific recognition, are forced into the hutch of the CED-4 apoptosome, consequently undergoing dimerization and autocatalytic maturation. The mechanism of CED-3 activation represents a major revision of the prevailing model for initiator caspase activation.
Insights
The CED-4 apoptosome binds the CED-3 zymogen via its L2' loop, facilitating programmed cell death. This interaction, revealed by crystal structure, revises models of caspase activation.
Area of Science:
- Molecular Biology
- Cell Biology
- Biochemistry
Background:
- Programmed cell death in Caenorhabditis elegans is mediated by caspase CED-3 activation.
- Caspase CED-3 activation is strictly dependent on CED-4, which forms an octameric apoptosome.
- The precise mechanism of CED-4 recognition and CED-3 activation remains elusive.
Purpose of the Study:
- To elucidate the molecular mechanism by which CED-4 recognizes and activates the CED-3 zymogen.
- To determine the structural basis for the interaction between CED-4 and CED-3.
Main Methods:
- X-ray crystallography to determine the structure of the CED-4 apoptosome bound to a CED-3 fragment.
- Structure-guided biochemical analysis to validate functional interactions.
Main Results:
- The L2' loop of CED-3 directly binds to a shallow surface pocket in the CED-4 apoptosome.
- Specific hydrophobic interactions between CED-3 and CED-4 were identified.
- A model proposing CED-4-mediated dimerization and activation of two CED-3 zymogen molecules was proposed.
Conclusions:
- The L2' loop of CED-3 is crucial for CED-4 binding and holoenzyme formation.
- The findings present a revised model for initiator caspase activation, emphasizing CED-4-mediated dimerization.
- This study significantly advances the understanding of programmed cell death regulation.
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