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Activation of Apoptosis by Cytoplasmic Microinjection of Cytochrome c
Published on: June 29, 2011
Altered structure and dynamics of pathogenic cytochrome c variants correlate with increased apoptotic activity
Matthias Fellner1, Rinky Parakra1, Kirstin O McDonald1
1Department of Biochemistry, School of Biomedical Sciences, University of Otago, Dunedin, New Zealand.
Insights
Cytochrome c mutations linked to thrombocytopenia increase apoptosome activation due to enhanced protein flexibility. However, this flexibility does not explain their increased peroxidase activity, revealing complex functional regulation.
Area of Science:
- Biochemistry
- Molecular Biology
- Genetics
Background:
- Cytochrome c mutations cause mild autosomal dominant thrombocytopenia, but the underlying molecular mechanisms are unclear.
- Cytochrome c's role in platelet formation and its gain-of-function mutations are poorly understood.
- Conformational state changes are proposed to regulate cytochrome c function.
Purpose of the Study:
- To investigate structural and functional changes in pathogenic cytochrome c variants.
- To understand how specific mutations affect cytochrome c's apoptosome activation and peroxidase activity.
- To explore the relationship between protein dynamics and cytochrome c's altered functions.
Main Methods:
- Experimental approaches including crystallography.
- Computational methods such as molecular dynamics simulations.
- Analysis of three pathogenic (G41S, Y48H, A51V) and two non-pathogenic (G41A, G41T) cytochrome c variants.
Main Results:
- Pathogenic variants (G41S, Y48H, A51V) showed increased apoptosome activation and peroxidase activity.
- Increased apoptosome activation correlated with enhanced cytochrome c flexibility, particularly Ω loop movement.
- Crystal structures revealed an 'induced fit' mechanism in cytochrome c binding to Apaf-1, enhanced by mobility.
- Peroxidase activity did not correlate with protein dynamics, suggesting a different regulatory mechanism.
Conclusions:
- Conformational dynamics of cytochrome c influence its apoptosome activation but not its peroxidase activity.
- Enhanced protein flexibility in pathogenic variants facilitates binding to Apaf-1, potentially explaining increased apoptosome activation.
- The mechanism for increased peroxidase activity in these variants is independent of native conformational dynamics.
Abstract:
Mutation of cytochrome c in humans causes mild autosomal dominant thrombocytopenia. The role of cytochrome c in platelet formation, and the molecular mechanism underlying the association of cytochrome c mutations with thrombocytopenia remains unknown, although a gain-of-function is most likely. Cytochrome c contributes to several cellular processes, with an exchange between conformational states proposed to regulate changes in function. Here, we use experimental and computational approaches to determine whether pathogenic variants share changes in structure and function, and to understand how these changes might occur. Three pathogenic variants (G41S, Y48H, A51V) cause an increase in apoptosome activation and peroxidase activity. Molecular dynamics simulations of these variants, and two non-naturally occurring variants (G41A, G41T), indicate that increased apoptosome activation correlates with the increased overall flexibility of cytochrome c, particularly movement of the Ω loops. Crystal structures of Y48H and G41T complement these studies which overall suggest that the binding of cytochrome c to apoptotic protease activating factor-1 (Apaf-1) may involve an 'induced fit' mechanism which is enhanced in the more conformationally mobile variants. In contrast, peroxidase activity did not significantly correlate with protein dynamics. Thus, the mechanism by which the variants increase peroxidase activity is not related to the conformational dynamics of the native hexacoordinate state of cytochrome c. Recent molecular dynamics data proposing conformational mobility of specific cytochrome c regions underpins changes in reduction potential and alkaline transition pK was not fully supported. These data highlight that conformational dynamics of cytochrome c drive some but not all of its properties and activities.
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