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Investigating Protein Sequence-structure-dynamics Relationships with Bio3D-web
Published on: July 16, 2017
Structure-based analysis of VDAC1 protein: defining oligomer contact sites
Shay Geula1, Hammad Naveed, Jie Liang
1Department of Life Sciences and the National Institute for Biotechnology in the Negev, Ben-Gurion University of the Negev, Beer-Sheva 84105, Israel.
Abstract:
The outer mitochondrial membrane protein, the voltage-dependent anion channel (VDAC), is increasingly implicated in the control of apoptosis. Oligomeric assembly of VDAC1 was shown to be coupled to apoptosis induction, with oligomerization increasing substantially upon apoptosis induction and inhibited by apoptosis blockers. In this study, structure- and computation-based selection of the predicated VDAC1 dimerization site, in combination with site-directed mutagenesis, cysteine replacement, and chemical cross-linking, were employed to identify contact sites between VDAC1 molecules in dimers and higher oligomers. The predicted weakly stable β-strands were experimentally found to represent the interfaces between VDAC1 monomers composing the oligomer. Replacing hydrophobic amino acids with charged residues in β-strands 1, 2, and 19 interfered with VDAC1 oligomerization. The proximity of β-strands 1, 2, and 19 within the VDAC1 dimer and the existence of other association sites involving β-strand 16 were confirmed when a cysteine was introduced at defined positions in cysteineless VDAC1 mutants, together with the use of cysteine-specific cross-linker bis(maleimido)ethane. Moreover, the results suggest that VDAC1 also exists as a dimer that upon apoptosis induction undergoes conformational changes and that its oligomerization proceeds through a series of interactions involving two distinct interfaces. Dissection of VDAC1 dimerization/oligomerization as presented here provides structural insight into the oligomeric status of cellular VDAC1 under physiological and apoptotic conditions.
Insights
The voltage-dependent anion channel (VDAC1) oligomerizes during apoptosis. This study identified specific beta-strand interactions critical for VDAC1 dimerization and oligomerization, revealing structural insights into its role in cell death.
Area of Science:
- Cell Biology
- Biochemistry
- Molecular Biology
Background:
- The voltage-dependent anion channel (VDAC) is a crucial outer mitochondrial membrane protein.
- VDAC1 oligomerization is linked to apoptosis induction and can be inhibited by apoptosis blockers.
Purpose of the Study:
- To identify the specific contact sites and structural interfaces involved in VDAC1 dimerization and oligomerization.
- To elucidate the structural basis of VDAC1's oligomeric status in physiological and apoptotic conditions.
Main Methods:
- Structure- and computation-based prediction of VDAC1 dimerization sites.
- Site-directed mutagenesis, cysteine replacement, and chemical cross-linking (bis(maleimido)ethane).
- Analysis of VDAC1 oligomerization upon mutation of specific beta-strands.
Main Results:
- Experimentally confirmed that weakly stable beta-strands form the interfaces between VDAC1 monomers.
- Replacing hydrophobic amino acids with charged residues in beta-strands 1, 2, and 19 disrupted VDAC1 oligomerization.
- Confirmed proximity of beta-strands 1, 2, and 19 in dimers and identified beta-strand 16 as another association site.
Conclusions:
- VDAC1 exists as a dimer that undergoes conformational changes during apoptosis.
- VDAC1 oligomerization involves at least two distinct interfaces, providing structural insights into its function.
- This study dissects VDAC1 dimerization and oligomerization, offering a structural understanding of its role in apoptosis.
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