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Crystallizing Membrane Proteins for Structure Determination using Lipidic Mesophases
Published on: November 21, 2010
Structural characterization of the human membrane protein VDAC2 in lipid bilayers by MAS NMR
Matthew T Eddy1,2,3, Tsyr-Yan Yu4,5, Gerhard Wagner4
1Department of Chemistry, Massachusetts Institute of Technology, Cambridge, MA, 02139, USA.
Abstract:
The second isoform of the human voltage dependent anion channel (VDAC2) is a mitochondrial porin that translocates calcium and other metabolites across the outer mitochondrial membrane. VDAC2 has been implicated in cardioprotection and plays a critical role in a unique apoptotic pathway in tumor cells. Despite its medical importance, there have been few biophysical studies of VDAC2 in large part due to the difficulty of obtaining homogeneous preparations of the protein for spectroscopic characterization. Here we present high resolution magic angle spinning nuclear magnetic resonance (NMR) data obtained from homogeneous preparation of human VDAC2 in 2D crystalline lipid bilayers. The excellent resolution in the spectra permit several sequence-specific assignments of the signals for a large portion of the VDAC2 N-terminus and several other residues in two- and three-dimensional heteronuclear correlation experiments. The first 12 residues appear to be dynamic, are not visible in cross polarization experiments, and they are not sufficiently mobile on very fast timescales to be visible in 13C INEPT experiments. A comparison of the NMR spectra of VDAC2 and VDAC1 obtained from highly similar preparations demonstrates that the spectral quality, line shapes and peak dispersion exhibited by the two proteins are nearly identical. This suggests an overall similar dynamic behavior and conformational homogeneity, which is in contrast to two earlier reports that suggested an inherent conformational heterogeneity of VDAC2 in membranes. The current data suggest that the sample preparation and spectroscopic methods are likely applicable to studying other human membrane porins, including human VDAC3, which has not yet been structurally characterized.
Insights
High-resolution NMR studies reveal human voltage-dependent anion channel 2 (VDAC2) in lipid bilayers exhibits conformational homogeneity. This finding contrasts previous reports and suggests a similar dynamic behavior to VDAC1.
Area of Science:
- Biophysics
- Structural Biology
- Membrane Protein Research
Background:
- The human voltage-dependent anion channel 2 (VDAC2) is a crucial mitochondrial porin involved in calcium transport and apoptosis.
- Previous biophysical studies of VDAC2 have been limited by challenges in obtaining homogeneous protein preparations.
Purpose of the Study:
- To characterize the structure and dynamics of human VDAC2 in a membrane environment using high-resolution NMR.
- To investigate the conformational homogeneity of VDAC2 and compare it with VDAC1.
Main Methods:
- High-resolution magic angle spinning (HR-MAS) NMR spectroscopy.
- Two- and three-dimensional heteronuclear correlation experiments.
- Preparation of homogeneous human VDAC2 in 2D crystalline lipid bilayers.
Main Results:
- Successful acquisition of high-resolution NMR spectra from homogeneous VDAC2 preparations.
- Sequence-specific assignments for a significant portion of the VDAC2 N-terminus and other residues.
- Identification of dynamic behavior in the first 12 residues of VDAC2.
- Demonstration of nearly identical spectral quality, line shapes, and peak dispersion between VDAC2 and VDAC1.
- Evidence supporting conformational homogeneity of VDAC2 in membranes, contradicting prior studies.
Conclusions:
- The study provides the first high-resolution structural insights into VDAC2 in a membrane environment.
- The findings suggest VDAC2 possesses conformational homogeneity, similar to VDAC1.
- The employed NMR methods are suitable for characterizing other human membrane porins, including VDAC3.
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