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Immunodetection of Outer Membrane Proteins by Flow Cytometry of Isolated Mitochondria
Published on: September 18, 2014
NMR Structural and Biophysical Analysis of the Disease-Linked Inner Mitochondrial Membrane Protein MPV17
1Structural Membrane Biochemistry, Bavarian NMR Center (BNMRZ) at the Department of Chemistry, Technical University of Munich, Ernst-Otto-Fischer-Str. 2, 85748 Garching, Germany.
Abstract:
MPV17 is an integral inner mitochondrial membrane protein, whose loss-of-function is linked to the hepatocerebral form of the mitochondrial-DNA-depletion syndrome, leading to a tissue-specific reduction of mitochondrial DNA and organ failure in infants. Several disease-causing mutations in MPV17 have been identified and earlier studies with reconstituted protein suggest that MPV17 forms a high conductivity channel in the membrane. However, the molecular and structural basis of the MPV17 functionality remain only poorly understood. In order to make MPV17 accessible to high-resolution structural studies, we here present an efficient protocol for its high-level production in E. coli and refolding into detergent micelles. Using biophysical and NMR methods, we show that refolded MPV17 in detergent micelles adopts a compact structure consisting of six membrane-embedded α-helices. Furthermore, we demonstrate that MPV17 forms oligomers in a lipid bilayer that are further stabilized by disulfide-bridges. In line with these findings, MPV17 could only be inserted into lipid nanodiscs of 8-12 nm in diameter if intrinsic cysteines were either removed by mutagenesis or blocked by chemical modification. Using this nanodisc reconstitution approach, we could show that disease-linked mutations in MPV17 abolish its oligomerization properties in the membrane. These data suggest that, induced by oxidative stress, MPV17 can alter its oligomeric state from a properly folded monomer to a disulfide-stabilized oligomeric pore which might be required for the transport of metabolic DNA precursors into the mitochondrial matrix to compensate for the damage caused by reactive oxygen species.
Insights
MPV17 protein dysfunction causes mitochondrial DNA depletion syndrome. This study reveals MPV17 forms oligomeric pores in mitochondrial membranes, crucial for DNA precursor transport and cellular repair.
Area of Science:
- Mitochondrial biology
- Molecular genetics
- Biophysics
Background:
- MPV17 is an inner mitochondrial membrane protein.
- Loss-of-function mutations cause hepatocerebral mitochondrial DNA depletion syndrome.
- The precise function and structure of MPV17 remain poorly understood.
Purpose of the Study:
- To elucidate the molecular and structural basis of MPV17 function.
- To develop a method for high-level MPV17 production and structural analysis.
- To investigate the role of MPV17 oligomerization in disease.
Main Methods:
- High-level expression and refolding of MPV17 in E. coli.
- Biophysical and NMR spectroscopy for structural analysis.
- Lipid nanodisc reconstitution and mutagenesis studies.
Main Results:
- Refolded MPV17 adopts a compact, six α-helical structure in detergent micelles.
- MPV17 forms disulfide-stabilized oligomers in lipid bilayers.
- Disease-linked mutations disrupt MPV17 oligomerization.
- MPV17 insertion into nanodiscs requires cysteine modification or removal.
Conclusions:
- MPV17 oligomerization is essential for its function.
- MPV17 may form disulfide-stabilized pores under oxidative stress to transport DNA precursors.
- Understanding MPV17 structure-function provides insights into mitochondrial DNA depletion syndrome.
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