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Reversible folding of human peripheral myelin protein 22, a tetraspan membrane protein
Jonathan P Schlebach1, Dungeng Peng, Brett M Kroncke
1Department of Biochemistry and ‡Center for Structural Biology, Vanderbilt University School of Medicine , Nashville, Tennessee 37232, United States.
Abstract:
Misfolding of the α-helical membrane protein peripheral myelin protein 22 (PMP22) has been implicated in the pathogenesis of the common neurodegenerative disease known as Charcot-Marie-Tooth disease (CMTD) and also several other related peripheral neuropathies. Emerging evidence suggests that the propensity of PMP22 to misfold in the cell may be due to an intrinsic lack of conformational stability. Therefore, quantitative studies of the conformational equilibrium of PMP22 are needed to gain insight into the molecular basis of CMTD. In this work, we have investigated the folding and unfolding of wild type (WT) human PMP22 in mixed micelles. Both kinetic and thermodynamic measurements demonstrate that the denaturation of PMP22 by n-lauroyl sarcosine (LS) in dodecylphosphocholine (DPC) micelles is reversible. Assessment of the conformational equilibrium indicates that a significant fraction of unfolded PMP22 persists even in the absence of the denaturing detergent. However, we find the stability of PMP22 is increased by glycerol, which facilitates quantitation of thermodynamic parameters. To our knowledge, this work represents the first report of reversible unfolding of a eukaryotic multispan membrane protein. The results indicate that WT PMP22 possesses minimal conformational stability in micelles, which parallels its poor folding efficiency in the endoplasmic reticulum. Folding equilibrium measurements for PMP22 in micelles may provide an approach to assess the effects of cellular metabolites or potential therapeutic agents on its stability. Furthermore, these results pave the way for future investigation of the effects of pathogenic mutations on the conformational equilibrium of PMP22.
Insights
Misfolding of peripheral myelin protein 22 (PMP22) causes Charcot-Marie-Tooth disease. This study shows PMP22 has low conformational stability, but glycerol can increase it, offering new research avenues.
Area of Science:
- Biochemistry
- Neuroscience
- Structural Biology
Background:
- Peripheral myelin protein 22 (PMP22) misfolding is linked to Charcot-Marie-Tooth disease (CMTD).
- PMP22's tendency to misfold may stem from inherent conformational instability.
- Understanding PMP22's conformational equilibrium is crucial for elucidating CMTD's molecular basis.
Purpose of the Study:
- To quantitatively investigate the folding and unfolding of wild-type (WT) human PMP22.
- To explore the conformational equilibrium of PMP22 in mixed micelles.
- To establish a foundation for studying PMP22 stability and the impact of mutations.
Main Methods:
- Investigated folding and unfolding of WT human PMP22 in dodecylphosphocholine (DPC) micelles.
- Utilized kinetic and thermodynamic measurements to assess denaturation by n-lauroyl sarcosine (LS).
- Quantified thermodynamic parameters with and without glycerol stabilization.
Main Results:
- Demonstrated reversible denaturation of PMP22 by LS in DPC micelles.
- Found that a significant fraction of unfolded PMP22 exists even without denaturant.
- Observed increased PMP22 stability in the presence of glycerol, aiding thermodynamic analysis.
Conclusions:
- WT PMP22 exhibits minimal conformational stability in micelles, correlating with poor endoplasmic reticulum folding.
- This study is the first to report reversible unfolding of a eukaryotic multispan membrane protein.
- PMP22 micelle folding equilibrium measurements can assess stabilizing agents and inform mutation studies.
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