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Disclosing Pathogenic Variant Effects on the Structural Dynamics of the VAPB MSP Domain Causing Familial ALS
Md Abul Bashar1, Nayan Dash2, Sarmistha Mitra3
1Department of Pharmacy, Faculty of Biological Sciences, Islamic University, Kushtia 7003, Bangladesh.
Abstract:
Vesicle-associated membrane protein (VAMP)-associated protein B (VAPB) serves as a tethering factor that interacts with various proteins and recruits these proteins to the ER surface, exerting multiple functions, such as organelle membrane tethering, lipid transfer between organelles, regulation of calcium homeostasis, autophagy, and the unfolded protein response (UPR). Its interaction is often mediated by its MSP (major sperm) domain, which binds with FFAT (two phenylalanines in an acidic tract)-motif-containing proteins. However, pathogenic variations, such as P56S, P56H, and T46I, in the VAPB MSP domain lead to the familial form of amyotrophic lateral sclerosis (ALS8). Still, the underlying pathophysiology of ALS8 due to pathogenic variations in the VAPB MSP domain remains elusive. In this study, we conducted molecular dynamics (MD) simulations to understand the pathogenic-variant-derived changes in the structural dynamics of the VAPB MSP domain. We found that pathogenic variants altered the fluctuations and conformational dynamics of the VAPB protein. Analyzing the organizations of the secondary structure revealed that pathogenic variants changed the composition of secondary structure elements, especially increasing the proportion of α-helix while reducing β-sheet formation, which might affect the organelle tethering and other functions of VAPB, as well as VAPB homodimer and heterodimer formation. Taken together, these findings can be further investigated through in vivo and/or in vitro studies to not only clarify the pathophysiology of ALS8 resulting from VAPB MSP domain pathogenic variants but also develop novel therapeutics for the disease that restore the native structural organizations as well as fluctuations and motions.
Insights
Pathogenic variants in the VAMP-associated protein B (VAPB) MSP domain disrupt its structural dynamics, impacting cellular functions and potentially causing amyotrophic lateral sclerosis (ALS8). Understanding these changes is key to developing new ALS therapies.
Area of Science:
- Neuroscience
- Molecular Biology
- Biochemistry
Background:
- Vesicle-associated membrane protein (VAMP)-associated protein B (VAPB) is crucial for ER functions, including organelle tethering and lipid transfer.
- Pathogenic variations in the VAPB MSP domain are linked to amyotrophic lateral sclerosis type 8 (ALS8).
- The precise molecular mechanisms underlying ALS8 pathogenesis due to VAPB mutations remain unclear.
Purpose of the Study:
- To investigate the structural and dynamic consequences of pathogenic VAPB MSP domain variants using molecular dynamics (MD) simulations.
- To elucidate the molecular pathophysiology of ALS8 linked to VAPB mutations.
Main Methods:
- Molecular dynamics (MD) simulations were employed to analyze the VAPB MSP domain.
- Secondary structure analysis was performed to assess changes in protein organization.
Main Results:
- Pathogenic VAPB variants significantly altered protein fluctuations and conformational dynamics.
- Mutations led to increased alpha-helix content and decreased beta-sheet formation in the VAPB MSP domain.
- These structural changes may impair VAPB's function in organelle tethering and protein interactions.
Conclusions:
- Pathogenic VAPB variants induce detrimental structural and dynamic alterations in the MSP domain.
- These findings provide insights into ALS8 pathophysiology and suggest therapeutic strategies targeting VAPB structure.
- Further in vivo and in vitro studies are warranted to validate these findings and develop treatments.
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