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Updated: Jun 3, 2025

Induction and Diverse Assessment Indicators of Experimental Autoimmune Encephalomyelitis
Published on: September 9, 2022
Molecular dynamics simulation of wild and mutant proteasome subunit beta type 8 (PSMB8) protein: Implications for
Shamrat Kumar Paul1, Md Saddam1, Nisat Tabassum2
1Department of Biochemistry and Molecular Biology, Life Science Faculty, Bangabandhu Sheikh Mujibur Rahman Science and Technology University, Gopalganj, 8100, Bangladesh.
Abstract:
Multiple Sclerosis (MS) is an autoimmune and chronic disease in the brain and spinal cord. MS has inflammatory progression characterized by its hallmark inflammatory plaques. The histological and clinical characteristics of MS are shared by Experimental Autoimmune Encephalomyelitis (EAE). Genetic and environmental factors contribute to the development of MS. In EAE-MS disease, the level of proteasome subunit beta type-8 (PSMB8), encoded by the PSMB8 gene, is increased and regulates the inflammatory response in this disease. In humans, the Nakajo-Nishimura Syndrome is caused by a mutation in the gene PSMB8, a part of the immunoproteasome subunit. Therefore, special attention to wild and mutant (G210V) PSMB8 protein is imperative. In this study, we performed a 100 ns molecular dynamics (MD) simulation for wild-type PSMB8 and the mutant G210V. Then, we analyzed the fundamental and essential simulation results using another Google Colab system. The energy analysis ensures the structural deviation due to point mutation. The trajectory of the fundamental simulation (RMSD, RMSF, and Rg) describes that the G210V mutated protein is more flexible and less stable than the wild type. We observed the conformational changes due to mutation by analyzing the RMSD average linkage hierarchical clustering, total SASA, and SASA autocorrelation. The differences in the protein's overall motion and the atoms' precise location are identified by the principal component analysis, showing that the overall motion and location of the atoms are different. Our study provides valuable insights into the dynamics and structure of this protein, which can aid in further understanding its biological functions and potential implications for disease.
Insights
The G210V mutation in proteasome subunit beta type-8 (PSMB8) protein increases its flexibility and reduces stability compared to the wild type. This finding is crucial for understanding Multiple Sclerosis (MS) and Nakajo-Nishimura Syndrome.
Area of Science:
- Neuroimmunology
- Molecular Biology
- Structural Biology
Background:
- Multiple Sclerosis (MS) is a chronic autoimmune disease affecting the central nervous system, characterized by inflammatory plaques.
- Experimental Autoimmune Encephalomyelitis (EAE) models share histological and clinical features with MS.
- The gene PSMB8, encoding proteasome subunit beta type-8 (PSMB8), is implicated in MS pathogenesis and Nakajo-Nishimura Syndrome.
Purpose of the Study:
- To investigate the structural and dynamic impact of the G210V mutation in PSMB8 protein.
- To compare the stability and conformational changes between wild-type and mutant PSMB8.
- To provide insights into the role of PSMB8 dynamics in disease mechanisms.
Main Methods:
- 100 ns molecular dynamics (MD) simulations of wild-type and G210V mutant PSMB8.
- Analysis of simulation trajectories using Root Mean Square Deviation (RMSD), Root Mean Square Fluctuation (RMSF), and Radius of Gyration (Rg).
- Conformational change analysis via hierarchical clustering, Solvent Accessible Surface Area (SASA), and Principal Component Analysis (PCA).
Main Results:
- The G210V mutation induces significant structural deviation and increased flexibility in PSMB8.
- Mutant PSMB8 exhibits reduced stability compared to the wild-type protein.
- PCA revealed distinct differences in the overall motion and atomic positioning between wild-type and mutant PSMB8.
Conclusions:
- The G210V mutation alters PSMB8 protein dynamics, leading to decreased stability.
- Understanding these dynamic changes is vital for elucidating PSMB8's role in MS and related disorders.
- This study offers valuable structural and dynamic insights for potential therapeutic strategies.
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