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Saddam, M.

Publications and source records attributed to Saddam, M..

3 recordsLinked to original sources

Engineered BCL6 BTB Domain of the Bcl-2 Protein Family shows Dynamic Structural Behavior: Insights from Molecular Dynamics Simulations

Apoptosis is crucially regulated by the Bcl-6 protein, and mutations in this protein can have a significant impact on many malignancies. In this study, we used molecular dynamics simulations to examine the effects of specific mutations (Q8C, R67C, and N84C) in the crystal structure of the BCL6 BTB domain in a compound with pyrazole-pyrimidine ligand. We concentrated on comprehending the dynamics of these alterations and their possible effects on the emergence of cancer. To explore the structural and dynamic changes induced by these mutations, we performed in silico simulations using the GROMACS software suite (version 5.2, 2020.1) on Google Colabs Tesla T4 GPU. The crystal structure of the BCL6 BTB domain in complex with the pyrazole-pyrimidine ligand (PDB ID: 5N20) served as the wild-type reference structure. Mutations were imposed using the Rotamer functions of Chimera. The simulations were carried out for a total duration of 20 ns using a time step of 2 femtoseconds (0.002 ps). The Trajectory profiles of the BCL6 BTB domain protein and its three mutations, Q8C, R67C and N84C, were shown to differ from each other. Based on the analysis of RMSD, RMSF, and Rg, it was determined that the mutant 2 (R67C) protein exhibited increased instability and greater flexibility. In contrast, mutant 3 (N84C) demonstrates a heightened level of compactness and greater stability compared to the remaining protein mutant. PCA also provides information regarding the structural dynamics of these mutants. In addition, the SASA and SASA autocorrelation provides a distinct view of the solvent accessibility of these proteins.

bioinformatics↗

Impact of Point Mutation on Shiga-like Toxin 1: A Molecular Dynamics Simulation Study

The causative agent of gastroenteritis is Shiga toxin, which belongs to a functionally and structurally associated protein family despite each individual having a unique amino acid sequence. After entering the ER lumen and relocating the toxic domain to the cytoplasm, they alter the large subunit of rRNA, preventing protein synthesis and ribosomal damage. Shiga-like toxin-1 (SLT-1) subunit B targets glycolipid receptor Gb3, which plays a significant role in cytotoxicity. Though the mutational effect on subunit B is important for cytotoxicity study, we lack better understanding. Our present study targets the mutational impact of glycine protein at their 62th amino acid sequence of subunit B. For example, how it can alter the receptor-binding capacity and virulence. We used in silico method with GROMACS software suite (version 5.2, 2020.1) on Google Colab for a 100ns (100,000ps) simulation period and UCSF Chimera software for visualizing mutant and wild-type structure similarities. Surprisingly, RMSD, RMSF, and Rg trajectories from the simulation analysis indicated a more stable and compact mutant structure than the wild type. Principle component analysis (PCA) and SASA were visualized for the entire 100ns, which pointed towards homogeneity between both structures and more solvent accessibility in the mutant structure. This mutation may elevate receptor-binding and virulence capacity. Moreover, this finding can offer a better insight for future vaccine production.

bioinformatics↗

A computational investigation on Rho-related GTP-binding protein RhoB through molecular modeling and molecular dynamics simulation study

BackgorundRhoB is a key member of the Rho family of isoprenylated small GTPases which modulate the cellular cytoskeletal organization. It has a crucial role in the neoplastic apoptotic mechanism after DNA damage. Due to the unavailability of 3D structure in the protein data bank database, in this study, we evaluated the structure of a protein, Rho-related GTP-binding protein RhoB. ResultsRhoB has a predicted pI of 5.10, indicating that it is acidic. The GMQE value was used to compute the target-template alignment, and 6hxu.1.A from Homo sapiens was chosen as the template structure, with the model construction task completed using swiss-model. The structural compactibility and stability were revealed after a 100ns molecular dynamics simulation using GROMACA employing the OPLS-AA force field. PCA analysis found residues that are relevant based on their fluctuation acitivity while their location is between 100-110 and 140-150. ConclusionThis study will benefit future investigations addressing the association between gene mutation and abnormalities generated by protein Rho-related GTP-binding protein RhoB in apoptotic events by offering insight into the biophysical phenomenon of Rho-related GTP-binding protein RhoB inhibitors.

bioinformatics↗