A systematic in-silico functional and structural analysis reveals deleterious missense nsSNPs in the human CSF1R gene.

IF 1 Q4 BIOCHEMISTRY & MOLECULAR BIOLOGY
Purvi Malhotra, Aaryan Jaitly, Harshil Walia, Ojasvi Dutta, Deepanshi Rajput, Mujtaba Husaini, Chander Jyoti Thakur, Sandeep Saini
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Abstract

Colony Stimulating Factor-1 Receptor (CSF1R) is a tyrosine kinase transmembrane receptor that plays a vital role in innate immunity and neurogenesis and controls the differentiation and maintenance of most tissue-resident macrophages. CSF1R mutations have been linked with many neurodegenerative diseases. In this work, we aim to identify the functional and structural impact of deleterious non-synonymous single nucleotide polymorphisms (nsSNPs) mutations on CSF1R, which could help understand the consequences of these mutational changes. A consensus-based prediction approach was used to screen the missense SNPs using six in-silico tools: SIFT, PROVEAN, PMut, MutPred, MISSENSE 3D, and FATHMM. SNPs found to be deleterious by more than five out of six tools were subjected to further analysis, such as protein secondary structure and domain architecture analysis by PSIPRED and NCBI-CDD, respectively. Mutant models of highly deleterious SNPs were modeled using PyMol, followed by energy minimization and Root Mean Square Deviation (RMSD) analysis and molecular dynamic (MD) simulation by YASARA, TM-ALIGN, and WebGro, respectively. Out of 780 missense SNPs screened, we found the four most deleterious SNPs (L301S, A770P, I775N, and F849S) that decreased the protein stability because of their presence in the conserved regions of wild-type CSF1R. Structural and functional studies revealed that these mutations could disrupt the protein's core and surface interactions, leading to destabilization and functional impairment. Moreover, the mutated proteins exhibited enhanced conformational flexibility and instability, as confirmed by MD simulation analysis.

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系统的计算机功能和结构分析揭示了人类CSF1R基因中有害的错义非单核苷酸多态性。
集落刺激因子-1受体(Colony Stimulating Factor-1 Receptor, CSF1R)是一种酪氨酸激酶跨膜受体,在先天免疫和神经发生中起重要作用,并控制大多数组织巨噬细胞的分化和维持。CSF1R突变与许多神经退行性疾病有关。在这项工作中,我们的目标是确定有害的非同义单核苷酸多态性(nssnp)突变对CSF1R的功能和结构影响,这可能有助于理解这些突变变化的后果。采用基于共识的预测方法筛选错义snp,使用六种计算机工具:SIFT, provan, PMut, MutPred, missense 3D和FATHMM。通过6种工具中超过5种发现有害的snp进行进一步分析,例如分别通过PSIPRED和NCBI-CDD进行蛋白质二级结构和结构域结构分析。高度有害snp的突变体模型使用PyMol建模,随后分别使用YASARA、TM-ALIGN和WebGro进行能量最小化和均方根偏差(RMSD)分析和分子动力学(MD)模拟。在筛选的780个错义snp中,我们发现了四个最有害的snp (L301S, A770P, I775N和F849S),它们由于存在于野生型CSF1R的保守区域而降低了蛋白质的稳定性。结构和功能研究表明,这些突变可能破坏蛋白质的核心和表面相互作用,导致不稳定和功能损伤。此外,MD模拟分析证实,突变蛋白表现出增强的构象灵活性和不稳定性。
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来源期刊
Molecular Biology Research Communications
Molecular Biology Research Communications BIOCHEMISTRY & MOLECULAR BIOLOGY-
CiteScore
3.00
自引率
0.00%
发文量
12
期刊介绍: “Molecular Biology Research Communications” (MBRC) is an international journal of Molecular Biology. It is published quarterly by Shiraz University (Iran). The MBRC is a fully peer-reviewed journal. The journal welcomes submission of Original articles, Short communications, Invited review articles, and Letters to the Editor which meets the general criteria of significance and scientific excellence in all fields of “Molecular Biology”.
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