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AKT2基因与蛋白异常的计算机模拟研究揭示了其与胰岛素抵抗及2型糖尿病的潜在关联。

In Silico Investigation of AKT2 Gene and Protein Abnormalities Reveals Potential Association with Insulin Resistance and Type 2 Diabetes.

作者信息

Elangeeb M E, Elfaki Imadeldin, Elkhalifa M A, Adam Khalid M, Alameen A O, Elfadl Ahmed Kamaleldin, Albalawi Ibrahim Altedlawi, Almasoudi Kholoud S, Almotairi Reema, Alsaedi Basim S O, Alhelali Marwan H, Mir Mohammad Muzaffar, Amle Dnyanesh, Mir Rashid

机构信息

Department of Basic Medical Sciences, College of Applied Medical Sciences, University of Bisha, Bisha 61922, Saudi Arabia.

Department of Biochemistry, Faculty of Science, University of Tabuk, Tabuk 47512, Saudi Arabia.

出版信息

Curr Issues Mol Biol. 2023 Sep 12;45(9):7449-7475. doi: 10.3390/cimb45090471.

Abstract

Type 2 diabetes (T2D) develops from insulin resistance (IR) and the dysfunction of pancreatic beta cells. The AKT2 protein is very important for the protein signaling pathway, and the non-synonymous SNP (nsSNPs) in AKT2 gene may be associated with T2D. nsSNPs can result in alterations in protein stability, enzymatic activity, or binding specificity. The objective of this study was to investigate the effect of nsSNPs on the AKT2 protein structure and function that may result in the induction of IR and T2D. The study identified 20 variants that were considered to be the most deleterious based on a range of analytical tools included (SIFT, PolyPhen2, Mut-pred, SNAP2, PANTHER, PhD-SNP, SNP&Go, MUpro, Cosurf, and I-Mut). Two mutations, p.A179T and p.L183Q, were selected for further investigation based on their location within the protein as determined by PyMol. The results indicated that mutations, p.A179T and p.L183Q alter the protein stability and functional characteristics, which could potentially affect its function. In order to conduct a more in-depth analysis of these effects, a molecular dynamics simulation was performed for wildtype AKT2 and the two mutants (p.A179T and p.L183Q). The simulation evaluated various parameters, including temperature, pressure, density, RMSD, RMSF, SASA, and Region, over a period of 100 ps. According to the simulation results, the wildtype AKT2 protein demonstrated higher stability in comparison to the mutant variants. The mutations p.A179T and p.L183Q were found to cause a reduction in both protein stability and functionality. These findings underscore the significance of the effects of nsSNPs (mutations p.A179T and p.L183Q) on the structure and function of AKT2 that may lead to IR and T2D. Nevertheless, they require further verifications in future protein functional, protein-protein interaction, and large-scale case-control studies. When verified, these results will help in the identification and stratification of individuals who are at risk of IR and T2D for the purpose of prevention and treatment.

摘要

2型糖尿病(T2D)由胰岛素抵抗(IR)和胰腺β细胞功能障碍发展而来。AKT2蛋白对蛋白质信号通路非常重要,AKT2基因中的非同义单核苷酸多态性(nsSNPs)可能与T2D相关。非同义单核苷酸多态性可导致蛋白质稳定性、酶活性或结合特异性的改变。本研究的目的是调查非同义单核苷酸多态性对AKT2蛋白质结构和功能的影响,这可能导致胰岛素抵抗和2型糖尿病的发生。该研究基于一系列分析工具(SIFT、PolyPhen2、Mut-pred、SNAP2、PANTHER、PhD-SNP、SNP&Go、MUpro、Cosurf和I-Mut)确定了20个被认为是最有害的变异。根据PyMol确定的蛋白质位置,选择了两个突变,即p.A179T和p.L183Q进行进一步研究。结果表明,p.A179T和p.L183Q突变改变了蛋白质稳定性和功能特性,这可能会影响其功能。为了更深入地分析这些影响,对野生型AKT2和两个突变体(p.A179T和p.L183Q)进行了分子动力学模拟。该模拟在100皮秒的时间内评估了各种参数,包括温度、压力、密度、均方根偏差(RMSD)、均方根波动(RMSF)、溶剂可及表面积(SASA)和区域。根据模拟结果,与突变体相比,野生型AKT2蛋白表现出更高的稳定性。发现p.A179T和p.L183Q突变导致蛋白质稳定性和功能均降低。这些发现强调了非同义单核苷酸多态性(p.A179T和p.L183Q突变)对AKT2结构和功能的影响的重要性,这可能导致胰岛素抵抗和2型糖尿病。然而,它们需要在未来的蛋白质功能、蛋白质-蛋白质相互作用和大规模病例对照研究中进一步验证。一旦得到验证,这些结果将有助于识别和分层有胰岛素抵抗和2型糖尿病风险的个体,以进行预防和治疗。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8fd0/10528407/49621d217ed7/cimb-45-00471-g001.jpg

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