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鸟苷素有害单核苷酸多态性的计算分析与预测

Computational analyses and prediction of guanylin deleterious SNPs.

作者信息

Porto William F, Franco Octávio L, Alencar Sérgio A

机构信息

Programa de Pós-Graduação em Ciências Genômicas e Biotecnologia, Universidade Católica de Brasília, Brasília-DF, Brazil; Centro de Análises Proteômicas e Bioquímicas, Pós-Graduação em Ciências Genômicas e Biotecnologia, Universidade Católica de Brasília, Brasília-DF, Brazil.

Programa de Pós-Graduação em Ciências Genômicas e Biotecnologia, Universidade Católica de Brasília, Brasília-DF, Brazil; Centro de Análises Proteômicas e Bioquímicas, Pós-Graduação em Ciências Genômicas e Biotecnologia, Universidade Católica de Brasília, Brasília-DF, Brazil; C S-Inova, Pos-Graduação em Biotecnologia, Universidade Católica Dom Bosco, Campo Grande, MS, Brazil.

出版信息

Peptides. 2015 Jul;69:92-102. doi: 10.1016/j.peptides.2015.04.013. Epub 2015 Apr 18.

Abstract

Human guanylin, coded by the GUCA2A gene, is a member of a peptide family that activates intestinal membrane guanylate cyclase, regulating electrolyte and water transport in intestinal and renal epithelia. Deregulation of guanylin peptide activity has been associated with colon adenocarcinoma, adenoma and intestinal polyps. Besides, it is known that mutations on guanylin receptors could be involved in meconium ileus. However, there are no previous works regarding the alterations driven by single nucleotide polymorphisms in guanylin peptides. A comprehensive in silico analysis of missense SNPs present in the GUCA2A gene was performed taking into account 16 prediction tools in order to select the deleterious variations for further evaluation by molecular dynamics simulations (50 ns). Molecular dynamics data suggest that the three out of five variants (Cys104Arg, Cys112Ser and Cys115Tyr) have undergone structural modifications in terms of flexibility, volume and/or solvation. In addition, two nonsense SNPs were identified, both preventing the formation of disulfide bonds and resulting in the synthesis of truncated proteins. In summary the structural analysis of missense SNPs is important to decrease the number of potential mutations to be in vitro evaluated for associating them with some genetic diseases. In addition, data reported here could lead to a better understanding of structural and functional aspects of guanylin peptides.

摘要

人鸟苷素由GUCA2A基因编码,是一种肽家族成员,可激活肠膜鸟苷酸环化酶,调节肠道和肾上皮细胞中的电解质和水运输。鸟苷素肽活性失调与结肠腺癌、腺瘤和肠息肉有关。此外,已知鸟苷素受体的突变可能与胎粪性肠梗阻有关。然而,以前没有关于鸟苷素肽单核苷酸多态性驱动的改变的研究。考虑到16种预测工具,对GUCA2A基因中存在的错义单核苷酸多态性进行了全面的计算机模拟分析,以选择有害变异,通过分子动力学模拟(50纳秒)进行进一步评估。分子动力学数据表明,五个变体中的三个(Cys104Arg、Cys112Ser和Cys115Tyr)在灵活性、体积和/或溶剂化方面发生了结构修饰。此外,还鉴定出两个无义单核苷酸多态性,均阻止了二硫键的形成并导致截短蛋白的合成。总之,错义单核苷酸多态性的结构分析对于减少体外评估的潜在突变数量非常重要,以便将它们与某些遗传疾病联系起来。此外,这里报告的数据可能有助于更好地理解鸟苷素肽的结构和功能方面。

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