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多囊卵巢综合征基因功能单核苷酸多态性的概念化:一种计算机模拟方法。

Conceptualization of functional single nucleotide polymorphisms of polycystic ovarian syndrome genes: an in silico approach.

机构信息

Department of Biotechnology, Manipal School of Life Sciences, MAHE, Manipal, Karnataka, India.

Department of Obstetrics and Gynaecology, Dr. T.M.A Pai Hospital, MMMC, MAHE, Manipal, Karnataka, India.

出版信息

J Endocrinol Invest. 2021 Aug;44(8):1783-1793. doi: 10.1007/s40618-021-01498-4. Epub 2021 Jan 27.

Abstract

PURPOSE

Polycystic ovarian syndrome (PCOS) is a multi-faceted endocrinopathy frequently observed in reproductive-aged females, causing infertility. Cumulative evidence revealed that genetic and epigenetic variations, along with environmental factors, were linked with PCOS. Deciphering the molecular pathways of PCOS is quite complicated due to the availability of limited molecular information. Hence, to explore the influence of genetic variations in PCOS, we mapped the GWAS genes and performed a computational analysis to identify the SNPs and their impact on the coding and non-coding sequences.

METHODS

The causative genes of PCOS were searched using the GWAS catalog, and pathway analysis was performed using ClueGO. SNPs were extracted using an Ensembl genome browser, and missense variants were shortlisted. Further, the native and mutant forms of the deleterious SNPs were modeled using I-TASSER, Swiss-PdbViewer, and PyMOL. MirSNP, PolymiRTS, miRNASNP3, and SNP2TFBS, SNPInspector databases were used to find SNPs in the miRNA binding site and transcription factor binding site (TFBS), respectively. EnhancerDB and HaploReg were used to characterize enhancer SNPs. Linkage Disequilibrium (LD) analysis was performed using LDlink.

RESULTS

25 PCOS genes showed interaction with 18 pathways. 7 SNPs were predicted to be deleterious using different pathogenicity predictions. 4 SNPs were found in the miRNA target site, TFBS, and enhancer sites and were in LD with reported PCOS GWAS SNPs.

CONCLUSION

Computational analysis of SNPs residing in PCOS genes may provide insight into complex molecular interactions among genes involved in PCOS pathophysiology. It may also aid in determining the causal variants and consequently contributing to predicting disease strategies.

摘要

目的

多囊卵巢综合征(PCOS)是一种常见于育龄女性的多方面内分泌疾病,可导致不孕。越来越多的证据表明,遗传和表观遗传变异以及环境因素与 PCOS 有关。由于分子信息有限,解析 PCOS 的分子途径非常复杂。因此,为了探讨 PCOS 中遗传变异的影响,我们对 GWAS 基因进行了作图,并进行了计算分析,以识别 SNPs 及其对编码和非编码序列的影响。

方法

使用 GWAS 目录搜索 PCOS 的致病基因,并使用 ClueGO 进行途径分析。使用 Ensembl 基因组浏览器提取 SNPs,并筛选出错义变异。然后,使用 I-TASSER、Swiss-PdbViewer 和 PyMOL 对有害 SNPs 的天然和突变形式进行建模。使用 MirSNP、PolymiRTS、miRNASNP3 和 SNP2TFBS、SNPInspector 数据库分别在 miRNA 结合位点和转录因子结合位点(TFBS)中查找 SNPs。使用 EnhancerDB 和 HaploReg 分别对增强子 SNPs 进行特征描述。使用 LDlink 进行连锁不平衡(LD)分析。

结果

25 个 PCOS 基因与 18 个途径相互作用。使用不同的致病性预测方法预测 7 个 SNP 具有致病变异。在 miRNA 靶位点、TFBS 和增强子位点发现 4 个 SNP,与报道的 PCOS GWAS SNP 处于 LD 状态。

结论

对位于 PCOS 基因中的 SNPs 进行计算分析,可能有助于深入了解 PCOS 病理生理学中涉及的基因之间复杂的分子相互作用。它还可以帮助确定因果变异体,从而有助于预测疾病策略。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e924/8285346/1a45ec76c7eb/40618_2021_1498_Fig1_HTML.jpg

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