Bioinformatic approach to identifying causative missense polymorphisms in animal genomes.

IF 3.7 2区 生物学 Q2 BIOTECHNOLOGY & APPLIED MICROBIOLOGY BMC Genomics Pub Date : 2024-12-19 DOI:10.1186/s12864-024-11126-z
Mykyta Peka, Viktor Balatsky
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Abstract

Background: Trends in the development of genetic markers for the purposes of genomic and marker-assisted selection primarily focus on identifying causative polymorphisms. Using these polymorphisms as markers enables a more accurate association between genotype and phenotype. Bioinformatic analysis allows calculating the impact of missense polymorphisms on the structural and functional characteristics of proteins, which makes it promising for identifying causative polymorphisms. In this study, a bioinformatic approach is applied to evaluate and differentiate polymorphisms based on their causality in genes that affect the production traits of pigs and cows, which are two important livestock species.

Results: The influence of both known causative and candidate missense polymorphisms in the MC4R, NR6A1, PRKAG3, RYR1, and SYNGR2 genes of pigs, as well as the ABCG2, DGAT1, GHR, and MSTN genes of cows, was assessed. The study included an evaluation of the effect of polymorphisms on protein functions, considering the evolutionary and physicochemical characteristics of amino acids at polymorphic sites. Additionally, it examined the impact of polymorphisms on the stability of tertiary protein structures, including changes in folding, binding of protein monomers, and interaction with ligands.

Conclusions: The comprehensive bioinformatic analysis used in this study enables the differentiation of polymorphisms into neutral, where both amino acids in the polymorphic site do not significantly affect the structure and function of the protein, and causative, where one of the amino acids significantly impacts the protein's properties. This approach can be employed in future research to screen extensive sets of polymorphisms in animal genomes, identifying the most promising polymorphisms for further investigation in association studies.

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鉴定动物基因组中致病错义多态性的生物信息学方法。
背景:以基因组和标记辅助选择为目的的遗传标记的发展趋势主要集中在确定致病多态性上。使用这些多态性作为标记可以更准确地将基因型和表型联系起来。生物信息学分析允许计算错义多态性对蛋白质结构和功能特征的影响,这使得它有希望识别致病多态性。本研究采用生物信息学方法,基于影响猪和牛这两种重要家畜品种生产性状的基因的因果关系来评估和区分多态性。结果:评估了猪的MC4R、NR6A1、PRKAG3、RYR1和SYNGR2基因以及奶牛的ABCG2、DGAT1、GHR和MSTN基因的已知致病和候选错义多态性的影响。该研究包括评估多态性对蛋白质功能的影响,考虑多态性位点氨基酸的进化和物理化学特征。此外,它还研究了多态性对三级蛋白质结构稳定性的影响,包括折叠的变化、蛋白质单体的结合以及与配体的相互作用。结论:本研究中使用的综合生物信息学分析可以将多态性区分为中性型和致病型,即多态性位点上的两个氨基酸对蛋白质的结构和功能都没有显著影响,而致病型则是其中一个氨基酸对蛋白质的特性有显著影响。这种方法可以在未来的研究中用于筛选动物基因组中的大量多态性,确定最有希望在关联研究中进一步研究的多态性。
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来源期刊
BMC Genomics
BMC Genomics 生物-生物工程与应用微生物
CiteScore
7.40
自引率
4.50%
发文量
769
审稿时长
6.4 months
期刊介绍: BMC Genomics is an open access, peer-reviewed journal that considers articles on all aspects of genome-scale analysis, functional genomics, and proteomics. BMC Genomics is part of the BMC series which publishes subject-specific journals focused on the needs of individual research communities across all areas of biology and medicine. We offer an efficient, fair and friendly peer review service, and are committed to publishing all sound science, provided that there is some advance in knowledge presented by the work.
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