选择和迁移在(自身)免疫基因进化中的作用》(The Role of Selection and Migration in the Evolution of (Auto)Immunity Genes.

IF 2.1 3区 生物学 Q4 BIOCHEMISTRY & MOLECULAR BIOLOGY
Journal of Molecular Evolution Pub Date : 2024-08-01 Epub Date: 2024-06-26 DOI:10.1007/s00239-024-10182-z
Konstantinos Voskarides
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引用次数: 0

摘要

多发性硬化症的遗传结构十分复杂。此外,不同人群或不同地理区域的发病率也不尽相同。最近的一项研究通过分析古代和现代人类基因组,令人信服地解释了多发性硬化症在欧洲的南北发病梯度。有趣的是,证据显示,在亚洲和欧洲人群中,与多发性硬化症相关的免疫遗传变异经历了正向选择。生活方式和病原体感染可能决定了多发性硬化症的总体风险。这些结果完善了之前的研究结果,这些研究结果表明,与自身免疫相关的遗传变异中有很高的比例处于选择压力之下。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

The Role of Selection and Migration in the Evolution of (Auto)Immunity Genes.

The Role of Selection and Migration in the Evolution of (Auto)Immunity Genes.

The genetic architecture of multiple sclerosis is complicated. Additionally, the disease incidence varies per population or per geographical region. A recent study gives convincing explanations about the north-south incidence gradient of multiple sclerosis in Europe, by analyzing ancient and modern human genomes. Interestingly, the evidence shows that multiple sclerosis associated immunogenetic variants underwent positive selection in Asian and European populations. Lifestyle and pathogen infections probably shaped the overall multiple sclerosis risk. These results complete the findings of previous studies that showed that a high percentage of the autoimmunity associated genetic variants are under selection pressure.

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来源期刊
Journal of Molecular Evolution
Journal of Molecular Evolution 生物-进化生物学
CiteScore
5.50
自引率
2.60%
发文量
36
审稿时长
3 months
期刊介绍: Journal of Molecular Evolution covers experimental, computational, and theoretical work aimed at deciphering features of molecular evolution and the processes bearing on these features, from the initial formation of macromolecular systems through their evolution at the molecular level, the co-evolution of their functions in cellular and organismal systems, and their influence on organismal adaptation, speciation, and ecology. Topics addressed include the evolution of informational macromolecules and their relation to more complex levels of biological organization, including populations and taxa, as well as the molecular basis for the evolution of ecological interactions of species and the use of molecular data to infer fundamental processes in evolutionary ecology. This coverage accommodates such subfields as new genome sequences, comparative structural and functional genomics, population genetics, the molecular evolution of development, the evolution of gene regulation and gene interaction networks, and in vitro evolution of DNA and RNA, molecular evolutionary ecology, and the development of methods and theory that enable molecular evolutionary inference, including but not limited to, phylogenetic methods.
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