Comparative Study of Two Himalayan Snow Trouts, Schizothorax esocinus and Schizothorax curvifrons Within the Schizothoracinae and Other Nearest Relatives of Cyprinidae, Inferred from Mitochondrial Sequences of Cytochrome b (Cyt-b) and Cytochrome Oxidase I (Co-I) Gene.

IF 2.1 4区 生物学 Q4 BIOCHEMISTRY & MOLECULAR BIOLOGY Biochemical Genetics Pub Date : 2024-06-19 DOI:10.1007/s10528-024-10862-x
G Akhter, I Ahmed, S M Ahmad
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Abstract

The Himalayan region encompasses varied aquatic ecosystems, characterized by the presence of diverse ichthyofauna, particularly represented by members of the Schizothorax genus, commonly referred to as snow trout. The primary objective of this work was to examine the molecular phylogeny of Schizothoracinae, specifically focusing on the two species, Schizothorax esocinus and Schizothorax curvifrons, which are known to inhabit the northern and north-eastern regions of the Himalayas. This investigation was conducted by analyzing the entire mitochondrial Cyt-b and Co-I gene sequences. The aligned Cyt-b and Co-I sequences for S. esocinus, S. curvifrons, and related members within the subfamily Schizothoracinae, spanned 1130 to 1141 and 1536 to 1551 base pairs, respectively. Using these gene, phylogenetic trees were created to compare Schizothoracinae species to other subfamilies of the family Cyprinidae (Barbinae, Alburninae, Leuciscinae, Xenocyprinae, Cyprininae, and Cultrinae). Genetic distances for Cyt-b and Co-I sequence at three hierarchical levels shows significant disparities in their average score. For Cyt-b, average p-distances for intraspecies, intragenus, and intrafamily were 2.13%, 4.1%, and 15.23%, respectively. Similarly, for Co-I, average p-distances were 1.19%, 3.6%, and 13.8% for intraspecies, intragenus, and intrafamily, respectively. Total number of haplotypes (h) based on Cyt-b and Co-I gene were 6 and 12 within the target Schizothorax spp. In the present study, the observed range of haplotype diversity (hd) for the Cyt-b gene varied from 0.00 to 0.847, with an average haplotype diversity of 0.847 ± 0.034. Similarly, for the Co-I gene, the observed haplotype diversity ranged from 0.00 to 0.931, with an average value of haplotype diversity estimated to be 0.931 ± 0.024. The results of the present study clearly shows that the representative species exhibited close affinities with members of Barbinae and Cyprininae, while other subfamilies formed distinct groups. The findings of the study also indicated that the Cyt-b and Co-I gene exhibits polymorphism and has the potential to serve as a marker for identifying genetic differentiation among populations based on ecological habitats. Mitochondrial Cyt-b and Co-I have been established as a universally accepted and validated genetic marker within a comprehensive bio-identification system at the species level.

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从细胞色素 b (Cyt-b) 和细胞色素氧化酶 I (Co-I) 基因的线粒体序列推断两种喜马拉雅雪鳟鱼 Schizothorax esocinus 和 Schizothorax curvifrons 在鲤科 Schizothoracinae 和其他近亲中的比较研究。
喜马拉雅地区拥有多种多样的水生生态系统,其特点是存在多种多样的鱼类动物,特别是通常被称为雪鳟鱼的Schizothorax属成员。这项工作的主要目的是研究雪鳟鱼科(Schizothoracinae)的分子系统发育,尤其侧重于已知栖息于喜马拉雅山北部和东北部地区的两个物种:Schizothorax esocinus 和 Schizothorax curvifrons。这项研究是通过分析整个线粒体 Cyt-b 和 Co-I 基因序列进行的。S.esocinus、S.curvifrons以及Schizothoracinae亚科相关成员的Cyt-b和Co-I基因序列的比对长度分别为1130至1141个碱基对和1536至1551个碱基对。利用这些基因,建立了系统发生树,以比较 Schizothoracinae 与鲤科其他亚科(Barbinae、Alburninae、Leuciscinae、Xenocyprinae、Cyprinae 和 Cultrinae)的物种。Cyt-b和Co-I序列在三个层次上的遗传距离显示出其平均得分的显著差异。对于 Cyt-b,种内、属内和科内的平均 p-距离分别为 2.13%、4.1% 和 15.23%。同样,对于 Co-I,种内、基因内和族内的平均 p-差异分别为 1.19%、3.6% 和 13.8%。在本研究中,观察到的 Cyt-b 基因单倍型多样性(hd)范围在 0.00 至 0.847 之间,平均单倍型多样性为 0.847 ± 0.034。同样,在 Co-I 基因中,观察到的单倍型多样性在 0.00 至 0.931 之间,单倍型多样性的平均值估计为 0.931 ± 0.024。本研究的结果清楚地表明,代表物种与倒刺鱼科和鲤形目成员有密切的亲缘关系,而其他亚科则形成了不同的群体。研究结果还表明,Cyt-b和Co-I基因具有多态性,可作为根据生态栖息地确定种群遗传分化的标记。线粒体 Cyt-b 和 Co-I 已被确立为物种水平综合生物识别系统中普遍接受和验证的遗传标记。
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来源期刊
Biochemical Genetics
Biochemical Genetics 生物-生化与分子生物学
CiteScore
3.90
自引率
0.00%
发文量
133
审稿时长
4.8 months
期刊介绍: Biochemical Genetics welcomes original manuscripts that address and test clear scientific hypotheses, are directed to a broad scientific audience, and clearly contribute to the advancement of the field through the use of sound sampling or experimental design, reliable analytical methodologies and robust statistical analyses. Although studies focusing on particular regions and target organisms are welcome, it is not the journal’s goal to publish essentially descriptive studies that provide results with narrow applicability, or are based on very small samples or pseudoreplication. Rather, Biochemical Genetics welcomes review articles that go beyond summarizing previous publications and create added value through the systematic analysis and critique of the current state of knowledge or by conducting meta-analyses. Methodological articles are also within the scope of Biological Genetics, particularly when new laboratory techniques or computational approaches are fully described and thoroughly compared with the existing benchmark methods. Biochemical Genetics welcomes articles on the following topics: Genomics; Proteomics; Population genetics; Phylogenetics; Metagenomics; Microbial genetics; Genetics and evolution of wild and cultivated plants; Animal genetics and evolution; Human genetics and evolution; Genetic disorders; Genetic markers of diseases; Gene technology and therapy; Experimental and analytical methods; Statistical and computational methods.
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