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南极鳕鱼:基因组资源和分析适应辐射的策略。

Antarctic notothenioid fishes: genomic resources and strategies for analyzing an adaptive radiation.

机构信息

Department of Biology, Northeastern University, Boston, MA 02115, USA.

出版信息

Integr Comp Biol. 2010 Dec;50(6):1009-17. doi: 10.1093/icb/icq071. Epub 2010 Jul 12.

Abstract

The perciform suborder Notothenoidei provides a compelling opportunity to study the adaptive radiation of a marine species-flock in the cold Southern Ocean that surrounds Antarctica. To facilitate genome-level studies of the diversification of these fishes, we present estimates of the genome sizes of 11 Antarctic species and describe the production of high-quality bacterial artificial chromosome (BAC) libraries for two, the red-blooded notothen Notothenia coriiceps and the white-blooded icefish Chaenocephalus aceratus. Our results indicate that evolution of phylogenetically derived notothenioid families (e.g., the crown group Channichthyidae [icefishes]), was accompanied by genome expansion. Six species from the basal family Nototheniidae had C-values between 0.98 and 1.20 pg, a range that is consistent with the genome sizes of proposed outgroups (e.g., percids) of the notothenioid suborder. In contrast, four icefishes had C-values in the range 1.66-1.83 pg. The BAC libraries VMRC-19 (N. coriiceps) and VMRC-21 (C. aceratus) comprise 12× and 10× coverage of the respective genomes and have average insert sizes of 138 and 168 kb. Paired BAC-end reads representing ∼0.1% of each genome showed that the repetitive element landscapes of the two genomes (13.4% of the N. coriiceps genome and 14.5% for C. aceratus) were similar. The availability of these high-quality and well-characterized BAC libraries sets the stage for targeted genomic analyses of the unusual anatomical and physiological adaptations of the notothenioids, some of which mimic human diseases. Here we consider the evolution of secondary pelagicism by various taxa of the group and illustrate the utility of Antarctic icefishes as an evolutionary-mutant model of human osteopenia (low-mineral density of bones).

摘要

研究南极周围寒冷的南大洋中海洋物种群的适应辐射,拟鲈亚目(Notothenoidei)是一个很好的机会。为了促进对这些鱼类多样化的基因组水平研究,我们估计了 11 种南极鱼类的基因组大小,并描述了两种南极鱼类——红血细胞南极鳕鱼(Notothenia coriiceps)和白血细胞南极冰鱼(Chaenocephalus aceratus)的高质量细菌人工染色体(BAC)文库的制作。我们的结果表明,系统发育衍生的拟鲈科(如冰鱼科的冠群)的进化伴随着基因组的扩张。来自基础科南极鳕科的 6 个物种的 C 值在 0.98 到 1.20pg 之间,这与拟鲈亚目的假定外群(如鲈形目)的基因组大小一致。相比之下,4 种冰鱼的 C 值在 1.66-1.83pg 之间。BAC 文库 VMRC-19(N. coriiceps)和 VMRC-21(C. aceratus)分别包含各自基因组的 12×和 10×覆盖,平均插入大小分别为 138 和 168kb。代表各自基因组约 0.1%的成对 BAC 末端读取表明,两个基因组的重复元件景观(N. coriiceps 基因组的 13.4%和 C. aceratus 的 14.5%)相似。这些高质量和特征良好的 BAC 文库的可用性为针对拟鲈类不寻常的解剖学和生理学适应的靶向基因组分析奠定了基础,其中一些适应类似于人类疾病。在这里,我们考虑了该组不同分类单元的次浮游生物进化,并说明了南极冰鱼作为人类骨质疏松症(骨骼矿物质密度低)的进化突变模型的用途。

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