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比较基因组学和转录组学分析揭示了 26 个候选基因参与了大头鲤 Clarias macrocephalus 的呼吸空气的发育和功能。

Comparative Genomic and Transcriptomic Analyses Revealed Twenty-Six Candidate Genes Involved in the Air-Breathing Development and Function of the Bighead Catfish Clarias macrocephalus.

机构信息

School of Fisheries, Aquaculture and Aquatic Sciences, Auburn University, Auburn, AL, 36849, USA.

Alabama Agricultural Experiment Station, Auburn, AL, 36849, USA.

出版信息

Mar Biotechnol (NY). 2021 Feb;23(1):90-105. doi: 10.1007/s10126-020-10005-4. Epub 2020 Oct 28.

DOI:10.1007/s10126-020-10005-4
PMID:33113010
Abstract

The bighead catfish (Clarias macrocephalus) and channel catfish (Ictalurus punctatus) are freshwater species in the Siluriformes order. C. macrocephalus has both gills and modified gill structures serving as an air-breathing organ (ABO), while I. punctatus does not possess such an organ, and cannot breathe in air, providing an excellent model for studying the molecular basis of ABO development in teleost fish. To investigate the critical time window for the development of air-breathing function, seven development stages were selected based on hypoxia challenge results, and RNA-seq was performed upon C. macrocephalus to compare with the non-air-breathing I. punctatus. Five-hundred million reads were generated and 25,239 expressed genes were annotated in C. macrocephalus. Among those, 8675 genes were differentially expressed across developmental stages. Comparative genomic analysis identified 1458 C. macrocephalus specific genes, which were absent in I. punctatus. Gene network and protein-protein interaction analyses identified 26 key hub genes involved in the air-breathing function. Three top candidate genes, mb, ngb, hbae, are mainly associated with oxygen carrying, oxygen binding, and heme binding activities. Our study provides a rich data set for exploring the genomic basis of air-breathing function in C. macrocephalus and offers insights into the adaption to hypoxic environments.

摘要

大头鱼(Clarias macrocephalus)和斑点叉尾鮰(Ictalurus punctatus)是鲶形目下的淡水物种。大头鱼既有鳃又有改良的鳃结构作为呼吸器官(ABO),而斑点叉尾鮰没有这样的器官,不能呼吸空气,为研究硬骨鱼 ABO 发育的分子基础提供了极好的模型。为了研究呼吸功能发育的关键时间窗口,根据缺氧挑战的结果选择了七个发育阶段,并对大头鱼进行了 RNA-seq 分析,与非呼吸空气的斑点叉尾鮰进行了比较。生成了 5 亿个读数,并对大头鱼进行了注释,共注释到 25239 个表达基因。其中,8675 个基因在发育阶段之间存在差异表达。比较基因组分析鉴定出 1458 个大头鱼特有的基因,这些基因在斑点叉尾鮰中不存在。基因网络和蛋白质-蛋白质相互作用分析鉴定出 26 个参与呼吸功能的关键枢纽基因。三个候选基因 mb、ngb、hbae 主要与携氧、氧结合和血红素结合活性有关。我们的研究为探索大头鱼呼吸功能的基因组基础提供了丰富的数据集,并为研究对低氧环境的适应提供了新的见解。

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本文引用的文献

1
Evolution of air breathing: oxygen homeostasis and the transitions from water to land and sky.空气呼吸的进化:氧气的体内平衡以及从水到陆地和天空的转变。
Compr Physiol. 2013 Apr;3(2):849-915. doi: 10.1002/cphy.c120003.