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鲑鱼类的 AMPK 系统通过基因组加倍而扩张,并受肌肉中生长和免疫状况的调节。

The AMPK system of salmonid fishes was expanded through genome duplication and is regulated by growth and immune status in muscle.

机构信息

School of Biological Sciences, University of Aberdeen, Aberdeen, UK.

Fisheries and Oceans Canada, West Vancouver, British Columbia, V7V 1N6, Canada.

出版信息

Sci Rep. 2019 Jul 8;9(1):9819. doi: 10.1038/s41598-019-46129-4.

Abstract

5'adenosine monophosphate-activated protein kinase (AMPK) is a master regulator of energy homeostasis in eukaryotes. This study identified expansions in the AMPK-α, -β and -γ families of salmonid fishes due to a history of genome duplication events, including five novel salmonid-specific AMPK subunit gene paralogue pairs. We tested the hypothesis that the expanded AMPK gene system of salmonids is transcriptionally regulated by growth and immunological status. As a model, we studied immune-stimulated coho salmon (Oncorhynchus kisutch) from three experiment groups sharing the same genetic background, but showing highly-divergent growth rates and nutritional status. Specifically, we compared wild-type and GH-transgenic fish, the latter achieving either enhanced or wild-type growth rate via ration manipulation. Transcript levels for the fifteen unique salmonid AMPK subunit genes were quantified in skeletal muscle after stimulation with bacterial or viral mimics to alter immune status. These analyses revealed a constitutive up-regulation of several AMPK-α and -γ subunit-encoding genes in GH-transgenic fish achieving accelerated growth. Further, immune stimulation caused a decrease in the expression of several AMPK subunit-encoding genes in GH-transgenic fish specifically. The dynamic expression responses observed suggest a role for the AMPK system in balancing energetic investment into muscle growth according to immunological status in salmonid fishes.

摘要

5' 腺苷一磷酸激活蛋白激酶 (AMPK) 是真核生物能量稳态的主要调节剂。本研究发现,由于经历了基因组加倍事件,鲑鱼的 AMPK-α、-β 和 -γ 家族发生了扩张,包括五个新的鲑鱼特异性 AMPK 亚基基因旁系对。我们检验了鲑鱼 AMPK 基因系统的扩张是由生长和免疫状态转录调控的假设。作为模型,我们研究了具有相同遗传背景但表现出高度不同生长速度和营养状态的三种实验性鲑鱼群体的免疫刺激虹鳟鱼(Oncorhynchus kisutch)。具体来说,我们比较了野生型和 GH 转基因鱼,后者通过配给操纵实现了增强或野生型生长速度。用细菌或病毒模拟物刺激后,定量测定骨骼肌中十五种独特的鲑鱼 AMPK 亚基基因的转录水平,以改变免疫状态。这些分析表明,在实现加速生长的 GH 转基因鱼中,几种 AMPK-α 和 -γ 亚基编码基因的组成性上调。进一步,免疫刺激导致 GH 转基因鱼中几种 AMPK 亚基编码基因的表达下降。观察到的动态表达反应表明,AMPK 系统在根据鲑鱼的免疫状态平衡肌肉生长的能量投入方面发挥作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5bc3/6614447/91ff89fb9ead/41598_2019_46129_Fig1_HTML.jpg

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