Huang Chun-Xiao, Chen Nan, Wu Xin-Jie, Huang Cui-Hong, He Yan, Tang Rong, Wang Wei-Min, Wang Huan-Ling
*Key Laboratory of Freshwater Animal Breeding and Key Laboratory of Agricultural Animal Genetics, Breeding and Reproduction, Ministry of Education, College of Fishery, Huazhong Agricultural University, Wuhan, Hubei, China; and Freshwater Aquaculture Collaborative Innovation Center of Hubei Province, Wuhan, Hubei, China.
*Key Laboratory of Freshwater Animal Breeding and Key Laboratory of Agricultural Animal Genetics, Breeding and Reproduction, Ministry of Education, College of Fishery, Huazhong Agricultural University, Wuhan, Hubei, China; and Freshwater Aquaculture Collaborative Innovation Center of Hubei Province, Wuhan, Hubei, China
FASEB J. 2015 Dec;29(12):4901-13. doi: 10.1096/fj.14-267104. Epub 2015 Aug 11.
Hypoxia, a unique and essential environmental stress, evokes highly coordinated cellular responses, and hypoxia-inducible factor (HIF) 1 in the hypoxia signaling pathway, an evolutionarily conserved cellular signaling pathway, acts as a master regulator of the transcriptional response to hypoxic stress. MicroRNAs (miRNAs), a major class of posttranscriptional gene expression regulators, also play pivotal roles in orchestrating hypoxia-mediated cellular adaptations. Here, global miRNA expression profiling and quantitative real-time PCR indicated that the up-regulation of the miR-462/miR-731 cluster in zebrafish larvae is induced by hypoxia. It was further validated that miR-462 and miR-731 are up-regulated in a Hif-1α-mediated manner under hypoxia and specifically target ddx5 and ppm1da, respectively. Overexpression of miR-462 and miR-731 represses cell proliferation through blocking cell cycle progress of DNA replication, and induces apoptosis. In situ detection revealed that the miR-462/miR-731 cluster is highly expressed in a consistent and ubiquitous manner throughout the early developmental stages. Additionally, the transcripts become restricted to the notochord, pharyngeal arch, liver, and gut regions from postfertilization d 3 to 5. These data highlight a previously unidentified role of the miR-462/miR-731 cluster as a crucial signaling mediator for hypoxia-mediated cellular adaptations and provide some insights into the potential function of the cluster during embryonic development.
缺氧是一种独特且至关重要的环境应激,可引发高度协调的细胞反应,而缺氧信号通路中的缺氧诱导因子(HIF)1作为转录反应的主要调节因子,在进化上保守的细胞信号通路中发挥作用。微小RNA(miRNA)是转录后基因表达调节的主要类别,在协调缺氧介导的细胞适应中也发挥着关键作用。在此,全局miRNA表达谱分析和定量实时PCR表明,斑马鱼幼体中miR-462/miR-731簇的上调是由缺氧诱导的。进一步验证表明,在缺氧条件下,miR-462和miR-731以Hif-1α介导的方式上调,并分别特异性靶向ddx5和ppm1da。miR-462和miR-731的过表达通过阻断DNA复制的细胞周期进程来抑制细胞增殖,并诱导细胞凋亡。原位检测显示,miR-462/miR-731簇在整个早期发育阶段以一致且普遍的方式高度表达。此外,从受精后第3天到第5天,转录本局限于脊索、咽弓、肝脏和肠道区域。这些数据突出了miR-462/miR-731簇作为缺氧介导的细胞适应的关键信号介质的先前未被识别的作用,并为该簇在胚胎发育过程中的潜在功能提供了一些见解。