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首页> 外文期刊>Comparative biochemistry and physiology, Part D. Genomics & proteomics >Molecular characterization and mRNA expression of two key enzymes of hypoxia-sensing pathways in eastern oysters Crassostrea virginica (Gmelin): Hypoxia-inducible factor α (HIF-α) and HIF-prolyl hydroxylase (PHD)
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Molecular characterization and mRNA expression of two key enzymes of hypoxia-sensing pathways in eastern oysters Crassostrea virginica (Gmelin): Hypoxia-inducible factor α (HIF-α) and HIF-prolyl hydroxylase (PHD)

机译:东部牡蛎Crassostrea virginica(Gmelin)缺氧感应途径的两种关键酶的分子特征和mRNA表达:低氧诱导因子α(HIF-α)和HIF-脯氨酰羟化酶(PHD)

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Oxygen homeostasis is crucial for development, survival and normal function of all metazoans. A family of transcription factors called hypoxia-inducible factors (HIF) is critical in mediating the adaptive responses to reduced oxygen availability. The HIF transcription factor consists of a constitutively expressed β subunit and an oxygen-dependent α subunit; the abundance of the latter determines the activity of HIF and is regulated by a family of O_2- and Fe~(2+)-dependent enzymes prolyl hydroxylases (PHDs). Currently very little is known about the function of this important pathway and the molecular structure of its key players in hypoxia-tolerant intertidal mollusks including oysters, which are among the animal champions of anoxic and hypoxic tolerance and thus can serve as excellent models to study the role of HIF cascade in adaptations to oxygen deficiency. We have isolated transcripts of two key components of the oxygen sensing pathway - the oxygen-regulated HIF-α subunit and PHD - from an intertidal mollusk, the eastern oyster Crassostrea virginica, and determined the transcriptional responses of these two genes to anoxia, hypoxia and cadmium (Cd) stress. HIF-α and PHD homologs from eastern oysters C. virginica show significant sequence similarity and share key functional domains with the earlier described isoforms from vertebrates and invertebrates. Phylogenetic analysis shows that genetic diversification of HIF and PHD isoforms occurred within the vertebrate lineage indicating functional diversification and specialization of the oxygen-sensing pathways in this group, which parallels situation observed for many other important genes. HIF-α and PHD homologs are broadly expressed at the mRNA level in different oyster tissues and show transcriptional responses to prolonged hypoxia in the gills consistent with their putative role in oxygen sensing and the adaptive response to hypoxia. Similarity in amino acid sequence, domain structure and transcriptional responses between HIF-α and PHD homologs from oysters and other invertebrate and vertebrate species implies the highly conserved functions of these genes throughout the evolutionary history of animals, in accordance with their critical role in oxygen sensing and homeostasis.
机译:氧气稳态对所有后生动物的发育,生存和正常功能至关重要。一类称为缺氧诱导因子(HIF)的转录因子在介导对减少氧气供应的适应性反应中至关重要。 HIF转录因子由组成性表达的β亚基和氧依赖性α亚基组成;后者的丰度决定了HIF的活性,并受O_2和Fe〜(2+)依赖性酶脯氨酰羟化酶(PHD)家族的调节。目前对这种重要途径的功能及其在耐缺氧的潮间带软体动物(包括牡蛎)中主要角色的分子结构知之甚少,这些牡蛎是耐缺氧和耐缺氧动物的拥护者,因此可以作为研究该物种的优秀模型。 HIF级联在适应缺氧中的作用。我们从潮间带软体动物东部牡蛎Crassostrea virginica分离了氧传感途径的两个关键成分的转录本-氧调节的HIF-α亚基和PHD-并确定了这两个基因对缺氧,缺氧和缺氧的转录反应。镉(Cd)应力。来自东部牡蛎C. virginica的HIF-α和PHD同源物显示出显着的序列相似性,并且与先前描述的来自脊椎动物和无脊椎动物的同工型具有关键的功能域。系统发育分析表明,在脊椎动物谱系中发生了HIF和PHD同工型的遗传多样化,表明该族群中的功能多样化和氧传感途径的专业化,这与许多其他重要基因的情况相类似。 HIF-α和PHD同源物在不同的牡蛎组织中在mRNA水平上广泛表达,并显示出对s中长时间缺氧的转录反应,这与它们在氧气感测中的假定作用以及对缺氧的适应性反应一致。牡蛎以及其他无脊椎动物和脊椎动物物种的HIF-α和PHD同源物之间的氨基酸序列,结构域结构和转录响应相似,这表明它们在动物的整个进化过程中均具有高度保守的功能,这取决于它们在氧传感中的关键作用和动态平衡。

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