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    phd3在低氧信号通路中的功能解析和耐低氧鲢新种质的创制

    FUNCTIONAL CHARACTERIZATION OF PHD3 IN THE HYPOXIA SIGNALING PATHWAY AND CREATION OF NOVEL HYPOXIA-TOLERANT GERMPLASM IN SILVER CARP (HYPOPHTHALMICHTHYS MOLITRIX)

    • 摘要: 为研究鲢(Hypophthalmichthys molitrix)脯氨酸羟化酶3 (prolyl hydroxylase domain-containing protein 3, phd3)在低氧信号通路中的功能, 本研究克隆了鲢phd3, 其编码区为738 bp, 编码245个氨基酸, 蛋白质结构预测及进化树分析表明其在进化上具有高度保守性。荧光定量RT-qPCR结果表明, 在低氧条件下, 鲢phd3的表达显著上调, 这说明鲢phd3对低氧响应明显。本研究构建了鲢phd3的表达载体, 免疫印迹实验结果表明鲢phd3表达大小约为27 kD的蛋白; 双荧光素酶报告基因检测结果表明, 鲢phd3显著抑制低氧诱导的低氧反应元件(Hypoxia response element, HRE)的活性。为了探究鲢phd3的在体生物学功能, 利用CRISPR/Cas9基因编辑技术, 本研究构建了鲢phd3基因编辑的突变体。比较低氧胁迫下野生型鲢和phd3基因编辑的突变体鲢的低氧耐受性, 发现鲢phd3突变体耐低氧能力显著增强。这些研究结果表明, 鲢phd3受低氧诱导显著并负调控低氧信号通路, phd3的突变显著增强鲢的耐低氧能力, 这为深入解析鲢低氧耐受的分子调控机制提供依据, 同时为培育耐低氧的鲢新种质提供了分子靶标。

       

      Abstract: To investigate the function of prolyl hydroxylase domain-containing protein 3 (PHD3) in the hypoxia signaling pathway in Hypophthalmichthys molitrix, we cloned the phd3 gene, whose coding sequence (CDS) consists of 738 base pairs (bp) and encodes 245 amino acids. Protein structure prediction and phylogenetic tree analysis revealed that H. molitrix phd3 exhibits high evolutionary conservation. Quantitative Real-time PCR (RT-qPCR) results showed that phd3 mRNA levels were significantly upregulated under hypoxic conditions, suggesting a sensitive response of phd3 to hypoxia. Furthermore, we constructed a phd3 expression plasmid, and Western Blot analysis revealed that the protein encoded by phd3 is approximately 27 kilodaltons (kD) in size. Dual-luciferase reporter assays demonstrated that phd3significantly suppressed the activity of a hypoxia-responsive element (HRE) reporter under hypoxic conditions. To investigate the in vivo biological function of phd3, we generated phd3 mutant H. molitrix using CRISPR/Cas9 gene editing, and comparison of hypoxia tolerance between wild-type and mutant fish revealed that disruption of phd3 significantly enhanced tolerance to hypoxia. These results suggest that phd3 is significantly induced under hypoxia and negatively regulates the hypoxia signaling pathway in H. molitrix. Disrupting phd3 significantly enhances hypoxia tolerance in H. molitrix. This provides a basis for further elucidating the molecular regulatory mechanisms underlying hypoxia adaptation and offers a potential molecular target for breeding new hypoxia-tolerant strains of H. molitrix.

       

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