中华鲟生长激素受体的分子克隆及功能分析。

ZhiYong Liao, XiaoLi Chen, MingJiang Wu
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引用次数: 7

摘要

为研究生长激素调控中华鲟生长的机制,克隆了中华鲟生长激素受体(GHR)全长cDNA。克隆的中华鲟生长激素受体(csGHR) cDNA的开放阅读框编码一个611个氨基酸的跨膜蛋白,包含所有的GHR特征基序。通过序列比对,确定了其他物种中高度保守的氨基酸残基的取代。利用CHO细胞培养系统,研究了csGHR的功能及其氨基酸取代的生物学意义。在表达csghr的CHO细胞中,丝氨酸蛋白酶抑制剂2.1 (Spi2.1)的启动子在sbGH的刺激下被反式激活。此外,稳定表达csGHR的CHO细胞被sbGH刺激增殖。在稳定表达中华鲟生长激素结合蛋白(csGHBP)的CHO细胞培养基中检测到中华鲟生长激素结合蛋白(csGHBP)。csGHR配体结合基序的Asp残基突变为Glu显著增强了csGHR的生物学功能,而Asp残基突变为Ala则降低了csGHR的生物学功能。结果表明,克隆的csGHR具有完整的生物学功能,csGHR可通过蛋白水解生成csGHBP。这些发现可能为深入了解中华鲟生长的调控机制提供新的见解。
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Molecular cloning and functional analysis of Chinese sturgeon (Acipenser sinensis) growth hormone receptor.

A full length cDNA encoding the growth hormone receptor (GHR) of Chinese sturgeon was cloned in order to investigate the mechanism of growth hormone in regulating the growth of Chinese sturgeon. The open reading frame of the cloned Chinese sturgeon growth hormone receptor (csGHR) cDNA encodes a trans-membrane protein of 611 amino acids containing all the characteristic motifs of GHR. By sequence alignment, substitutions of amino acid residues highly conserved in other species were identified. Using the CHO cell culture system, the function of csGHR and the biological significance of the amino acid substitution in csGHR were examined. The promoter of serine protease inhibitor 2.1 (Spi2.1) was trans-activated upon stimulation of seabream GH (sbGH) in the csGHR-expressing CHO cells. Furthermore, CHO cells stably expressing csGHR were stimulated to proliferate by sbGH. In agreement with our previous report, Chinese sturgeon growth hormone-binding protein (csGHBP) was detected in the culture medium of CHO cells stably expressing csGHR. Mutation of Asp residue in the ligand binding motif in csGHR to Glu significantly enhanced csGHR's biological function, whereas mutation of Asp residue to Ala decreased its biological function. The results demonstrated that the cloned csGHR was of full biological function and the csGHBP could be generated through proteolysis of csGHR. These findings might provide new insights into thoroughly understanding the regulatory mechanism of Chinese sturgeon growth.

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