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酵母mRNA加帽装置的三磷酸酶和鸟苷酸转移酶组分之间的遗传、物理及功能相互作用。

Genetic, physical, and functional interactions between the triphosphatase and guanylyltransferase components of the yeast mRNA capping apparatus.

作者信息

Ho C K, Schwer B, Shuman S

机构信息

Molecular Biology Program, Sloan-Kettering Institute, New York, New York 10021, USA.

出版信息

Mol Cell Biol. 1998 Sep;18(9):5189-98. doi: 10.1128/MCB.18.9.5189.

Abstract

We have characterized an essential Saccharomyces cerevisiae gene, CES5, that when present in high copy, suppresses the temperature-sensitive growth defect caused by the ceg1-25 mutation of the yeast mRNA guanylyltransferase (capping enzyme). CES5 is identical to CET1, which encodes the RNA triphosphatase component of the yeast capping apparatus. Purified recombinant Cet1 catalyzes hydrolysis of the gamma phosphate of triphosphate-terminated RNA at a rate of 1 s-1. Cet1 is a monomer in solution; it binds with recombinant Ceg1 in vitro to form a Cet1-Ceg1 heterodimer. The interaction of Cet1 with Ceg1 elicits >10-fold stimulation of the guanylyltransferase activity of Ceg1. This stimulation is the result of increased affinity for the GTP substrate. A truncated protein, Cet1(201-549), has RNA triphosphatase activity, heterodimerizes with and stimulates Ceg1 in vitro, and suffices when expressed in single copy for cell growth in vivo. The more extensively truncated derivative Cet1(246-549) also has RNA triphosphatase activity but fails to stimulate Ceg1 in vitro and is lethal when expressed in single copy in vivo. These data suggest that the Cet1-Ceg1 interaction is essential but do not resolve whether the triphosphatase activity is also necessary. The mammalian capping enzyme Mce1 (a bifunctional triphosphatase-guanylyltransferase) substitutes for Cet1 in vivo. A mutation of the triphosphatase active-site cysteine of Mce1 is lethal. Hence, an RNA triphosphatase activity is essential for eukaryotic cell growth. This work highlights the potential for regulating mRNA cap formation through protein-protein interactions.

摘要

我们已鉴定出酿酒酵母中的一个必需基因CES5,当它以高拷贝存在时,可抑制由酵母mRNA鸟苷酸转移酶(加帽酶)的ceg1 - 25突变所导致的温度敏感型生长缺陷。CES5与CET1相同,CET1编码酵母加帽装置的RNA三磷酸酶组分。纯化的重组Cet1以1 s-1的速率催化三磷酸末端RNA的γ磷酸水解。Cet1在溶液中是单体;它在体外与重组Ceg1结合形成Cet1 - Ceg1异二聚体。Cet1与Ceg1的相互作用引发Ceg1鸟苷酸转移酶活性超过10倍的刺激。这种刺激是对GTP底物亲和力增加的结果。截短的蛋白质Cet1(201 - 549)具有RNA三磷酸酶活性,在体外与Ceg1异二聚化并刺激Ceg1,并且当以单拷贝表达时足以支持体内细胞生长。截短程度更大的衍生物Cet1(246 - 549)也具有RNA三磷酸酶活性,但在体外不能刺激Ceg1,并且当以单拷贝在体内表达时是致死的。这些数据表明Cet1 - Ceg1相互作用是必需的,但未解决三磷酸酶活性是否也是必需的。哺乳动物加帽酶Mce1(一种双功能三磷酸酶 - 鸟苷酸转移酶)在体内可替代Cet1。Mce1三磷酸酶活性位点半胱氨酸的突变是致死的。因此,RNA三磷酸酶活性对真核细胞生长至关重要。这项工作突出了通过蛋白质 - 蛋白质相互作用调节mRNA加帽形成的潜力。

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