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布氏锥虫RNA三磷酸酶的结构-功能分析及双金属机制的证据

Structure-function analysis of Trypanosoma brucei RNA triphosphatase and evidence for a two-metal mechanism.

作者信息

Gong Chunling, Martins Alexandra, Shuman Stewart

机构信息

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

出版信息

J Biol Chem. 2003 Dec 19;278(51):50843-52. doi: 10.1074/jbc.M309188200. Epub 2003 Oct 1.

Abstract

Trypanosoma brucei RNA triphosphatase TbCet1 is a 252-amino acid polypeptide that catalyzes the first step in mRNA cap formation. By performing an alanine scan of TbCet1, we identified six amino acids that are essential for triphosphatase activity (Glu-52, Arg-127, Glu-168, Arg-186, Glu-216, and Glu-218). These results consolidate the proposal that protozoan, fungal, and Chlorella virus RNA triphosphatases belong to a single family of metal-dependent NTP phosphohydrolases with a unique tunnel active site composed of eight beta strands. Limited proteolysis of TbCet1 suggests that the hydrophilic N terminus is surface-exposed, whereas the catalytic core domain is tightly folded with the exception of a protease-sensitive loop (76WKGRRARKT84) between two of the putative tunnel strands. The catalytic domain of TbCet1 is extraordinarily thermostable. It remains active after heating for 2 h at 75 degrees C. Analysis by zonal velocity sedimentation indicates that TbCet1 is a monomeric enzyme, unlike fungal RNA triphosphatases, which are homodimers. We show that tripolyphosphate is a potent competitive inhibitor of TbCet1 (Ki 1.4 microm) that binds more avidly to the active site than the ATP substrate (Km 25 microm). We present evidence of synergistic activation of the TbCet1 triphosphatase by manganese and magnesium, consistent with a two-metal mechanism of catalysis. Our findings provide new insight to the similarities (in active site tertiary structure and catalytic mechanism) and differences (in quaternary structure and thermal stability) among the different branches of the tunnel enzyme family.

摘要

布氏锥虫RNA三磷酸酶TbCet1是一种由252个氨基酸组成的多肽,催化mRNA帽形成的第一步。通过对TbCet1进行丙氨酸扫描,我们鉴定出了六个对三磷酸酶活性至关重要的氨基酸(Glu-52、Arg-127、Glu-168、Arg-186、Glu-216和Glu-218)。这些结果支持了原生动物、真菌和小球藻病毒RNA三磷酸酶属于金属依赖性NTP磷酸水解酶单一家族的观点,该家族具有由八条β链组成的独特隧道活性位点。对TbCet1的有限蛋白酶解表明,亲水性的N末端暴露于表面,而催化核心结构域紧密折叠,除了两个假定隧道链之间的一个蛋白酶敏感环(76WKGRRARKT84)。TbCet1的催化结构域具有极高的热稳定性。在75摄氏度加热2小时后仍保持活性。区域速度沉降分析表明,TbCet1是一种单体酶,这与真菌RNA三磷酸酶不同,后者是同型二聚体。我们发现三聚磷酸是TbCet1的一种有效竞争性抑制剂(Ki为1.4微摩尔),它比ATP底物(Km为25微摩尔)更紧密地结合到活性位点。我们提供了锰和镁协同激活TbCet1三磷酸酶的证据,这与双金属催化机制一致。我们的研究结果为隧道酶家族不同分支之间的相似性(活性位点三级结构和催化机制)和差异(四级结构和热稳定性)提供了新的见解。

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