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EcoRV核酸内切酶对位点特异性DNA切割的静电作用。

Electrostatic contributions to site specific DNA cleavage by EcoRV endonuclease.

作者信息

Horton Nancy C, Otey Christopher, Lusetti Shelley, Sam My D, Kohn Jonathan, Martin Amy M, Ananthnarayan Vidya, Perona John J

机构信息

Department of Chemistry and Biochemistry and Interdepartmental Program in Biomolecular Science and Engineering, University of California at Santa Barbara, Santa Barbara, California 93106-9510, USA.

出版信息

Biochemistry. 2002 Sep 3;41(35):10754-63. doi: 10.1021/bi020305l.

Abstract

Mutational analysis of amino acids at the periphery of the EcoRV endonuclease active site suggests that moderate-range electrostatic effects play a significant role in modulating the efficiency of phosphoryl transfer. Asp36 and Lys38 located on minor-groove binding surface loops approach within 7-9 A of the scissile phosphates of the DNA. While the rates of single-site mutations removing the carboxylate or amine moieties at these positions are decreased 10(3)-10(5)-fold compared to that of wild-type EcoRV, we find that double mutants which rebalance the charge improve catalysis by up to 500-fold. Mutational analysis also suggests that catalytic efficiency is influenced by Lys173, which is buried at the base of a deep depression penetrating from a distal surface of the enzyme. The Lys173 amine group lies just 6 A from the amine group of the conserved essential Lys92 side chain in the active site. Kinetic and crystallographic analyses of the EcoRV E45A mutant enzyme further show that the Glu45 carboxylate group facilitates an extensive set of conformational transitions which occur upon DNA binding. The crystal structure of E45A bound to DNA and Mn2+ ions reveals significant conformational alterations in a small alpha-helical portion of the dimer interface located adjacent to the DNA minor groove. This leads to a tertiary reorientation of the two monomers as well as shifting of the key major-groove binding recognition loops. Because the Glu45 side chain does not appear to play a direct structural role in maintaining the active site, these rearrangements may instead originate in an altered electrostatic potential caused by removal of the negative charge. A Mn2+ binding site on the scissile phosphate is also disrupted in the E45A structure such that inner-sphere metal interactions made by the scissile DNA phosphate and conserved Asp90 carboxylate are each replaced with water molecules in the mutant. These findings argue against a proposed role for Asp36 as the general base in EcoRV catalysis, and reveal that the induced-fit conformational changes necessary for active site assembly and metal binding are significantly modulated by the electrostatic potential in this region.

摘要

对EcoRV核酸内切酶活性位点周边氨基酸的突变分析表明,适度范围的静电效应在调节磷酸转移效率方面发挥着重要作用。位于小沟结合表面环上的Asp36和Lys38接近DNA可切割磷酸酯7 - 9埃的距离。虽然与野生型EcoRV相比,去除这些位置上羧基或胺基的单点突变率降低了10³ - 10⁵倍,但我们发现重新平衡电荷的双突变体可将催化作用提高多达500倍。突变分析还表明,催化效率受Lys173影响,Lys173埋在从酶的远端表面穿透的一个深凹陷底部。Lys173的胺基距离活性位点中保守的必需Lys92侧链的胺基仅6埃。对EcoRV E45A突变酶进行的动力学和晶体学分析进一步表明,Glu45的羧基促进了DNA结合时发生的一系列广泛构象转变。与DNA和Mn²⁺离子结合的E45A晶体结构显示,在与DNA小沟相邻的二聚体界面的一个小α螺旋部分存在显著的构象改变。这导致两个单体的三级重新定向以及关键大沟结合识别环的移动。由于Glu45侧链似乎在维持活性位点方面不发挥直接的结构作用,这些重排可能反而源于因负电荷去除而改变的静电势。在E45A结构中,可切割磷酸酯上的一个Mn²⁺结合位点也被破坏,使得可切割DNA磷酸酯和保守的Asp90羧基形成的内球金属相互作用在突变体中均被水分子取代。这些发现反对了Asp36作为EcoRV催化中一般碱的假定作用,并揭示了活性位点组装和金属结合所需的诱导契合构象变化受到该区域静电势的显著调节。

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