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glmS核酶自我切割的一般酸碱机制的化学可行性。

Chemical feasibility of the general acid/base mechanism of glmS ribozyme self-cleavage.

作者信息

Dubecký Matúš, Walter Nils G, Šponer Jiří, Otyepka Michal, Banáš Pavel

机构信息

Regional Centre of Advanced Technologies and Materials, Department of Physical Chemistry, Faculty of Science, Palacký University, tř. 17 listopadu 12, 771 46, Olomouc, Czech Republic.

Department of Chemistry, Single Molecule Analysis Group, University of Michigan, 930 North University Avenue, Ann Arbor, MI, 48109-1055.

出版信息

Biopolymers. 2015 Oct;103(10):550-62. doi: 10.1002/bip.22657.

Abstract

In numerous Gram-positive bacteria, the glmS ribozyme or catalytic riboswitch regulates the expression of glucosamine-6-phosphate (GlcN6P) synthase via site-specific cleavage of its sugar-phosphate backbone in response to GlcN6P ligand binding. Biochemical data have suggested a crucial catalytic role for an active site guanine (G40 in Thermoanaerobacter tengcongensis, G33 in Bacillus anthracis). We used hybrid quantum chemical/molecular mechanical (QM/MM) calculations to probe the mechanism where G40 is deprotonated and acts as a general base. The calculations suggest that the deprotonated guanine G40(-) is sufficiently reactive to overcome the thermodynamic penalty arising from its rare protonation state, and thus is able to activate the A-1(2'-OH) group toward nucleophilic attack on the adjacent backbone. Furthermore, deprotonation of A-1(2'-OH) and nucleophilic attack are predicted to occur as separate steps, where activation of A-1(2'-OH) precedes nucleophilic attack. Conversely, the transition state associated with the rate-determining step corresponds to concurrent nucleophilic attack and protonation of the G1(O5') leaving group by the ammonium moiety of the GlcN6P cofactor. Overall, our calculations help to explain the crucial roles of G40 (as a general base) and GlcN6P (as a general acid) during glmS ribozyme self-cleavage. In addition, we show that the QM/MM description of the glmS ribozyme self-cleavage reaction is significantly more sensitive to the size of the QM region and the quality of the QM-MM coupling than that of other small ribozymes.

摘要

在众多革兰氏阳性细菌中,glmS核酶或催化性核糖开关通过响应GlcN6P配体结合对其糖磷酸骨架进行位点特异性切割,来调节6-磷酸葡糖胺(GlcN6P)合酶的表达。生化数据表明活性位点鸟嘌呤(嗜热栖热菌中为G40,炭疽芽孢杆菌中为G33)起着关键的催化作用。我们使用量子化学/分子力学(QM/MM)混合计算来探究G40去质子化并作为通用碱的机制。计算结果表明,去质子化的鸟嘌呤G40(-)具有足够的反应活性,能够克服因其罕见质子化状态而产生的热力学障碍,从而能够激活A-1(2'-OH)基团对相邻骨架进行亲核攻击。此外,预计A-1(2'-OH)的去质子化和亲核攻击会作为单独的步骤发生,其中A-1(2'-OH)的激活先于亲核攻击。相反,与速率决定步骤相关的过渡态对应于GlcN6P辅因子的铵部分对G1(O5')离去基团同时进行亲核攻击和质子化。总体而言,我们的计算有助于解释G40(作为通用碱)和GlcN6P(作为通用酸)在glmS核酶自我切割过程中的关键作用。此外,我们表明,与其他小核酶相比,glmS核酶自我切割反应的QM/MM描述对QM区域的大小和QM-MM耦合质量更为敏感。

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