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调控磺基转移酶选择性的大门。

The gate that governs sulfotransferase selectivity.

机构信息

Department of Microbiology and Immunology, Albert Einstein College of Medicine, 1300 Morris Park Avenue, Bronx, New York 10461-1926, USA.

出版信息

Biochemistry. 2013 Jan 15;52(2):415-24. doi: 10.1021/bi301492j. Epub 2012 Dec 28.

Abstract

Human cytosolic sulfotransferases (SULTs) transfer the sulfuryl moiety (-SO(3)) from activated sulfate [3'-phosphoadenosine 5'-phosphosulfate (PAPS)] to the hydroxyls and primary amines of numerous metabolites, drugs, and xenobiotics. Receipt of the sulfuryl group often radically alters acceptor-target interactions. How these enzymes select particular substrates from the hundreds of candidates in a complex cytosol remains an important question. Recent work reveals PAPS binding causes SULT2A1 to undergo an isomerization that controls selectivity by constricting the opening through which acceptors must pass to enter the active site. The enzyme maintains an affinity for large substrates by isomerizing between the open and closed states with nucleotide bound. Here, the molecular basis of the nucleotide-induced closure is explored in equilibrium and nonequilibrium molecular dynamics simulations. The simulations predict that the active-site "cap," which covers both the nucleotide and acceptor binding sites, opens and closes in response to nucleotide. The cap subdivides into nucleotide and acceptor halves whose motions, while coupled, exhibit an independence that can explain the isomerization. In silico weakening of electrostatic interactions between the cap and base of the active site causes the acceptor half of the cap to open and close while the nucleotide lid remains shut. Simulations predict that SULT1A1, the most abundant SULT in human liver, will utilize a similar selection mechanism. This prediction is tested using fulvestrant, an anti-estrogen too large to pass through the closed pore, and estradiol, which is not restricted by closure. Equilibrium and pre-steady-state binding studies confirm that SULT1A1 undergoes a nucleotide-induced isomerzation that controls substrate selection.

摘要

人类胞质磺基转移酶 (SULTs) 将硫酸基 (-SO(3)) 从活化的硫酸盐 [3'-磷酸腺苷 5'-磷酸硫酸酯 (PAPS)] 转移到许多代谢物、药物和外源性物质的羟基和伯胺上。接收硫酸基通常会彻底改变受体-靶标相互作用。这些酶如何从复杂细胞质中的数百种候选物中选择特定的底物,仍然是一个重要的问题。最近的工作表明,PAPS 结合导致 SULT2A1 发生构象变化,通过限制接受体进入活性位点必须通过的开口来控制选择性。该酶通过与核苷酸结合在开放和关闭状态之间进行构象变化来保持对大底物的亲和力。在这里,通过平衡和非平衡分子动力学模拟探索了核苷酸诱导的闭合的分子基础。模拟预测,覆盖核苷酸和接受体结合位点的活性位点“盖”会响应核苷酸而打开和关闭。盖分为核苷酸和接受体两部分,虽然它们的运动是耦合的,但表现出一种独立性,可以解释构象变化。在计算机中削弱盖和活性位点碱基之间的静电相互作用会导致接受体盖打开和关闭,而核苷酸盖保持关闭。模拟预测,人类肝脏中最丰富的 SULT1A1 将利用类似的选择机制。这一预测通过使用氟维司群(一种太大而无法通过关闭孔的抗雌激素)和雌二醇进行测试,后者不受关闭限制。平衡和预稳态结合研究证实,SULT1A1 发生核苷酸诱导的构象变化,从而控制底物选择。

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