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变构调节色氨酸合酶β-反应阶段 I 在α-配体结合时。

Allosteric regulation of β-reaction stage I in tryptophan synthase upon the α-ligand binding.

机构信息

Theoretical Molecular Science Laboratory, RIKEN Cluster for Pioneering Research, 2-1 Hirosawa, Wako, Saitama 351-0198, Japan.

出版信息

J Chem Phys. 2023 Mar 21;158(11):115101. doi: 10.1063/5.0134117.

Abstract

Tryptophan synthase (TRPS) is a bifunctional enzyme consisting of α- and β-subunits that catalyzes the last two steps of L-tryptophan (L-Trp) biosynthesis. The first stage of the reaction at the β-subunit is called β-reaction stage I, which converts the β-ligand from an internal aldimine [E(Ain)] to an α-aminoacrylate [E(A-A)] intermediate. The activity is known to increase 3-10-fold upon the binding of 3-indole-D-glycerol-3'-phosphate (IGP) at the α-subunit. The effect of α-ligand binding on β-reaction stage I at the distal β-active site is not well understood despite the abundant structural information available for TRPS. Here, we investigate the β-reaction stage I by carrying out minimum-energy pathway searches based on a hybrid quantum mechanics/molecular mechanics (QM/MM) model. The free-energy differences along the pathway are also examined using QM/MM umbrella sampling simulations with QM calculations at the B3LYP-D3/aug-cc-pVDZ level of theory. Our simulations suggest that the sidechain orientation of βD305 near the β-ligand likely plays an essential role in the allosteric regulation: a hydrogen bond is formed between βD305 and the β-ligand in the absence of the α-ligand, prohibiting a smooth rotation of the hydroxyl group in the quinonoid intermediate, whereas the dihedral angle rotates smoothly after the hydrogen bond is switched from βD305-β-ligand to βD305-βR141. This switch could occur upon the IGP-binding at the α-subunit, as evidenced by the existing TRPS crystal structures.

摘要

色氨酸合酶(TRPS)是一种由α-和β-亚基组成的双功能酶,催化 L-色氨酸(L-Trp)生物合成的最后两个步骤。反应的第一阶段在β-亚基上称为β-反应阶段 I,其中将β-配体从内部亚胺 [E(Ain)]转化为α-氨基丙烯酸酯 [E(A-A)]中间体。已知当 3-吲哚-D-甘油-3'-磷酸(IGP)结合到α-亚基上时,活性会增加 3-10 倍。尽管 TRPS 有丰富的结构信息,但对于α-配体结合对远端β-活性部位的β-反应阶段 I 的影响还不是很清楚。在这里,我们通过基于混合量子力学/分子力学(QM/MM)模型进行最低能量路径搜索来研究β-反应阶段 I。还使用 QM/MM 伞状采样模拟结合 B3LYP-D3/aug-cc-pVDZ 理论水平的 QM 计算来检查路径上的自由能差异。我们的模拟表明,β-配体附近的βD305侧链取向可能在变构调节中起着重要作用:在没有α-配体的情况下,βD305和β-配体之间形成氢键,阻止醌型中间体中羟基的顺利旋转,而在氢键从βD305-β-配体切换到βD305-βR141 后,二面角顺利旋转。这种转变可能发生在α-亚基上的 IGP 结合时,这可以从现有的 TRPS 晶体结构中得到证明。

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