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对酿酒葡萄 DHDPS 的结构、动力学和计算研究揭示了赖氨酸介导的别构抑制机制的新见解。

Structural, kinetic and computational investigation of Vitis vinifera DHDPS reveals new insight into the mechanism of lysine-mediated allosteric inhibition.

机构信息

Department of Biochemistry, La Trobe Institute for Molecular Science, La Trobe University, Melbourne, VIC, 3086, Australia.

出版信息

Plant Mol Biol. 2013 Mar;81(4-5):431-46. doi: 10.1007/s11103-013-0014-7. Epub 2013 Jan 26.

Abstract

Lysine is one of the most limiting amino acids in plants and its biosynthesis is carefully regulated through inhibition of the first committed step in the pathway catalyzed by dihydrodipicolinate synthase (DHDPS). This is mediated via a feedback mechanism involving the binding of lysine to the allosteric cleft of DHDPS. However, the precise allosteric mechanism is yet to be defined. We present a thorough enzyme kinetic and thermodynamic analysis of lysine inhibition of DHDPS from the common grapevine, Vitis vinifera (Vv). Our studies demonstrate that lysine binding is both tight (relative to bacterial DHDPS orthologs) and cooperative. The crystal structure of the enzyme bound to lysine (2.4 Å) identifies the allosteric binding site and clearly shows a conformational change of several residues within the allosteric and active sites. Molecular dynamics simulations comparing the lysine-bound (PDB ID 4HNN) and lysine free (PDB ID 3TUU) structures show that Tyr132, a key catalytic site residue, undergoes significant rotational motion upon lysine binding. This suggests proton relay through the catalytic triad is attenuated in the presence of lysine. Our study reveals for the first time the structural mechanism for allosteric inhibition of DHDPS from the common grapevine.

摘要

赖氨酸是植物中最受限制的氨基酸之一,其生物合成通过抑制二氢二吡啶羧酸合酶(DHDPS)催化的途径中的第一步来精细调节。这是通过涉及赖氨酸与 DHDPS 的变构裂隙结合的反馈机制来介导的。然而,确切的变构机制尚未确定。我们对来自普通葡萄(Vitis vinifera)的 DHDPS 的赖氨酸抑制进行了全面的酶动力学和热力学分析。我们的研究表明,赖氨酸结合既紧密(相对于细菌 DHDPS 同源物)又协同。与赖氨酸结合的酶的晶体结构(2.4Å)确定了变构结合位点,并清楚地显示了变构和活性位点内几个残基的构象变化。比较赖氨酸结合(PDB ID 4HNN)和赖氨酸自由(PDB ID 3TUU)结构的分子动力学模拟表明,Tyr132,一个关键的催化位点残基,在赖氨酸结合时经历显著的旋转运动。这表明在赖氨酸存在下,催化三联体的质子传递被削弱。我们的研究首次揭示了普通葡萄 DHDPS 的变构抑制的结构机制。

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