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三类不同配体对IspD酶变构抑制的机制

Mechanism of Allosteric Inhibition of the Enzyme IspD by Three Different Classes of Ligands.

作者信息

Schwab Anatol, Illarionov Boris, Frank Annika, Kunfermann Andrea, Seet Michael, Bacher Adelbert, Witschel Matthias C, Fischer Markus, Groll Michael, Diederich François

机构信息

Laboratorium für Organische Chemie, ETH Zurich , Vladimir-Prelog-Weg 3, 8093 Zurich, Switzerland.

Hamburg School of Food Science, Universität Hamburg Grindelallee 117, 20146 Hamburg, Germany.

出版信息

ACS Chem Biol. 2017 Aug 18;12(8):2132-2138. doi: 10.1021/acschembio.7b00004. Epub 2017 Jul 7.

DOI:10.1021/acschembio.7b00004
PMID:28686408
Abstract

Enzymes of the nonmevalonate pathway of isoprenoid biosynthesis are attractive targets for the development of herbicides and drugs against infectious diseases. While this pathway is essential for many pathogens and plants, mammals do not depend on it for the synthesis of isoprenoids. IspD, the third enzyme of the nonmevalonate pathway, is unique in that it has an allosteric regulatory site. We elucidated the binding mode of phenylisoxazoles, a new class of allosteric inhibitors. Allosteric inhibition is effected by large conformational changes of a loop region proximal to the active site. We investigated the different roles of residues in this loop by mutation studies and identified repulsive interactions with Asp291 and Asp292 to be responsible for inhibition. Crystallographic data and the response of mutant enzymes to three different classes of allosteric inhibitors provide an in-depth understanding of the allosteric mechanism. The obtained mutant enzymes show selective resistance to allosteric inhibitors and provide conceptually valuable information for future engineering of herbicide-resistant crops. We found that the isoprenoid precursors IPP and DMAPP are natural inhibitors of Arabidopsis thaliana IspD; however, they do not seem to bind to the allosteric site.

摘要

类异戊二烯生物合成的非甲羟戊酸途径中的酶是开发除草剂和抗传染病药物的有吸引力的靶点。虽然这条途径对许多病原体和植物至关重要,但哺乳动物合成类异戊二烯并不依赖于此途径。非甲羟戊酸途径的第三种酶IspD的独特之处在于它有一个变构调节位点。我们阐明了一类新型变构抑制剂苯基异恶唑的结合模式。变构抑制是由活性位点附近的一个环区域的大构象变化引起的。我们通过突变研究调查了该环中残基的不同作用,并确定与Asp291和Asp292的排斥相互作用是抑制的原因。晶体学数据以及突变酶对三类不同变构抑制剂的反应提供了对变构机制的深入理解。所获得的突变酶对变构抑制剂表现出选择性抗性,并为未来抗除草剂作物的工程改造提供了具有概念价值的信息。我们发现类异戊二烯前体IPP和DMAPP是拟南芥IspD的天然抑制剂;然而,它们似乎不与变构位点结合。

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