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Structure of HI-6•Sarin-Acetylcholinesterase Determined by X-Ray Crystallography and Molecular Dynamics Simulation: Reactivator Mechanism and Design

机译:X射线晶体学测定HI-6•沙林-乙酰胆碱酯酶的结构及分子动力学模拟:活化剂机理与设计

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摘要

Organophosphonates such as isopropyl metylphosphonofluoridate (sarin) are extremely toxic as they phosphonylate the catalytic serine residue of acetylcholinesterase (AChE), an enzyme essential to humans and other species. Design of effective AChE reactivators as antidotes to various organophosphonates requires information on how the reactivators interact with the phosphonylated AChEs. However, such information has not been available hitherto because of three main challenges. First, reactivators are generally flexible in order to change from the ground state to the transition state for reactivation; this flexibility discourages determination of crystal structures of AChE in complex with effective reactivators that are intrinsically disordered. Second, reactivation occurs upon binding of a reactivator to the phosphonylated AChE. Third, the phosphorous conjugate can develop resistance to reactivation. We have identified crystallographic conditions that led to the determination of a crystal structure of the sarinnonaged-conjugated mouse AChE in complex with [(E)-[1-[(4-carbamoylpyridin-1-ium-1-yl)methoxymethyl]pyridin-2-ylidene]methyl]-oxoazanium dichloride (HI-6) at a resolution of 2.2 Å. In this structure, the carboxyamino-pyridinium ring of HI-6 is sandwiched by Tyr124 and Trp286, however, the oxime-pyridinium ring is disordered. By combining crystallography with microsecond molecular dynamics simulation, we determined the oxime-pyridinium ring structure, which shows that the oxime group of HI-6 can form a hydrogen-bond network to the sarin isopropyl ether oxygen, and a water molecule is able to form a hydrogen bond to the catalytic histidine residue and subsequently deprotonates the oxime for reactivation. These results offer insights into the reactivation mechanism of HI-6 and design of better reactivators.
机译:有机膦酸酯(如异丙基甲基膦酰氟酸酯(沙林))具有极高的毒性,因为它们使乙酰胆碱酯酶(AChE)(人和其他物种必需的酶)的催化丝氨酸残基磷酸化。设计有效的AChE活化剂作为各种有机膦的解毒剂,需要有关该活化剂如何与膦酰化的AChE相互作用的信息。然而,由于三个主要挑战,迄今尚未获得此类信息。首先,重新激活器通常是灵活的,以便从基态更改为过渡状态以进行重新激活。这种灵活性不利于确定与有效内在无序的活化剂复合物中AChE的晶体结构。第二,当再活化剂与膦酰化的AChE结合时发生再活化。第三,磷缀合物可以产生对再活化的抗性。我们已经确定了晶体学条件,导致与[(E)-[1-[(4-氨基甲酰基吡啶-1-基-1-基)甲氧基甲基]吡啶- 2-亚丙基]甲基]-二氯氧杂氮鎓(HI-6),分辨率为2.2。在该结构中,HI-6的羧基氨基-吡啶环被Tyr124和Trp286夹在中间,但是肟-吡啶环是无序的。通过将晶体学与微秒分子动力学模拟相结合,我们确定了肟-吡啶环结构,表明HI-6的肟基可以与沙林异丙醚氧形成氢键网络,并且可以形成水分子与催化的组氨酸残基形成氢键,随后使肟脱质子再活化。这些结果为HI-6的激活机制和更好的激活剂设计提供了见识。

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