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Altering the Substrate Specificity of Organophosphorus Hydrolase for Enhanced Hydrolysis of Chlorpyrifos

机译:改变有机磷水解酶的底物特异性以增强毒死rif的水解

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摘要

Chlorpyrifos is one of the most popular pesticides used for agriculture crop protection, and widespread contamination is a potential concern. However, chlorpyrifos is hydrolyzed almost 1,000-fold slower than the preferred substrate, paraoxon, by organophosphorus hydrolase (OPH), an enzyme that can degrade a broad range of organophosphate pesticides. We have recently demonstrated that directed evolution can be used to generate OPH variants with up to 25-fold improvement in hydrolysis of methyl parathion. The obvious question and challenge are whether similar success could be achieved with this poorly hydrolyzed substrate, chlorpyrifos. For this study, five improved variants were selected from two rounds of directed evolution based on the formation of clear haloes on Luria-Bertani plates overlaid with chlorpyrifos. One variant, B3561, exhibited a 725-fold increase in the kcat/Km value for chlorpyrifos hydrolysis as well as enhanced hydrolysis rates for several other OP compounds tested. Considering that wild-type OPH hydrolyzes paraoxon at a rate close to the diffusion control limit, the 39-fold improvement in hydrolysis of paraoxon by B3561 suggests that this variant is one of the most efficient enzymes available to attack a wide spectrum of organophosphate nerve agents.
机译:毒死rif是用于农业作物保护的最受欢迎的农药之一,广泛的污染是一个潜在的问题。但是,毒死rif的降解速度比优选的底物对氧磷慢了1000倍,而有机磷水解酶(OPH)是一种可以降解多种有机磷农药的酶。我们最近证明,定向进化可用于产生OPH变体,甲基对硫磷的水解最多可提高25倍。显而易见的问题和挑战是,这种水解较差的底物毒死rif能否获得类似的成功。对于本研究,基于在覆盖有毒死rif的Luria-Bertani板上形成的透明光环,从两轮定向进化中选择了五个改进的变体。一种变体B3561在毒死rif的水解中显示出kcat / Km值增加725倍,而在测试的其他几种OP化合物中,其水解速率也提高了。考虑到野生型OPH以接近扩散控制极限的速率水解对氧磷,B3561对氧磷的水解提高了39倍,这表明该变异体是可用于攻击各种有机磷酸神经药的最有效酶之一。

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