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通过同源结构比较和合理设计提高尼古丁氧化酶的动力学参数。

Improving the kinetic parameters of nicotine oxidizing enzymes by homologous structure comparison and rational design.

机构信息

Department of Molecular Biosciences, University of Kansas, Lawrence, KS, 66045, USA.

NYX, New York Structural Biology Center, Upton, NY, 11973, USA.

出版信息

Arch Biochem Biophys. 2022 Mar 30;718:109122. doi: 10.1016/j.abb.2022.109122. Epub 2022 Jan 19.

Abstract

Demand exists for a nicotine oxidase enzyme with high catalytic efficiency for a variety of applications including the in vivo detection of nicotine, therapeutic enzymatic blockade of nicotine from the CNS, and inactivation of toxic industrial wastes generated in the manufacture of tobacco products. Nicotine oxidase enzymes identified to date suffer from low efficiency, exhibiting either a high k or low K, but not both. Here we present the crystal structure of the (S)-6-hydroxy-nicotine oxidase from Shinella sp HZN7 (NctB), an enzyme that oxidizes (S)-nicotine with a high k (>1 s), that possesses remarkable structural and sequence similarity to an enzyme with a nanomolar K for (S)-nicotine, the (S)-nicotine oxidase from Pseudomonas putidia strain S16 (NicA2). Based on a comparison of our NctB structure and the previously published crystal structure of NicA2, we successfully employed a rational design approach to increase the rate of oxidative turnover of the NicA2 enzyme by ∼25% (0.011 s to 0.014 s), and reduce the K of the NctB protein by approximately 34% (940 μM-622 μM). While modest, these results are a step towards engineering a nicotine oxidase with kinetic parameters that fulfill the functional requirements of biosensing, waste remediation, and therapeutic applications.

摘要

目前需要一种具有高效催化能力的尼古丁氧化酶,用于多种应用,包括体内尼古丁检测、中枢神经系统中尼古丁的治疗性酶阻断以及烟草产品制造过程中产生的有毒工业废物的失活。迄今为止,已鉴定出的尼古丁氧化酶效率低下,要么表现出高 k 或低 K,但两者都不是。在这里,我们展示了 Shinella sp HZN7(NctB)中(S)-6-羟基尼古丁氧化酶的晶体结构,该酶以高 k(>1 s)氧化(S)-尼古丁,其与具有纳摩尔 K 对(S)-尼古丁的酶具有显著的结构和序列相似性,即 Pseudomonas putidia 菌株 S16 中的(S)-尼古丁氧化酶(NicA2)。基于我们的 NctB 结构与先前发表的 NicA2 晶体结构的比较,我们成功地采用了合理的设计方法,将 NicA2 酶的氧化周转率提高了约 25%(0.011 s 至 0.014 s),并将 NctB 蛋白的 K 值降低了约 34%(940 μM-622 μM)。虽然这些结果只是朝着工程化具有满足生物传感、废物修复和治疗应用功能要求的尼古丁氧化酶的方向迈出的一小步。

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