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分子结合支架增加了局部底物浓度,从而增强了 VX 神经毒剂的酶解作用。

Molecular binding scaffolds increase local substrate concentration enhancing the enzymatic hydrolysis of VX nerve agent.

机构信息

Chemical and Environmental Engineering Department, University of California, Riverside, California.

Biochemistry Department, University of California, Riverside, California.

出版信息

Biotechnol Bioeng. 2020 Jul;117(7):1970-1978. doi: 10.1002/bit.27346. Epub 2020 Apr 16.

Abstract

Kinetic enhancement of organophosphate hydrolysis is a long-standing challenge in catalysis. For prophylactic treatment against organophosphate exposure, enzymatic hydrolysis needs to occur at high rates in the presence of low substrate concentrations and enzymatic activity should persist over days and weeks. Here, the conjugation of small DNA scaffolds was used to introduce substrate binding sites with micromolar affinity to VX, paraoxon, and methyl-parathion in close proximity to the enzyme phosphotriesterase (PTE). The result was a decrease in K and increase in the rate at low substrate concentrations. An optimized system for paraoxon hydrolysis decreased K by 11-fold, with a corresponding increase in second-order rate constant. The initial rates of VX and methyl-parathion hydrolysis were also increased by 3.1- and 6.7-fold, respectively. The designed scaffolds not only increased the local substrate concentration, but they also resulted in increased stability and PTE-DNA particle size tuning between 25 and ~150 nm. The scaffold engineering approach taken here is focused on altering the local chemical and physical microenvironment around the enzyme and is therefore compatible with active site engineering via combinatorial and computational approaches.

摘要

有机磷水解的动力学增强一直是催化领域的一个挑战。对于有机磷暴露的预防治疗,酶解需要在低底物浓度和酶活性持续数天和数周的情况下以高速率进行。在这里,使用小的 DNA 支架的缀合将具有微摩尔亲和力的底物结合位点引入到 VX、对氧磷和甲基对氧磷附近,靠近酶磷酸三酯酶(PTE)。结果是在低底物浓度下降低了 K 值并增加了反应速率。对氧磷水解的优化系统将 K 值降低了 11 倍,相应的二级反应速率常数增加。VX 和甲基对氧磷水解的初始速率分别增加了 3.1 倍和 6.7 倍。设计的支架不仅增加了局部底物浓度,而且还导致稳定性增加,并且 PTE-DNA 颗粒大小在 25 到 150nm 之间进行了调整。此处采用的支架工程方法侧重于改变酶周围的局部化学和物理微环境,因此与通过组合和计算方法进行的活性位点工程兼容。

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