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Updated: Mar 29, 2026

Multi-enzyme Screening Using a High-throughput Genetic Enzyme Screening System
Published on: August 8, 2016
Catalytic efficiencies of directly evolved phosphotriesterase variants with structurally different organophosphorus
Moshe Goldsmith1, Simone Eckstein2, Yacov Ashani1
1Department of Biological Chemistry, Weizmann Institute of Science, Rehovot, Israel.
Abstract:
The nearly 200,000 fatalities following exposure to organophosphorus (OP) pesticides each year and the omnipresent danger of a terroristic attack with OP nerve agents emphasize the demand for the development of effective OP antidotes. Standard treatments for intoxicated patients with a combination of atropine and an oxime are limited in their efficacy. Thus, research focuses on developing catalytic bioscavengers as an alternative approach using OP-hydrolyzing enzymes such as Brevundimonas diminuta phosphotriesterase (PTE). Recently, a PTE mutant dubbed C23 was engineered, exhibiting reversed stereoselectivity and high catalytic efficiency (k cat/K M) for the hydrolysis of the toxic enantiomers of VX, CVX, and VR. Additionally, C23's ability to prevent systemic toxicity of VX using a low protein dose has been shown in vivo. In this study, the catalytic efficiencies of V-agent hydrolysis by two newly selected PTE variants were determined. Moreover, in order to establish trends in sequence-activity relationships along the pathway of PTE's laboratory evolution, we examined k cat/K M values of several variants with a number of V-type and G-type nerve agents as well as with different OP pesticides. Although none of the new PTE variants exhibited k cat/K M values >107 M-1 min-1 with V-type nerve agents, which is required for effective prophylaxis, they were improved with VR relative to previously evolved variants. The new variants detoxify a broad spectrum of OPs and provide insight into OP hydrolysis and sequence-activity relationships.
Insights
New enzyme variants show promise in detoxifying organophosphorus (OP) pesticides and nerve agents, offering potential new antidotes. Research explores sequence-activity relationships for improved catalytic bioscavengers against OP exposure.
Area of Science:
- Biochemistry
- Enzyme Engineering
- Toxicology
Background:
- Organophosphorus (OP) pesticides cause significant annual fatalities, and OP nerve agents pose a terroristic threat.
- Current antidotes (atropine and oxime) have limited efficacy against OP intoxication.
- Catalytic bioscavengers using OP-hydrolyzing enzymes, like phosphotriesterase (PTE), are being developed as alternatives.
Purpose of the Study:
- To evaluate the catalytic efficiency of novel PTE variants against V-agent hydrolysis.
- To investigate sequence-activity relationships in PTE evolution for OP detoxification.
- To assess the broad-spectrum OP hydrolysis capabilities of new PTE variants.
Main Methods:
- Engineered PTE variants were selected and characterized.
- Catalytic efficiencies (kcat/KM) were determined for hydrolysis of V-type and G-type nerve agents and OP pesticides.
- In vivo efficacy of a previously engineered PTE mutant (C23) against VX toxicity was confirmed.
Main Results:
- Two new PTE variants showed improved catalytic efficiency against VR compared to earlier variants.
- None of the new variants reached the >10^7 M^-1 min^-1 threshold for V-type nerve agent prophylaxis.
- The studied PTE variants demonstrated broad-spectrum detoxification of various OPs.
Conclusions:
- Newly evolved PTE variants offer enhanced hydrolysis of certain OP compounds.
- These variants provide valuable insights into OP hydrolysis mechanisms and enzyme evolution.
- Further development of PTE-based bioscavengers is warranted for effective OP antidote strategies.
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