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Updated: Mar 19, 2026

Functional Characterization of Carboxylesterases in Insecticide Resistant House Flies, Musca Domestica
Published on: August 23, 2018
New insights on molecular interactions of organophosphorus pesticides with esterases
Iris Mangas1, Jorge Estevez2, Eugenio Vilanova2
1Laboratory of Molecular Modeling Applied to the Chemical and Biological Defense (LMCBD), Military Institute of Engineering, Rio de Janeiro, RJ, Brazil.
Abstract:
Organophosphorus compounds (OPs) are a large and diverse class of chemicals mainly used as pesticides and chemical weapons. People may be exposed to OPs in several occasions, which can produce several distinct neurotoxic effects depending on the dose, frequency of exposure, type of OP, and the host factors that influence susceptibility and sensitivity. These neurotoxic effects are mainly due to the interaction with enzyme targets involved in toxicological or detoxication pathways. In this work, the toxicological relevance of known OPs targets is reviewed. The main enzyme targets of OPs have been identified among the serine hydrolase protein family, some of them decades ago (e.g. AChE, BuChE, NTE and carboxylesterases), others more recently (e.g. lysophospholipase, arylformidase and KIA1363) and others which are not molecularly identified yet (e.g. phenylvalerate esterases). Members of this family are characterized by displaying serine hydrolase activity, containing a conserved serine hydrolase motif and having an alpha-beta hydrolase fold. Improvement in Xray-crystallography and in silico methods have generated new data of the interactions between OPs and esterases and have established new methods to study new inhibitors and reactivators of cholinesterases. Mass spectrometry for AChE, BChE and APH have characterized the active site serine adducts with OPs being useful to detect biomarkers of OPs exposure and inhibitory and postinhibitory reactions of esterases and OPs. The purpose of this review is focus specifically on the interaction of OP with esterases, mainly with type B-esterases, which are able to hydrolyze carboxylesters but inhibited by OPs by covalent phosphorylation on the serine or tyrosine residue in the active sites. Other related esterases in some cases with no-irreversible effect are also discussed. The understanding of the multiple molecular interactions is the basis we are proposing for a multi-target approach for understanding the organophosphorus toxicity.
Insights
Organophosphorus compounds (OPs) exert neurotoxic effects by interacting with serine hydrolases. This review details OP-esterase interactions, proposing a multi-target approach for understanding OP toxicity.
Area of Science:
- Biochemistry
- Toxicology
- Enzymology
Background:
- Organophosphorus compounds (OPs) are widely used as pesticides and chemical weapons.
- OP exposure can lead to diverse neurotoxic effects influenced by dose, frequency, OP type, and host factors.
- Neurotoxicity arises from OP interactions with enzyme targets in toxicological or detoxication pathways.
Purpose of the Study:
- To review the toxicological relevance of known organophosphorus compound targets.
- To focus on the molecular interactions between organophosphorus compounds and esterases, particularly type B-esterases.
- To propose a multi-target approach for understanding organophosphorus toxicity based on molecular interactions.
Main Methods:
- Review of existing literature on organophosphorus compound targets and their interactions with esterases.
- Analysis of data from X-ray crystallography and in silico methods regarding OP-esterase interactions.
- Examination of mass spectrometry data characterizing active site serine adducts with OPs.
Main Results:
- Organophosphorus compounds primarily target serine hydrolases, including acetylcholinesterase (AChE), butyrylcholinesterase (BuChE), and carboxylesterases.
- X-ray crystallography and in silico methods provide insights into OP-esterase interactions, aiding in the development of inhibitors and reactivators.
- Mass spectrometry identifies OP-esterase adducts, useful for detecting exposure biomarkers and studying reaction kinetics.
Conclusions:
- Understanding the diverse molecular interactions between OPs and esterases is crucial for comprehending OP toxicity.
- Type B-esterases are key targets, undergoing covalent phosphorylation by OPs.
- A multi-target approach is proposed to better understand the complex mechanisms of organophosphorus toxicity.
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