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Published on: February 16, 2018
Serine hydrolase KIAA1363: toxicological and structural features with emphasis on organophosphate interactions
Daniel K Nomura1, Kathleen A Durkin, Kyle P Chiang
1Environmental Chemistry and Toxicology Laboratory, Department of Environmental Science, Policy and Management, 115 Wellman Hall, University of California, Berkeley, California 94720-3112, USA.
Abstract:
Serine hydrolase KIAA1363 is highly expressed in invasive cancer cells and is the major protein in mouse brain diethylphosphorylated by and hydrolyzing low levels of chlorpyrifos oxon (CPO) (the activated metabolite of a major insecticide). It is also the primary CPO-hydrolyzing enzyme in spinal cord, kidney, heart, lung, testis, and muscle but not liver, a pattern of tissue expression confirmed by fluorophosphonate-rhodamine labeling. KIAA1363 gene deletion using homologous recombination reduces CPO binding, hydrolysis, and metabolism 3-29-fold on incubation with brain membranes and homogenates determined with 1 nM [(3)H-ethyl]CPO and the inhibitory potency for residual CPO with butyrylcholinesterase as a biomarker. Studies with knockout mice further show that KIAA1363 partially protects brain AChE and monoacylglycerol lipase from CPO-induced in vivo inhibition. Surprisingly, mouse brain KIAA1363 and AChE are similar in in vitro sensitivity to seven methyl, ethyl, and propyl but not higher alkyl OP insecticides and analogues, prompting structural comparisons of the active sites of KIAA1363 and AChE relative to OP potency and selectivity. Homology modeling based largely on the Archaeoglobus fulgidus esterase crystal structure indicates that KIAA1363 has a catalytic triad of S191, D348, and H378, a GDSAG motif, and an oxyanion hole of H113, G114, G115, and G116. Excellent selectivity for KIAA1363 is achieved on OP structure optimization with long alkyl chain substituents suggesting that KIAA1363 has larger acyl and leaving group pockets than those of AChE. KIAA1363 reactivates faster than AChE presumably due to differences in the uncoupling of the catalytic triad His upon phosphorylation. The structural modeling of KIAA1363 helps us understand OP structure-activity relationships and the toxicological relevance of this detoxifying enzyme.
Insights
Serine hydrolase KIAA1363 detoxifies the insecticide chlorpyrifos oxon (CPO) in multiple mouse tissues. Gene deletion of KIAA1363 reduces CPO hydrolysis, revealing its protective role against insecticide inhibition.
Area of Science:
- Biochemistry
- Toxicology
- Enzymology
Background:
- Serine hydrolase KIAA1363 is highly expressed in invasive cancer cells.
- KIAA1363 hydrolyzes chlorpyrifos oxon (CPO), the activated metabolite of a major insecticide.
Purpose of the Study:
- To investigate the role of KIAA1363 in CPO hydrolysis and its protective effects against organophosphate (OP) insecticide toxicity.
- To compare the structural and functional characteristics of KIAA1363 with acetylcholinesterase (AChE) regarding OP insecticide interactions.
Main Methods:
- KIAA1363 gene deletion in mice using homologous recombination.
- Measurement of CPO binding, hydrolysis, and metabolism using radiolabeled CPO.
- In vivo and in vitro inhibition studies with CPO and various OP insecticides.
- Homology modeling of KIAA1363 active site based on esterase crystal structure.
Main Results:
- KIAA1363 gene deletion reduced CPO hydrolysis by 3-29 fold in mouse brain membranes and homogenates.
- KIAA1363 partially protected mouse brain acetylcholinesterase (AChE) and monoacylglycerol lipase from CPO-induced inhibition.
- Structural modeling revealed KIAA1363 possesses distinct acyl and leaving group pockets compared to AChE, enabling selective OP hydrolysis.
- KIAA1363 exhibits faster reactivation than AChE, suggesting differences in catalytic triad uncoupling.
Conclusions:
- KIAA1363 is a significant CPO-hydrolyzing enzyme in various mouse tissues, contributing to insecticide detoxification.
- KIAA1363 plays a protective role against OP insecticide toxicity by hydrolyzing CPO and preventing inhibition of key enzymes like AChE.
- Structural insights into KIAA1363 provide a basis for understanding OP structure-activity relationships and the toxicological significance of this enzyme.
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