A single amino acid substitution converts a carboxylesterase to an organophosphorus hydrolase and confers insecticide resistance on a blowfly

被引:295
作者
Newcomb, RD
Campbell, PM
Ollis, DL
Cheah, E
Russell, RJ
Oakeshott, JG
机构
[1] CSIRO,DIV ENTOMOL,CANBERRA,ACT 2601,AUSTRALIA
[2] AUSTRALIAN NATL UNIV,DIV BOT & ZOOL,CANBERRA,ACT 0200,AUSTRALIA
[3] AUSTRALIAN NATL UNIV,RES SCH CHEM,CANBERRA,ACT 0200,AUSTRALIA
关键词
D O I
10.1073/pnas.94.14.7464
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
Resistance to organophosphorus (OF) insecticides is associated with decreased carboxylesterase activity in several insect species. It has been proposed that the resistance may be the result of a mutation in a carboxylesterase that simultaneously reduces its carboxylesterase activity and confers an OP hydrolase activity (the ''mutant aliesterase hypothesis''). In the sheep blowfly, Lucilia cuprina, the association is due to a change in a specific esterase isozyme, E3, which, in resistant flies, has a null phenotype on gels stained using standard carboxylesterase substrates. Here we show that an OP-resistant allele of the gene that encodes E3 differs at five amino acid replacement sites from a previously described OP-susceptible allele. Knowledge of the structure of a related enzyme (acetylcholinesterase) suggests that one of these substitutions (Gly(137)-->Asp) lies within the active site of the enzyme. The occurrence of this substitution is completely correlated with resistance across 15 isogenic strains. In vitro expression of two natural and two synthetic chimeric alleles shows that the Asp(137) substitution alone is responsible for both the loss of E3's carboxylesterase activity and the acquisition of a novel OP hydrolase activity. Modeling of Asp(137) in the homologous position in acetylcholinesterase suggests that Asp(137) may act as a base to orientate a water molecule in the appropriate position for hydrolysis of the phosphorylated enzyme intermediate.
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页码:7464 / 7468
页数:5
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