| Literature DB >> 24204917 |
Yongqiang Li1, Claire A Farnsworth, Chris W Coppin, Mark G Teese, Jian-Wei Liu, Colin Scott, Xing Zhang, Robyn J Russell, John G Oakeshott.
Abstract
Two mutations have been found in five closely related insect esterases (from four higher Diptera and a hymenopteran) which each confer organophosphate (OP) hydrolase activity on the enzyme and OP resistance on the insect. One mutation converts a Glycine to an Aspartate, and the other converts a Tryptophan to a Leucine in the enzymes' active site. One of the dipteran enzymes with the Leucine mutation also shows enhanced activity against pyrethroids. Introduction of the two mutations in vitro into eight esterases from six other widely separated insect groups has also been reported to increase substantially the OP hydrolase activity of most of them. These data suggest that the two mutations could contribute to OP, and possibly pyrethroid, resistance in a variety of insects. We therefore introduced them in vitro into eight Helicoverpa armigera esterases from a clade that has already been implicated in OP and pyrethroid resistance. We found that they do not generally enhance either OP or pyrethroid hydrolysis in these esterases but the Aspartate mutation did increase OP hydrolysis in one enzyme by about 14 fold and the Leucine mutation caused a 4-6 fold increase in activity (more in one case) of another three against some of the most insecticidal isomers of fenvalerate and cypermethrin. The Aspartate enzyme and one of the Leucine enzymes occur in regions of the H. armigera esterase isozyme profile that have been previously implicated in OP and pyrethroid resistance, respectively.Entities:
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Year: 2013 PMID: 24204917 PMCID: PMC3812244 DOI: 10.1371/journal.pone.0077685
Source DB: PubMed Journal: PLoS One ISSN: 1932-6203 Impact factor: 3.240
Figure 1Native PAGE of the wild-type and mutant forms of the eight Clade 1esterases.
Ref is a bulk homogenate of fourth instar larvae from the GR strain [13] and Rm values for some key Ref bands are given on the side of each panel. Amounts of enzyme loaded (number of active sites × 10−11 calculated from the titration values in Table S1) are given below the enzyme names; these amounts were varied across the enzymes in order to produce qualitatively similar staining intensities for as many enzymes as possible. Note that “10−11” was omitted from the description of enzyme amounts in the original presentation of the wild-type isozyme profiles in Figure 1 of Teese et al. [32].
Carboxylesterase activities for the wild-type and mutant forms of the eight H. armigera esterases with 1-naphthyl acetate as substrate.
| Enzyme | Specificactivity |
|
| ||||
| 001b | Wt | 47 | (2) | 63 | (4) | 199 | (25) |
| A125D | 3 | (0) | 18 | (4) | 2056 | (553) | |
| F236L | 37 | (1) | 45 | (2) | 147 | (13) | |
| AF/DL | 2 | na | na | ||||
| 001c | Wt | 214 | (47) | 522 | (145) | 712 | (210) |
| A127D | 5 | (4) | na | na | |||
| 001d | Wt | 551 | (119) | 744 | (162) | 142 | (18) |
| A124D | 19 | (1) | na | na | |||
| F235L | 593 | (23) | 1184 | (72) | 489 | (45) | |
| AF/DL | 10 | na | na | ||||
| 001f | Wt | 110 | (7) | 108 | (4) | 4 | (1) |
| A127D | 6 | (0) | 6 | (0) | 5 | (1) | |
| F238L | 116 | (10) | 117 | (5) | 6 | (2) | |
| AF/DL | 40 | (33) | 43 | (36) | 31 | (10) | |
| 001g | Wt | 436 | (30) | 444 | (27) | 4 | (1) |
| A127D | 421 | (48) | 494 | (51) | 61 | (7) | |
| F238L | 257 | (13) | 246 | (7) | 1 | (0) | |
| AF/DL | 227 | (67) | 288 | (81) | 127 | (36) | |
| 001h | Wt | 71 | (4) | 96 | (3) | 9 | (2) |
| A125D | 3 | (0) | 4 | (1) | 279 | (29) | |
| 001i | Wt | 20 | (4) | 24 | (4) | 74 | (20) |
| G130D | 2 | (0) | 6 | (1) | 902 | (318) | |
| 001j | Wt | 502 | (27) | 569 | (32) | 46 | (5) |
| A125D | 17 | (3) | 29 | (6) | 353 | (52) | |
| F236L | 359 | (8) | 550 | (27) | 241 | (24) | |
| AF/DL | 1 | na | na | ||||
| E3 | Wt | 1173 | (59) | 1399 | (70) | 88 | (10) |
| G137D | 650 | (97) | 763 | (82) | 34 | (7) | |
| W251L | 1234 | (83) | 1562 | (76) | 115 | (12) | |
Specific activities (at 500 µM substrate) (sec−1) and estimates of K m (µM) and k (sec−1) are shown. Estimates are based on an average of six replicates and standard errors for these estimates are also given in brackets. Values for the wild-type and corresponding mutants of L. cuprina E3 are also shown as controls. na, value could not be calculated.
Estimates of kcat (min−1.103) for the wild-type and mutant forms of the eight H. armigera esterases with the OPs dEUP and dMUP as substrates.
| Enzyme |
|
| |||
| 001b | Wt | 24.6 | (2.9) | 15.5 | (0.6) |
| A125D | 10.8 | (0.1) | 0.0 | (0.0) | |
| F236L | 14.2 | (0.2) | 29.3 | (3.2) | |
| AF/DL | 4.1 | (0.1) | 5.2 | (0.2) | |
| 001c | Wt | 13.0 | (2.5) | 26.5 | (2.7) |
| A127D | 178.3 | (4.2) | 33.2 | (7.4) | |
| 001d | Wt | 9.4 | (1.6) | 11.4 | (1.2) |
| A124D | 0.4 | (0.0) | 2.1 | (0.2) | |
| F235L | 25.7 | (2.6) | 38.5 | (3.5) | |
| AF/DL | 10.4 | (0.6) | 14.6 | (0.4) | |
| 001f | Wt | 14.0 | (2.0) | 16.6 | (3.2) |
| A127D | 4.9 | (0.1) | 3.9 | (0.5) | |
| F238L | 12.3 | (1.3) | 17.8 | (0.8) | |
| AF/DL | 37.7 | (4.5) | 45.4 | ||
| 001g | Wt | 21.9 | (1.7) | 27.9 | (1.8) |
| A127D | 25.2 | (1.3) | 16.3 | (8.3) | |
| F238L | 16.4 | (0.6) | 22.1 | (0.8) | |
| AF/DL | 24.5 | (3.0) | nd | ||
| 001h | Wt | 19.3 | (0.7) | 27.2 | (3.8) |
| A125D | 0.5 | (0.1) | 2.0 | (0.1) | |
| 001i | Wt | 19.0 | (3.5) | 15.5 | (2.1) |
| G130D | 1.0 | (0.1) | 3.3 | (0.3) | |
| 001j | Wt | 13.3 | (1.1) | 29.7 | (2.2) |
| A125D | 2.0 | (0.1) | 0.4 | (0.4) | |
| F236L | 16.8 | (2.5) | 33.0 | (0.5) | |
| AF/DL | 0.7 | (0.1) | 7.5 | (0.2) | |
| E3 | Wt | 8.8 | (1.0) | 13.3 | (0.7) |
| G137D | 92.4 | (3.7) | 144.3 | (6.8) | |
| W251L | 27.5 | (3.3) | 182.9 | (7.3) | |
Estimates are based on an average of five replicates and standard errors for these estimates are also given in brackets. Values for the wild-type enzymes and the three E3 controls are taken from Teese et al. [32]. nd, not determined.
Estimates of turn over numbers (min−1) for the wild-type (Wt) and Leu mutants of five of the esterases with esfenvalerate and the eight isomers of cypermethrin.
| Esfenvalerate | Cypermethrin isomers | ||||||||||||||||||
| Enzyme | 2( | 1( | 1( | 1( | 1( | 1( | 1( | 1( | 1( | ||||||||||
| 001b | Wt | 1.5 | (1.5) | 37.3 | (1.6) | 32.3 | (2.0) | 4.4 | (1.7) | 7.9 | (0.5) | 2.1 | (0.3) | 5.8 | (3.6) | 3.9 | (3.9) | 5.4 | (1.5) |
| 001b | F236L | 9.1 | (3.3) | 49.1 | (6.9) | 24.1 | (2.4) | 6.3 | (1.2) | 3.8 | (3.5) | 0.9 | (0.7) | 7.7 | (3.5) | 5.7 | (4.5) | 9.7 | (3.2) |
| 001d | Wt | 0.8 | (0.5) | 16.0 | (3.6) | 24.6 | (4.4) | 6.2 | (3.7) | 3.2 | (0.9) | 10.1 | (9.9) | 1.9 | (0.9) | 4.1 | (2.7) | 3.4 | (1.4) |
| 001d | F235L | 5.5 | (3.8) | 53.8 | (11.3) | 55.9 | (12.9) | 1.7 | (1.7) | 7.1 | (1.9) | 0.0 | (0.0) | 11.1 | (2.1) | 18.3 | (3.3) | 14.0 | (3.6) |
| 001f | Wt | 0.0 | (0.0) | 3.0 | (0.2) | 2.8 | (0.2) | 0.0 | (0.0) | 0.4 | (0.0) | 0.2 | (0.2) | 0.9 | (0.9) | 1.3 | (1.3) | 2.7 | (0.9) |
| 001f | F238L | 0.4 | (0.4) | 1.9 | (1.2) | 0.8 | (0.4) | 1.8 | (1.2) | 2.3 | (1.1) | 0.0 | (0.0) | 4.3 | (1.7) | 5.7 | (0.9) | 6.2 | (0.1) |
| 001g | Wt | 17.0 | (11.4) | 12.9 | (6.7) | 12.8 | (2.2) | 0.0 | (0.0) | 8.8 | (8.8) | 1.3 | (1.3) | 15.7 | (0.3) | 9.3 | (9.3) | 23.2 | (12.3) |
| 001g | F238L | 1.8 | (1.8) | 2.0 | (0.8) | 8.8 | (4.9) | 1.6 | (1.6) | 12.6 | (3.2) | 1.4 | (1.4) | 8.2 | (8.2) | 4.9 | (0.9) | 9.1 | (9.1) |
| 001j | Wt | 1.8 | (1.8) | 32.9 | (2.9) | 55.1 | (3.9) | 0.5 | (0.5) | 9.1 | (3.6) | 2.2 | (1.1) | 9.0 | (3.5) | 11.6 | (3.0) | 12.4 | (1.9) |
| 001j | F236L | 0.0 | (0.0) | 38.5 | (7.1) | 79.6 | (9.2) | 0.4 | (0.4) | 13.6 | (4.0) | 2.1 | (2.1) | 8.0 | (5.2) | 9.1 | (6.0) | 13.1 | (0.9) |
| E3 | Wt | 1.9 | (1.9) | 22.3 | (2.5) | 11.5 | (5.9) | 1.8 | (1.8) | 5.7 | (5.7) | 0.0 | (0.0) | 14.8 | (1.8) | 18.5 | (18.5) | 10.6 | (10.6) |
| W251L | 61.4 | (26.6) | 108.8 | (14.5) | 28.3 | (4.2) | 7.5 | (5.4) | 11.7 | (6.6) | 4.1 | (2.3) | 12.1 | (7.7) | 35.5 | (5.8) | 20.0 | (8.0) | |
Estimates are based on an average of three replicates and standard errors for these estimates are also given in brackets. Values for the wild-type enzymes and two E3 controls are taken from Teese et al. [32].