| Literature DB >> 27007119 |
F F Zou1, Q Guo1, Y Sun1, D Zhou1, M X Hu1, H X Hu1, B Q Liu1, M M Tian1, X M Liu1, X X Li1, L Ma1, B Shen2, C L Zhu3.
Abstract
BACKGROUND: Continuous and excessive application of deltamethrin (DM) has resulted in the rapid development of insecticide resistance in Culex pipiens pallens. The quantitative trait loci (QTL) responsible for resistance to DM had previously been detected in Cx. pipiens pallens. But locating the QTLs on the chromosomes remained difficult. An available approach is to first characterize DNA molecular markers linked with the phenotype, and then identify candidate genes.Entities:
Keywords: AFLP; CYP6CP1; Culex pipiens pallens; Deltamethrin resistance; Protease m1 zinc metalloprotease
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Year: 2016 PMID: 27007119 PMCID: PMC4806500 DOI: 10.1186/s13071-016-1450-4
Source DB: PubMed Journal: Parasit Vectors ISSN: 1756-3305 Impact factor: 3.876
Fig. 1Screening potential candidate genes via quantitative real-time PCR in Culex pipiens pallens. The relative expression levels of five genes were detected in adult female mosquitoes of the Lab-DS (LC50 = 0.04 mg/L) and Lab-DR4 (LC50 = 3.43 mg/L) strains. The gene CPIJ012484 (CYP6CP1) was significantly over-expressed in the resistant strain while gene CPIJ012471 (protease m1 zinc metalloprotease) was under-expressed. The results were shown as the mean ± S.E. **P < 0.01 compared with the Lab-DS strain
Fig. 2Functional study of protease m1 zinc metalloprotease in the Lab-DS strain. Mortalities of microinjected mosquitoes were observed after a 2 h exposure to American CDC bottles treated with deltamethrin (0.01 mg/ml). The siRNA345 microinjected group had a relatively lower mortality rate than the negative control (NC) and non-injected groups. The figures show the mean ± SD of three independent experiments (*P < 0.05)
Fig. 3Expression levels of protease m1 zinc metalloprotease at all development stages. The gene expression level at the female stage in Lab-DS strain was considered to be 1. The figures show the mean ± SD of three independent experiments. *P < 0.05, **P < 0.01 compared with the Lab-DS strain
Fig. 4a Expression profiles of protease m1 zinc metalloprotease transcripts in five strains with different deltamethrin resistance levels. The results were shown as the mean ± S.E. Significant differences indicated by *(P < 0.05) and **(P < 0.01) were compared with the Lab-DS strain. b The relationship between protease m1 zinc metalloprotease transcriptional levels and deltamethrin resistance of Culex pipiens pallens. The Y-axis was the ratio of the gene expression in Lab-DR mosquitoes compared with that in Lab-DS mosquitoes, r = −0.97, P < 0.05
Fig. 5The expression analysis of protease m1 zinc metalloprotease in field-collected strains of Culex pipiens pallens. The results were shown as the mean ± S.E. Significant differences indicated by *(P < 0.05) were compared with the corresponding susceptible strain
Fig. 6a Expression levels of CYP6CP1 in various structures of Culex pipiens pallens. The gene expression level of the abdomen in Lab-DS strain was considered to be 1. The figures show the mean ± SD of three independent experiments. *P < 0.05, **P < 0.01 compared with the Lab-DS strain. b Expression levels of protease m1 zinc metalloprotease in various structures of Culex pipiens pallens. The gene expression level of the abdomen in Lab-DS strain was considered to be 1. The figures show the mean ± SD of three independent experiments. *P < 0.05, **P < 0.01 compared with the Lab-DS strain
Fig. 7Relative expression of CYP6CP1 in mosquitoes injected with dsRNA of protease m1 zinc metalloprotease. The relative gene expression of CYP6CP1 along the Y-axis was the ratio of the gene expression in siRNA345-injected (dsRNA of protease m1 zinc metalloprotease) mosquitoes compared with that in NC-injected mosquitoes. The results were shown as the mean ± S.E. Significant differences were indicated by *(P < 0.05)