Literature DB >> 24481906

Cross-resistance, genetics, and realized heritability of resistance to fipronil in the house fly, Musca domestica (Diptera: Muscidae): a potential vector for disease transmission.

Naeem Abbas1, Hafiz Azhar Ali Khan, Sarfraz Ali Shad.   

Abstract

Houseflies, Musca domestica (L.), are ubiquitous pests that have the potential to spread a variety of pathogens to humans, poultries, and dairies. Pesticides are commonly used for the management of this pest. Fipronil is a GABA-gated chloride channel-inhibiting insecticide that has been commonly used for the management of different pests including M. domestica throughout the world. Many pests have developed resistance to this insecticide. A field-collected strain of M. domestica was selected with fipronil for continuous 11 generations to assess the cross-resistance, genetics, and realized heritability for designing a resistance management strategy. Laboratory bioassays were performed using the feeding method of mixing insecticide concentrations with 20% sugar solutions and cotton soaks dipped in insecticide solutions were provided to tested adult flies. Bioassay results at G12 showed that the fipronil-selected strain developed a resistance ratio of 140-fold compared to the susceptible strain. Synergism bioassay with piperonyl butoxide (PBO) and S,S,S,-tributyl phosphorotrithioate (DEF) indicated that fipronil resistance was associated with microsomal oxidase and also esterase. Reciprocal crosses between resistant and susceptible strains showed an autosomal and incompletely dominant resistance to fipronil. The LC50 values of F1 and F'1 strains were not significantly different and dominance values were 0.74 and 0.64, respectively. The resistance to fipronil was completely recessive (D(ML) = 0.00) at the highest dose and incompletely dominant at the lowest dose (D(ML) = 0.87). The monogenic resistance based on chi-square goodness of fit test and calculation of the minimum number of segregating genes showed that resistance to fipronil is controlled by multiple genes. The fipronil resistance strain confirmed very low cross-resistance to emamectin benzoate and spinosad while no cross-resistance to chlorpyrifos and acetamiprid when compared to that of the field population. The heritability values were 0.112, 0.075, 0.084, 0.008, and 0.052 for fipronil, emamectin benzoate, spinosad, acetamiprid, and chlorpyrifos, respectively. It was concluded that fipronil resistance in M. domestica was autosomally inherited, incompletely dominant, and polygenic. These findings would be helpful for the better and successful management of M. domestica.

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Year:  2014        PMID: 24481906     DOI: 10.1007/s00436-014-3773-4

Source DB:  PubMed          Journal:  Parasitol Res        ISSN: 0932-0113            Impact factor:   2.289


  44 in total

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Review 2.  Insecticide resistance and dominance levels.

Authors:  D Bourguet; A Genissel; M Raymond
Journal:  J Econ Entomol       Date:  2000-12       Impact factor: 2.381

3.  Determining the mode of inheritance of pesticide resistance with backcross experiments.

Authors:  B E Tabashnik
Journal:  J Econ Entomol       Date:  1991-06       Impact factor: 2.381

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Journal:  Heredity (Edinb)       Date:  2001-10       Impact factor: 3.821

5.  Fipronil resistance in the diamondback moth (Lepidoptera: Plutellidae): inheritance and number of genes involved.

Authors:  Ali H Sayyed; Denis J Wright
Journal:  J Econ Entomol       Date:  2004-12       Impact factor: 2.381

6.  Characterisation of spinosad resistance in the housefly Musca domestica (Diptera: Muscidae).

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Journal:  Pest Manag Sci       Date:  2011-01-11       Impact factor: 4.845

7.  Cross-resistance potential of fipronil in Musca domestica.

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Journal:  Pest Manag Sci       Date:  2004-09       Impact factor: 4.845

8.  Fipronil modulation of glutamate-induced chloride currents in cockroach thoracic ganglion neurons.

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9.  Toxicity of a phenyl pyrazole insecticide, fipronil, to mosquito and chironomid midge larvae in the laboratory.

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10.  A cross sectional survey of knowledge, attitude and practices related to house flies among dairy farmers in Punjab, Pakistan.

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1.  Selection, resistance risk assessment, and reversion toward susceptibility of pyriproxyfen in Musca domestica L.

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2.  Assessment of resistance risk to lambda-cyhalothrin and cross-resistance to four other insecticides in the house fly, Musca domestica L. (Diptera: Muscidae).

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3.  Determination of the Genetic and Synergistic Suppression of a Methoxyfenozide-Resistant Strain of the House Fly Musca domestica L. (Diptera: Muscidae).

Authors:  R M Shah; N Abbas; S A Shad; M Binyamin
Journal:  Neotrop Entomol       Date:  2018-04-13       Impact factor: 1.434

4.  Stability of Field-Selected Resistance to Conventional and Newer Chemistry Insecticides in the House Fly, Musca domestica L. (Diptera: Muscidae).

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Journal:  Neotrop Entomol       Date:  2015-04-23       Impact factor: 1.434

5.  Efficacy of cyantraniliprole fly bait against housefly (Musca domestica L.) under laboratory conditions.

Authors:  Q F Li; X Li; J B Hunag; D M Zhang; J Z Yuan
Journal:  Parasitol Res       Date:  2015-06-26       Impact factor: 2.289

6.  Studies on genetics, stability and possible mechanism of deltamethrin resistance in Phenacoccus solenopsis Tinsley (Homoptera: Pseudococcidae) from Pakistan.

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7.  Cross-resistance, stability, and fitness cost of resistance to imidacloprid in Musca domestica L., (Diptera: Muscidae).

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8.  Biological trait analysis and stability of lambda-cyhalothrin resistance in the house fly, Musca domestica L. (Diptera: Muscidae).

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Journal:  Parasitol Res       Date:  2016-02-13       Impact factor: 2.289

9.  Assessing the combined toxicity of conventional and newer insecticides on the cotton mealybug Phenacoccus solenopsis.

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10.  Effects of different animal manures on attraction and reproductive behaviors of common house fly, Musca domestica L.

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