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Al-Yazeedi, T.

Publications and source records attributed to Al-Yazeedi, T..

3 recordsLinked to original sources

Generational selection, transcriptomics and functional characterization reveal the impact of environmental pollutants on the evolution of insecticide resistance in malaria vectors

Insecticide resistance is threatening malaria control. While the evolution and spread of resistance has been linked to scale-up in the distribution of public health insecticides, the role of environmental pollutants such as the polyaromatic hydrocarbons (PAHs) from industrial and agricultural use remains largely uncharacterized. The PAHs are potent ligands of the aryl hydrocarbon receptor (Ahr) transcription factors involved in the regulation of xenobiotic metabolizing enzymes, and potentially involved in insecticide resistance. Here, using field insecticide-resistant (Auyo) An. coluzzii and a laboratory-susceptible colony (Ngousso), we conducted a multi-generational selection experiment using naphthalene, fluorene and a mixture of both PAHs. After ten generations, the changes in susceptibility to insecticides were monitored using WHO bioassays and whole-transcriptome analysis (RNASeq) was conducted. Compared with the non-selected colony lines, PAH exposures significantly reduced pyrethroid and DDT resistance in the field population, suggesting fitness cost associated with established resistance. In contrast, Ngousso showed a significant increase in DDT resistance (p = 0.01) at the tenth generation. A significant increase in permethrin resistance was also observed at the seventh generation (p = 0.03). Several candidate genes from the major detoxification classes were overexpressed in the selected lines (including GSTe2, CYP6Z1, and CYP6P4); the most consistent were CYP6M4 and CYP4C27, as well as those from the Ahr pathway. Heterologous expression of CYP6M4 revealed its ability to metabolise pyrethroids, including permethrin, deltamethrin, and -cypermethrin, as well as PAHs (naphthalene and fluorene). These findings establish the role of environmental pollutants as additional drivers of metabolic insecticide resistance in An, coluzzii.

ecology↗

Overexpression and nonsynonymous mutations of UDP-glycosyltransferases potentially associated with pyrethroid resistance in Anopheles funestus

UDP-glycosyltransferases (UGTs) constitute a superfamily of enzymes that play a vital role in the biotransformation of diverse hydrophobic substrates into more hydrophilic products, thereby facilitating their excretion from the cell through transporters. The significance of UGTs in conferring insecticide resistance has been emphasized in various insect species. In this study, we characterised Anopheles funestus UGT genes genome-wide and explored their evolution and association with pyrethroid resistance. We combined genome-wide association of pooled-template sequencing (GWAS-PoolSeq) with the transcriptomic profile of pyrethroid-resistant An. funestus populations, and deep targeted sequencing of UGTs from 80 individual mosquitoes collected in Malawi, Uganda, Cameroon and the two laboratory colonies (FANG and FUMOZ) to investigate the role of UGTs in pyrethroid resistance. We identified common overexpression of UGT310B2 (AFUN000679) in the resistant laboratory colony (FUMOZ) and resistant field populations from Malawi, Cameroon and Uganda. Significant gene-wise Fst differentiation between the resistant and putatively susceptible populations was observed for UGT301C2 and UGT302A3 in Malawi, as well as UGT306C2 in Uganda. Furthermore, the gene-wise Tajimas D density curves of the sequenced regions provided insights into genome-wide processes elucidating population structures within An. funestus populations from these three countries, supporting previous observations. Additionally, we identified significantly differentiated nonsynonymous mutations within UGT genes, which may potentially contribute to pyrethroid resistance. The identified role of An. funestus UGT genes in pyrethroid resistance has direct implications for current vector control strategies, management approaches, and the prediction of potential cross-resistance to other insecticides that can be directly detoxified by UGTs.

genetics↗

A QTL influences sex ratios by controlling asymmetric organelle positioning during male spermatogenesis in Auanema freiburgense

Auanema freiburgense is a trioecious nematode with co-existing males, females, and selfing hermaphrodites. Crosses of XO males with XX females result in a low percentage of XO sons due to the elimination of the nullo-X spermatids by the fathers. This process yields most viable sperm containing an X chromosome, leading to a higher transmission probability of the X chromosome compared to expected transmission via random segregation. The mechanism underlying this process involves the asymmetric distribution of essential cellular organelles during sperm formation, which likely depends on the X chromosome. Specifically, sperm components segregate with the X chromosome daughter cell, while other components are discarded in the nullo-X daughter cell. Here we found that intercrossing two strains of A. freiburgense results in lines in which males produce viable nullo-X sperm. Thus, crosses of those hybrid males with females result in a high percentage of sons. To uncover the genetic basis of nullo-spermatid elimination and X-chromosome drive, we generated a genome assembly for A. freiburgense and genotyped the intercrossed lines. We identified a QTL encompassing several genes on the X chromosome that are associated with its non-Mendelian inheritance observed in A. freiburgense. This finding provides valuable clues to the underlying factors involved in asymmetric organelle partitioning during male meiotic division and thus non-Mendelian transmission of the X chromosome and sex ratios.

developmental biology↗