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Biology subjects

Craske, M. W.

Publications and source records attributed to Craske, M. W..

2 recordsLinked to original sources

Functional disruption of vgsc reveals haplosufficiency with implications for insecticide resistance and genetic control in Anopheles gambiae

Pyrethroid insecticides on bednets have been the mainstay of malaria control since the millennium by killing mosquitoes. The target of these pyrethroids is the voltage-gated sodium channel (VGSC). Resistance mutations at the pyrethroid binding site (L995F/S) have spread widely, but functional tools to dissect vgsc itself have lagged behind the population-genetic surveillance data. Manipulation of vgsc via knockout or functional mutation would be a vital step towards understanding its contribution to insecticide resistance, as well as exploring its utility as a genetic control target. Here we generate and characterise two CRISPR-edited An. gambiae lines: an exonic knockout (vgscKO) and an intronic CRISPR-mediated cassette exchange intermediate (vgscInt) sited near SNPs linked to L995F. Both insertions are viable and fertile in heterozygosity but homozygous lethal, demonstrating that vgsc is haplosufficient and therefore the locus represents a viable target for population suppression genetic control strategies. These insertions can also be used as balancers for studying vgsc mutations without the confounding effects of wild type alleles. We investigate the insecticide resistance phenotype of vgscKO and demonstrate that knocking out one copy of vgsc produces reduced susceptibility to deltamethrin and DDT at sub-discriminating doses, with implications for vgsc-mediated mechanisms of insecticide resistance.

genetics↗

The mechanism of biofilm degradation by a detachable tailspike of gene transfer agents

Gene transfer agents (GTAs) are phage-derived elements that have evolved repeatedly across diverse prokaryotes, where they drive high-frequency horizontal gene transfer (HGT). Here, we demonstrate that the Rhodobacter capsulatus GTA (RcGTA) tailspike protein, TspA, is a potent biofilm-degrading enzyme. Purified TspA is effective at both preventing initial biofilm formation and clearing established, mature biofilms. Crucially, TspA enhances RcGTA-mediated gene transfer, suggesting that this enzyme facilitates GTA navigation through the extracellular matrix. Unlike the permanently anchored tailspikes of canonical phages, TspA possesses a unique {beta}-sandwich N-terminal domain that enables its dissociation from mature particles and engages in biofilm polysaccharide recognition. Our findings indicate that TspA is an evolutionary adaptation used by GTAs to optimize HGT within complex, densely packed microbial biofilm communities.

biochemistry↗