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Biology subjects

Marston, L.

Publications and source records attributed to Marston, L..

3 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↗

Engineering Resilient Gene Drives Towards Sustainable Malaria Control: Predicting, Testing and Overcoming Target Site Resistance

CRISPR-based gene drives are selfish genetic elements with the potential to spread through entire insect populations for sustainable vector control. Gene drives designed to disrupt the reproductive capacity of females can suppress laboratory populations of the malaria mosquito. However, any suppressive intervention will inevitably exert an evolutionary pressure for resistance. Here, we present a pipeline for the accelerated discovery, engineering, and testing of both natural and drive-induced variants that could reverse gene drive spread. We applied our method to stress-test a highly effective gene drive that has evaded resistance in all laboratory-contained releases to date, known as Ag(QFS)1. We showed that previously undetected resistant alleles can arise at low frequency, and discovered novel, partially resistant alleles that can perturb drive-invasion dynamics. We then engineered next-generation gene drives that can actively remove resistant alleles by targeting several highly conserved and non-overlapping sites in the female-specific exon of the doublesex gene. Our models predict that such gene drive designs could suppress large, natural populations of the malaria mosquito in the field.

synthetic biology↗

Y chromosome shredding in Anopheles gambiae: insight into the cellular dynamics of a novel synthetic sex ratio distorter.

Despite efforts to explore the genome of the malaria vector Anopheles gambiae, the Y chromosome of this species remains enigmatic. The large number of repetitive and heterochromatic DNA sequences makes the Y chromosome exceptionally difficult to fully assemble, hampering the progress of gene editing techniques and functional studies for this chromosome. In this study, we made use of a bioinformatic platform to identify Y-specific repetitive DNA sequences that served as a target site for a CRISPR/Cas9 system. The activity of Cas9 in the reproductive organs of males caused damage to Y-bearing sperm without affecting their fertility, leading to a strong female bias in the progeny. Cytological investigation allowed us to identify meiotic defects and investigate sperm selection in this new synthetic sex ratio distorter system. In addition, alternative promoters enable us to target the Y chromosome in specific tissues and developmental stages of male mosquitoes, enabling studies that shed light on the role of this chromosome in male gametogenesis. This work paves the way for further insight into the poorly characterised Y chromosome of Anopheles gambiae. Moreover, the sex distorter strain we have generated promises to be a valuable tool for the advancement of studies in the field of developmental biology, with the potential to support the progress of genetic strategies aimed at controlling malaria mosquitoes and other pest species. Author summaryGenetic elements known as sex ratio meiotic drive can manipulate the sex ratio of offspring, favouring the male or female sex. This fascinating phenomenon has inspired the development of synthetic sex ratio distorter systems in several organisms. In species where females and males harbour XX and XY sex chromosomes respectively, the X-chromosome can be shredded during male gametogenesis, leading to the production of non-functional X-bearing sperm, while Y-bearing sperm are left intact and able to fertilise the eggs. These systems can produce offspring that are extremely biased towards males, which can be used as genetic tools to control harmful insect populations. In our study, we applied this molecular strategy to target the Y chromosome of Anopheles gambiae. Our aim was to investigate the cellular consequences of the shredding of this chromosome, the impact on meiosis and sperm selection, and the potential to achieve strong female bias in the offspring. The outcome of this study enhances our understanding of the molecular and biological mechanisms behind synthetic sex-ratio distorters in Anopheles mosquitoes, which could inform the development of vector control strategies that target sex ratio. Additionally, we present a genetic sexing strain able to produce mostly females, providing a valuable genetic tool for fundamental studies on this deadly vector.

molecular biology↗