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Genetic diversity of the dengue vector Aedes aegypti in Australia and implications for future surveillance and mainland incursion monitoring.

In February 2004, the discovery of an incursion of the dengue vector Aedes aegypti into the town of Tennant Creek in the Northern Territory caused concern for the Northern Territory health authorities who proceeded to implement a Commonwealth-funded eradication program. To determine the origin of the incursion, we performed a genetic analysis on Ae. aegypti from several Queensland and overseas localities. A comparison of DNA sequences from the mitochondrial cytochrome oxidase 1 gene indicated that the incursion was probably from Cairns or Camooweal. This genetic marker was also useful in identifying a separate Townsville haplotype population and another population on Thursday Island in the Torres Strait that was genetically divergent to the mainland populations. The possible use of this marker as a surveillance tool for identifying the origins of local and overseas incursions is discussed.

Aedes↗

Can molecular biology contribute usefully to vector control?

It is argued that further work in molecular entomology should be driven by the practical problems that vector controllers have, not by what molecular biologists can and would like to do. The usefulness is discussed of molecular approaches to (1) insecticide resistance, (2) identification of sibling species, sporozoites and the origin of infections, vector populations and blood meals, (3) genetic control by sterile males or population replacement.

Animals↗

Maintenance of effective control of Simulium damnosum in the face of insecticide resistance.

The control of onchocerciasis through reduction of its vector Simulium damnosum depends on highly effective insecticide treatments directed against the larvae. As these treatments must be applied weekly over wide areas for many years, ideal conditions for the development of resistance have been created. Resistance to organophosphate compounds has occurred. To maintain effective vector control, an intense operational research effort has been necessary. Close and constant monitoring of susceptibility, combined with cytotaxonomic identification of the tested larvae, has revealed the pattern of spread of the resistance by migration and apparently by hybridization between populations. These studies have helped indicate when it might be possible to contain or eliminate a resistant population. Screening of all available appropriate compounds has led to the selection of replacement compounds in the microbial (Bacillus thuringiensis H14), pyrethroid (permethrin), and carbamate (carbosulfan) groups. Laboratory studies have revealed esterase and multi-function oxidase mechanisms for the existing organophosphate resistance. Cross-resistance tests have shown no cross-resistance to carbamate insecticides with these mechanisms, but negative correlations with most pyrethroids. These considerations, along with estimated risk of future resistance, effects on non-target organisms, and costs have led to a complex alternation pattern of insecticides, with Bacillus thuringiensis H14 being used in the dry season and a series of classical chemical compounds in the wet season. Through these measures, vector control remains a viable method of onchocerciasis control for the WHO Onchocerciasis Control Programme in West Africa.

Africa, Western↗

Evaluation of a recombinant salivary gland protein (thrombostasin) as a vaccine candidate to disrupt blood-feeding by horn flies.

The potential for controlling blood-feeding by the cattle pest, Haematobia irritans irritans (horn fly), was tested by vaccination against thrombostasin (TS), an inhibitor of mammalian thrombin that is released into skin during horn fly blood-feeding. The increase in blood meal size that occurred for flies feeding on sensitized non-vaccinated hosts was blocked and egg development in female flies was delayed when horn flies fed on rabbits and cattle immunized with recombinant TS. This demonstration of the impact of disrupting TS action by vaccination provides a novel approach toward control of this veterinary pest and offers a paradigm for limiting blood-feeding in other medically-important insect species.

Animals↗