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Last Updated: 20/10/2022

The role of chemosensory proteins in conferring pyrethroid resistance

Objectives

To elucidate the mechanism by which the chemosensory protein, SAP2 confers resistance to pyrethroids by testing four, non-mutually exclusive hypothesis. The four hypothesis are:

1) Establish whether SAP2 acts to sequester pyrethroids in the legs by using a tagged transgenic line to localise SAP2 expression.

2) Determine whether elevated SAP2 expression accelerates the excretion of pyrethroids by using HPLC to quantify pyrethroid levels in excreta in mosquito populations differing in their SAP2 levels.

3) Determine whether SAP2 acts as a chaperone, transporting pyrethroids to the tissues primarily involved in insecticide detoxification and thus accelerating their metabolism.

4) Explore the role of SAP2 in pyrethroid avoidance behaviour using simple benchtop behavioural assays and SAP2 knockout lines.

Principal Investigators / Focal Persons

Hilary Ranson

Rationale and Abstract

Insecticide resistance is a major threat to global health and food security. Globally, vector borne diseases account for more than 17% of infectious disease annually, with over half the world’s population currently at risk. Similarly, around 35% of all crops are lost to pre-harvest pests while pressure on increased agricultural output is growing due to an ever-expanding population size. Both vector control and agricultural pest management rely heavily on the use of pesticides. The efficacy of insecticide control is exemplified by the success of malaria control programmes in Africa which have been heavily dependent on the use of pyrethroid insecticides in bednets. As with intensive use of any drug or pesticide, the target organisms (in this case Anopheles mosquitoes), have developed widespread resistance to the chemicals used to control them (in this case pyrethroid insecticides), posing a critical threat to the future of malaria control.

Recent discovery has identified a highly potent pyrethroid resistance mechanism in African Anopheles mosquitoes. An increase in the expression of a class of small proteins normally involved in chemical communications (and hence termed chemosensory proteins) in the legs of the mosquito acts as a sponge, absorbing the pyrethroid insecticides as it enters the mosquito via contact with the bednet. One specific member of this protein family, SAP2, is of key importance: mosquitoes that have elevated levels of SAP2 have a much greater chance of surviving pyrethroid exposure and, if we stop the mosquitoes producing this protein, this pyrethroid resistance largely disappears. This latter observation is remarkable as the mosquito populations tested contain additional well established resistance mechanisms including structural changes in the pyrethroid target site that reduce insecticide binding and elevated levels of enzymes that detoxify pyrethroids in the mosquito; the finding that silencing a single small protein can revert these mosquitoes to pyrethroid susceptibility opens up the exciting prospect that we may have found a way of blocking pyrethroid resistance in the mosquito, and potentially other pest species.

In the first part of this proposal we will establish exactly how increases in expression of this SAP2 protein plays such a pivotal role in pyrethroid resistance. In the remaining sections, we will develop methods to break this resistance mechanism; we have already developed a biological test to identify chemicals that block SAP2. Here we propose to convert this to a higher throughput tool that will be used to screen existing libraries of thousands of chemicals to identify potential compounds that could be developed into additives to be used in combination with pesticides to block this resistance mechanism and restore full efficacy of pyrethroid insecticides.

Date

Mar 2021 — Mar 2024

Total Project Funding

$632,000

Funding Details
459,920 British Pounds
Project Site

United Kingdom

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