Foundation for Research and Technology (FORTH), Institute of Molecular Biology and Biotechnology (IMBB), Nikolaou Plastira Street 100, 70013, Heraklion, Crete, Greece; Department of Crop Science, Agricultural University of Athens, Iera Odos 875, 11855, Athens, Greece.
Department of Crop Science, Agricultural University of Athens, Iera Odos 875, 11855, Athens, Greece.
Pestic Biochem Physiol. 2020 Nov;170:104666. doi: 10.1016/j.pestbp.2020.104666. Epub 2020 Jul 26.
Despite the substantial progress achieved in the characterization of cytochrome P450 (CYP) -based resistance mechanisms in mosquitoes, a number of questions remain unanswered. These include: (i) the regulation and physiology of resistance conferring CYPs; (ii) the actual contribution of CYPs in resistance alone or in combination with other detoxification partners or other resistance mechanisms; (iii) the association between overexpression levels and allelic variation, with the catalytic activity and the intensity of resistance and (iv) the true value of molecular diagnostics targeting CYP markers, for driving decision making in the frame of Insecticide Resistance Management applications. Furthermore, the translation of CYP - based insecticide resistance research in mosquitoes into practical applications, is being developed, but it is not fully exploited, as yet. Examples include the production of high throughput platforms for screening the liability (stability) or inhibition potential of novel insecticidal leads and synergists (add-ons), as well as the exploration of the negative cross resistance concept (i.e. detoxification of certain insecticides, but activation of others pro-insecticides). The goal of this review is to critically summarise the current knowledge and the gaps of the CYP-based metabolic insecticide resistance in Anopheles and Aedes mosquito vectors. The progress and limitations of the protein and the reverse/forward genetic approaches, the understanding and importance of molecular and physiological aspects, as well as the current and future exploitation routes of CYP research are discussed.
尽管在蚊子细胞色素 P450(CYP)相关耐药机制的特征描述方面取得了重大进展,但仍有许多问题尚未得到解答。这些问题包括:(i)赋予抗性的 CYP 的调节和生理学;(ii)CYP 单独或与其他解毒伙伴或其他耐药机制结合在耐药性中的实际贡献;(iii)过表达水平与等位基因变异之间的关联,以及与催化活性和耐药强度的关联;(iv)针对 CYP 标记物的分子诊断在杀虫剂耐药管理应用中的实际价值,用于驱动决策。此外,将基于 CYP 的蚊子杀虫剂耐药性研究转化为实际应用正在开发中,但尚未得到充分利用。例如,生产高通量筛选新型杀虫剂先导物和增效剂(添加剂)的易感性(稳定性)或抑制潜力的平台,以及探索负交叉耐药性概念(即某些杀虫剂的解毒作用,但其他促杀虫剂的激活作用)。本综述的目的是批判性地总结基于 CYP 的代谢性杀虫剂抗性在疟蚊和伊蚊媒介中的最新知识和空白。讨论了蛋白和反向/正向遗传方法的进展和局限性、分子和生理方面的理解和重要性,以及 CYP 研究的当前和未来利用途径。