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1.
Proc Natl Acad Sci U S A ; 119(26): e2205850119, 2022 06 28.
Artigo em Inglês | MEDLINE | ID: mdl-35733268

RESUMO

The regulatory process for assessing the risks of pesticides to bees relies heavily on the use of the honeybee, Apis mellifera, as a model for other bee species. However, the validity of using A. mellifera as a surrogate for other Apis and non-Apis bees in pesticide risk assessment has been questioned. Related to this line of research, recent work on A. mellifera has shown that specific P450 enzymes belonging to the CYP9Q subfamily act as critically important determinants of insecticide sensitivity in this species by efficiently detoxifying certain insecticide chemotypes. However, the extent to which the presence of functional orthologs of these enzymes is conserved across the diversity of bees is unclear. Here we used a phylogenomic approach to identify > 100 putative CYP9Q functional orthologs across 75 bee species encompassing all major bee families. Functional analysis of 26 P450s from 20 representative bee species revealed that P450-mediated detoxification of certain systemic insecticides, including the neonicotinoid thiacloprid and the butenolide flupyradifurone, is conserved across all major bee pollinator families. However, our analyses also reveal that CYP9Q-related genes are not universal to all bee species, with some Megachilidae species lacking such genes. Thus, our results reveal an evolutionary conserved capacity to metabolize certain insecticides across all major bee families while identifying a small number of bee species where this function may have been lost. Furthermore, they illustrate the potential of a toxicogenomic approach to inform pesticide risk assessment for nonmanaged bee species by predicting the capability of bee pollinator species to break down synthetic insecticides.


Assuntos
Abelhas , Sistema Enzimático do Citocromo P-450 , Evolução Molecular , Genes de Insetos , Inativação Metabólica , Proteínas de Insetos , Inseticidas , Animais , Abelhas/enzimologia , Abelhas/genética , Sequência Conservada , Sistema Enzimático do Citocromo P-450/classificação , Sistema Enzimático do Citocromo P-450/genética , Proteínas de Insetos/classificação , Proteínas de Insetos/genética , Inseticidas/metabolismo , Inseticidas/toxicidade , Neonicotinoides/metabolismo , Neonicotinoides/toxicidade , Filogenia
2.
Sci Adv ; 9(15): eadg0885, 2023 04 14.
Artigo em Inglês | MEDLINE | ID: mdl-37043574

RESUMO

Many plants produce chemical defense compounds as protection against antagonistic herbivores. However, how beneficial insects such as pollinators deal with the presence of these potentially toxic chemicals in nectar and pollen is poorly understood. Here, we characterize a conserved mechanism of plant secondary metabolite detoxification in the Hymenoptera, an order that contains numerous highly beneficial insects. Using phylogenetic and functional approaches, we show that the CYP336 family of cytochrome P450 enzymes detoxifies alkaloids, a group of potent natural insecticides, in honeybees and other hymenopteran species that diverged over 281 million years. We linked this function to an aspartic acid residue within the main access channel of CYP336 enzymes that is highly conserved within this P450 family. Together, these results provide detailed insights into the evolution of P450s as a key component of detoxification systems in hymenopteran species and reveal the molecular basis of adaptations arising from interactions between plants and beneficial insects.


Assuntos
Alcaloides , Néctar de Plantas , Abelhas , Animais , Néctar de Plantas/química , Filogenia , Insetos , Sistema Enzimático do Citocromo P-450/genética
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