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Historical metabolic adaptation potentiates the rapid evolution of flonicamid resistance in Myzus persicae.

Rapid adaptation to novel environments is often shaped not only by newly acquired mutations but also by historical genetic backgrounds established through prior evolutionary events. However, the extent to which such historical contingency contributes to the rapid evolution of insecticide resistance remains poorly understood. Here, we investigated the emergence of resistance to flonicamid, a recently deployed insecticide, in the green peach aphid, Myzus persicae. We show that constitutive overexpression of the P450 enzymes CYP6CY3 and CYP6CY4, already widespread in populations of M. persicae before flonicamid deployment, confers a previously cryptic tolerance phenotype to flonicamid. However, biochemical and transgenic analyses demonstrated that these metabolic adaptations provide only weak protection against flonicamid. Following flonicamid deployment, however, a novel target-site mutation, NaamV251I, in the recently identified molecular target of 4-trifluoromethylnicotinamide (TFNA-AM), emerged in M. persicae on a genetic background of CYP6CY3 or CYP6CY4 overexpression. Structural modeling, enzymatic assays, and CRISPR-Cas9 genome editing demonstrated that this mutation reduces target sensitivity and independently confers moderate resistance. Strikingly, combining the nicotinamidase (Naam) mutation with pre-existing CYP6CY3 or CYP6CY4 overexpression produced substantially elevated resistance phenotypes that far exceeded the effects of either mechanism alone. Our results demonstrate that the pre-existing metabolic background did not itself evolve further following flonicamid deployment but fundamentally altered the phenotypic consequences of a subsequently acquired target-site mutation. These findings provide direct evidence that historical adaptive variation can potentiate rapid resistance evolution to newly introduced insecticides and reveal how interactions between past and contemporary adaptations shape evolutionary responses to novel environmental challenges.

Animals

Nitrilase-mediated degradation of insecticides flonicamid and thiacloprid by immobilized engineered Escherichia coli with a novel pathway.

The nitrile‑containing insecticides flonicamid (FLO) and thiacloprid (THI) are widely used in agriculture, posing risks to the environment and animal health. Nitrilase is a key catalyst for the degradation of nitrile compounds, and immobilized engineered bacteria are preferred in wastewater treatment. However, immobilized engineered bacteria expressing nitrilase have never been investigated for pollutant degradation. Here, engineered Escherichia coli pET28a‑VbNitA harboring the nitrilase gene VbNitA was immobilized by calcium alginate encapsulation. FLO was degraded into N-(4-trifluoromethylnicotinoyl)glycinamide and 4-(trifluoromethyl)nicotinol glycine by the immobilized cells via VbNitA. THI was converted to THI‑amide and THI‑imine using the same system. Notably, this is the first report of a nitrilase converting THI to THI‑amide and of THI‑imine as a biodegradation intermediate. Compared with free cells, the immobilized E. coli pET28a‑VbNitA showed higher tolerance to high temperature, alkaline, and acidic environments, and better long-term storage stability. The substrate inhibition model showed that the optimal initial concentrations of FLO and THI for degradation by immobilized E. coli pET28a‑VbNitA were 45.13 and 127.50 μmol/L, respectively. FLO was degraded more rapidly than THI by the immobilized cells. Molecular docking revealed that both FLO and THI formed stable interactions with VbNitA, with FLO positioned closer to Cys165 of the catalytic triad. This study presents a novel THI degradation pathway and provides a new, efficient immobilized biocatalyst for the remediation of wastewater with nitrile‑containing insecticides.

Escherichia coli