Lautaro Gandara, Felipe Martelli, Thomas Ravenscroft, Justin Crocker, Philip Batterham
Insecticides remain indispensable for crop protection and food security, yet their widespread use may contribute to the global decline of beneficial insect populations. Efforts to mitigate these impacts are hampered by a fragmented understanding of how insects metabolise insecticides and how sublethal exposures affect physiology, behaviour, and fitness. Here, we synthesise current understanding of metabolic detoxification and highlight critical gaps: the tissue- and time-dependent dynamics of insecticide entry and processing, the triggers and architecture of xenobiotic transcriptional responses, the role of rapid non-transcriptional regulation, and the population-level consequences of sublethal effects. We also outline emerging experimental strategies for addressing these questions and propose a next-generation research pipeline centred on multi-endpoint phenomics across life stages and sentinel species, integrated with AI-driven predictive toxicology, as a framework for identifying safer chemicals. We propose an integrated framework unifying molecular, physiological, and ecological responses to sublethal exposure to guide the design of insecticides that maintain effective pest control while safeguarding insect biodiversity and the ecosystems it underpins. • Sublethal insecticide exposures can have impacts at levels from cells to populations • Mechanistic understanding of impacts on signalling and metabolic pathways is needed • Worked example of how single-cell omics can help fill gaps in our understanding • Toxicology needs to measure impacts on behaviour, reproduction, and survival • AI can accelerate the development of insecticides with lower environmental impact