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Chronic Imidacloprid Exposure Impairs Chironomid Emergence via the Calcium-ROS-Fatty Acid Axis in a Lifecycle
Fenghua Wei1, Shuangxin Wu1, Wenmei He1
1Key Laboratory of Guangdong Higher Education Institutions of Northeast Guangdong New Functional Materials, School of Chemistry and Environment, Jiaying University, Meizhou, Guangdong514015, China.
Abstract:
While mitochondrial toxicity of neonicotinoids from acute, high-dose exposure has been reported, their role in developmental toxicity to aquatic insects under chronic, environmentally relevant concentrations remains unclear. We aimed to elucidate the chronic toxic mechanism of imidacloprid in Chironomus kiiensis and distinguish its acute and chronic mitochondrial toxic pathways. Here, C. kiiensis was subjected to chronic, low-dose imidacloprid exposure throughout its larva-to-adult life cycle. Integrating transcriptomics and functional validation was performed. A novel chronic toxicity pathway driven by progressive Ca2+-ROS imbalance was identified. Unlike acute-induced rapid Ca2+ overload and lethal ROS bursts in our prior work, chronic exposure to imidacloprid directly downregulated fatty acid metabolism and Ca2+-related genes, alongside GABA/glutamatergic synapse disruption. These eventually caused emergence failure, which was experimentally alleviated by Ca2+ homeostasis restoration or ROS scavenging. Collectively, the Ca2+-ROS-fatty acid axis is confirmed as the core chronic toxic mechanism, emphasizing the neglected ecological risks of sublethal neonicotinoid exposure.

