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Graystock, P. J.

Publications and source records attributed to Graystock, P. J..

2 recordsLinked to original sources

Can near-infrared exposure help mitigate pesticide-impaired thermoregulation in adult bees?

For terrestrial animals, maintaining body temperature is vital for successful movement, feeding and reproduction. Exposure to environmental toxins such as pesticides, however, may place individual thermoregulation at risk. Identifying potential mitigative solutions is thus important, especially given widespread pesticide applications across landscapes are forecast to continue. In mammals, near infrared (NIR) light has been put forward as a method for countering the effects of toxin exposure, but limited evidence has been found for insects. Here, we orally expose an important insect pollinator group - adult bumblebees - to a cholinergic pesticide (a neonicotinoid) to first quantify the baseline impact on body temperature (using thermal imaging), and second to investigate how exposure to near infrared (NIR) light mediates this effect. For bumblebees kept at 18{degrees}C ambient we show, relative to control bees who maintained their body temperature at ca.30{degrees}C, that neonicotinoid exposed bees exhibited a steep (by nearly 8{degrees}C) body temperature drop over the 73hr assay showing a pattern of convergence towards ambient. We did however find some evidence that NIR can partially counter such neonicotinoid impairment. Of two different wavelengths (600nm, 850nm) and three exposure durations (5, 10 or 20 minutes per hour), we found evidence that 660 nm for 5 minutes appeared to more than halve the rate to which the neonicotinoid decreased body temperature. Yet, intriguingly, the mitigation effect of 660 nm NIR appeared to lessen as exposure time increased. We further found tentative evidence that 850 nm for 20 mins may alleviate the decline in body temperature (by nearly 40%). In conclusion, our study further highlights a mechanism by which pesticides threaten the critical functioning of non-target organisms but also provides a potential therapy worthy of further investigation.

ecology↗

Pesticide-exposed bees fail to thermoregulate leading to cold colonies with consequences for offspring development

For many organisms, effective thermoregulation is needed to cope with changing environmental temperatures. But if exposure to pesticides in the environment were to impair this homeostatic process, reproduction and population viability could be at risk. Focusing on an important insect pollinator, we conducted three complementary experiments exposing bumblebees to a pesticide under different temperature challenges and measuring the impacts on thermoregulatory ability and brood development. First, we reveal that pesticide-exposed individuals cannot maintain a stable thorax temperature, especially at lower temperatures. Second, reductions in body temperature are accompanied by behavioural changes and that pesticide-exposed colonies fail to maintain appropriate brood temperatures. Third, such collective impairment on brood thermoregulation (not the pesticide toxicity to offspring per se) leads to delayed pupal development and reduced adult population growth. Our study provides a valid mechanistic explanation for why terrestrial insects requiring brood thermoregulation have declined. With frequent extreme weather events forecasted, our findings have concerning implications for how populations will adequately persist and grow under current pesticide-use regimes with ramifications on pollination services.

ecology↗