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Social and nutritional factors shape larval aggregation, foraging, and body mass in a polyphagous fly

机译:社会和营养因素在多功能飞行中塑造幼虫聚集,觅食和体重

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The majority of insect species have a clearly defined larval stage during development. Larval nutrition is crucial for individuals’ growth and development, and larval foraging success often depends on both resource availability and competition for those resources. To date, however, little is known about how these factors interact to shape larval development and behaviour. Here we manipulated the density of larvae of the polyphagous fruit fly pest Bactrocera tryoni (‘Queensland fruit fly’), and the diet concentration of patches in a foraging arena to address this gap. Using advanced statistical methods of machine learning and linear regression models, we showed that high larval density results in overall high larval aggregation across all diets except in extreme diet dilutions. Larval aggregation was positively associated with larval body mass across all diet concentrations except in extreme diet dilutions where this relationship was reversed. Over time, larvae in low-density arenas also tended to aggregate while those in high-density arenas tended to disperse, an effect that was observed for all diet concentrations. Furthermore, larvae in high-density arenas displayed significant avoidance of low concentration diets – a behaviour that was not observed amongst larvae in low-density arenas. Thus, aggregation can help, rather than hinder, larval growth in high-density environments, and larvae may be better able to explore available nutrition when at high-density than when at low-density.
机译:大多数昆虫物种在开发期间具有明确界定的幼虫阶段。幼虫营养对于个人的增长和发展至关重要,幼虫成功往往取决于资源可用性和这些资源的竞争。然而,迄今为止,众所周知,这些因素如何互动地互动幼虫发育和行为。在这里,我们操纵了多功果果蝇害虫Bactrocera Tryoni('Queensland Fruit Fly')的幼虫密度,以及觅食竞技场中的贴片的饮食浓度,以解决这种差距。采用先进的机器学习和线性回归模型的统计方法,我们表明,除了极端饮食稀释雨外,幼虫密度会导致所有饮食中的整体高幼虫聚集。除了在这种关系逆转的极端饮食稀释度之外,幼虫聚集在所有饮食浓度外,幼虫体重呈正相关。随着时间的推移,低密度的幼虫也倾向于聚集,而那些在高密度的植物中倾向于分散,对所有饮食浓度观察到的效果。此外,高密度arenas中的幼虫显示出显着的低浓度饮食 - 在低密度的植物中幼虫在幼虫中未观察到的行为。因此,聚集可以帮助,而不是妨碍高密度环境中的幼虫生长,并且幼虫可能更好地探索比在低密度时的高密度时的可用营养。

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