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MORPHOLOGICAL RESPONSES OF DAPHNIA PULEX TO CHAOBORUS AMERICANUS KAIROMONE IN THE PRESENCE AND ABSENCE OF METALS

机译:有金属和无金属存在时,水蚤对潮汕无头乌贼的形态学响应

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Daphnia pulex neonates develop neck teeth in the presence of predatory kairomone from Chaoborus americanus that are fed D. pulex. These neck teeth reduce the susceptibility of the neonates to predation. Evidence suggests that aqueous metals interfere with chemical communication in fish. The objective of our study was to determine if Cu or Ni at environmentally relevant concentrations affects predatory kairomone response in D. pulex. To test this possibility, D. pulex were placed in increasing waterborne concentrations of Cu or Ni in the presence or absence of predatory kairomone. Both Cu and Ni reduced neck tooth induction in D. pulex neonates in the presence of predatory kairomone. Copper had a significant nonlinear effect on neck tooth length consistent with a hermetic response, where neck tooth length was highest at 5 μg/L Cu, but not significantly different than 0 μg/L Cu at higher Cu concentrations. A Ni concentration of 200 μg/L caused D. pulex to become hypersensitive to Chaoborus regardless of Chaoborus' diet, leading to increased neck tooth number but decreased neck tooth length. Neither Ni nor Cu produced any significant effects on body length or brood size. These results suggest that metal inhibition of neck tooth induction probably occurs along the signal transduction pathway. Impairment of chemosensory response to predatory chemical cues may have widespread ecological consequences in aquatic systems contaminated by metals.
机译:美洲水蚤(Daphnia pulex)新生儿在喂食美国水蚤(D. pulex)的美洲潮Chao(Chaporus americanus)掠食性海洛酮中会出现颈齿。这些颈齿减少了新生儿对被捕食的敏感性。有证据表明,水性金属会干扰鱼类的化学通讯。我们研究的目的是确定环境相关浓度的Cu或Ni是否影响D. pulex中的掠夺性海洛酮反应。为了测试这种可能性,在存在或不存在掠夺性海洛酮的情况下,将D. pulex置于水中Cu或Ni浓度增加的环境中。在存在掠夺性卡洛莫酮的情况下,铜和镍都减少了D. pulex新生儿的颈齿感应。铜对颈齿长度具有显着的非线性影响,与气密性响应一致,在5μg/ L Cu下,颈齿长度最高,但在较高的Cu浓度下,其颈齿长度与0μg/ L Cu没有显着差异。镍的浓度为200μg/ L时,无论潮虫的饮食如何,都将使粉虱对潮虫过敏,导致颈部齿数增加,但颈部齿长减小。镍和铜都不会对体长或育雏尺寸产生任何重大影响。这些结果表明,对颈齿感应的金属抑制可能沿信号转导途径发生。对掠食性化学线索的化学感应反应受损可能会在被金属污染的水生系统中产生广泛的生态后果。

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