Guo Zhiqiang, Zhang Wei, Du Sen, Green Iain, Tan Qiaoguo, Zhang Li
Key Laboratory of Tropical Marine Bio-resources and Ecology, Guangdong Provincial Key Laboratory of Applied Marine Biology, Chinese Academy of Sciences, South China Sea Institute of Oceanology, Guangzhou 510301, China; Department of Life and Environmental Sciences, Faculty of Science and Technology, Bournemouth University, Fern Barrow, Poole, Dorset, BH12 5BB, UK.
Key Laboratory of Tropical Marine Bio-resources and Ecology, Guangdong Provincial Key Laboratory of Applied Marine Biology, Chinese Academy of Sciences, South China Sea Institute of Oceanology, Guangzhou 510301, China.
Aquat Toxicol. 2016 Jan;170:216-222. doi: 10.1016/j.aquatox.2015.11.026. Epub 2015 Dec 3.
Allometry is known to be an important factor influencing metal bioaccumulation in animals. However, it is not clear whether effects are due to body size per se or changes in physiological traits during the animals' development. We therefore investigated the biokinetics of copper (Cu) and predicted Cu bioaccumulation during the development of a fish model, the marine medaka. The results revealed that the waterborne Cu uptake rate constant decreased and dietary Cu assimilation efficiency increased during development from larvae to adults. Thus, the allometric dependency of the biokinetic parameters in juveniles and adults can not be simply extrapolated to the whole life cycle. The body Cu concentration in the fish was predicted by the biokinetic model, which showed a rapid increase in the larval stage, followed by a slight increase from juveniles to adults, and then a relatively stable plateau in the post-adult stage. Dietary Cu uptake became more important as fish developed from larvae to juveniles, but became less important from juveniles to adults. These findings suggested that the developmental patterns of metal bioaccumulation are driven by an integrated biological/physiological shift through animals' ontogeny rather than a simple allometric dependent change. The developmental changes of metal uptake should be considered in ecological bioassessment and biomonitoring programs.
异速生长是影响动物体内金属生物累积的一个重要因素。然而,目前尚不清楚这些影响是由于动物的体型本身,还是其发育过程中生理特征的变化所致。因此,我们研究了鱼类模型——青鳉在发育过程中铜(Cu)的生物动力学,并预测了铜的生物累积情况。结果显示,从幼体发育到成体的过程中,水中铜的摄取速率常数下降,而食物中铜的同化效率上升。因此,不能简单地将幼体和成体生物动力学参数的异速生长依赖性外推至整个生命周期。通过生物动力学模型预测得出,鱼体内的铜浓度在幼体阶段迅速上升,从幼体到成体阶段略有上升,而成体后阶段则相对稳定在一个平台期。随着鱼从幼体发育到幼鱼,食物中铜的摄取变得更加重要,但从幼鱼发育到成体时则变得不那么重要。这些发现表明,金属生物累积的发育模式是由动物个体发育过程中生物/生理的综合转变驱动的,而非简单的异速生长依赖性变化。在生态生物评估和生物监测计划中应考虑金属摄取的发育变化。