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Evolution to environmental contamination ablates the circadian clock of an aquatic sentinel species

机译:向环境污染的演变消灭了水生前哨物种的生物钟

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Abstract Environmental contamination is a common cause of rapid evolution. Recent work has shown that Daphnia pulex , an important freshwater species, can rapidly evolve increased tolerance to a common contaminant, sodium chloride (NaCl) road salt. While such rapid evolution can benefit organisms, allowing them to adapt to new environmental conditions, it can also be associated with unforeseen tradeoffs. Given that exposure to environmental contaminants can cause circadian disruption, we investigated whether the circadian clock was affected by evolving a tolerance to high levels of road salt. By tracking the oscillations of a putative clock gene, period , we demonstrated that D. pulex express per mRNA with approximately 20-hr oscillations under control conditions. This putative circadian rhythm was ablated in response to high levels of salinity; populations adapted to high NaCl concentrations exhibited an ablation of period oscillation. Moreover, we showed that while gene expression is increased in several other genes, including clock , actin , and Na + /K + -ATPase , upon the adaptation to high levels of salinity, per expression is unique among the genes we tracked in that it is the only gene repressed in response to salt adaptation. These results suggest that rapid evolution of salt tolerance occurs with the tradeoff of suppressed circadian function. The resultant circadian disruption may have profound consequences to individuals, populations, and aquatic food webs by affecting species interactions. In addition, our research suggests that circadian clocks may also be disrupted by the adaptation to other environmental contaminants.
机译:摘要环境污染是迅速发展的普遍原因。最近的工作表明,重要的淡水物种水蚤(Daphnia pulex)可以迅速提高对常见污染物氯化钠(NaCl)道路盐的耐受性。这样的快速进化可以使有机体受益,使其适应新的环境条件,但也可能带来无法预料的折衷。考虑到暴露于环境污染物会导致昼夜节律紊乱,我们研究了昼夜节律是否受到对高水平道路盐分耐受性的影响。通过跟踪一个假定的时钟基因,period的振荡,我们证明了D. pulex在控制条件下每个mRNA表达约20小时的振荡。这种假定的昼夜节律因高盐度而消融。适应高NaCl浓度的种群显示出周期性振荡的消融。此外,我们发现,虽然其他几个基因(包括Clock,actin和Na + / K + -ATPase)的基因表达都增加了,但在适应高盐度的情况下,每个表达在我们追踪的基因中都是唯一的是唯一对盐适应产生抑制的基因。这些结果表明,在抑制昼夜节律功能的权衡下,发生了耐盐性的快速演变。昼夜节律的破坏可能通过影响物种相互作用而对个人,种群和水生食物网产生深远的影响。此外,我们的研究表明,生物钟适应其他环境污染物也可能会破坏生物钟。

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