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Genes Related to Ion-Transport and Energy Production Are Upregulated in Response to CO2-Driven pH Decrease in Corals: New Insights from Transcriptome Analysis

机译:响应CO2驱动的珊瑚pH值降低与离子运输和能量产生相关的基因上调:转录组分析的新见解

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摘要

Since the preindustrial era, the average surface ocean pH has declined by 0.1 pH units and is predicted to decline by an additional 0.3 units by the year 2100. Although subtle, this decreasing pH has profound effects on the seawater saturation state of carbonate minerals and is thus predicted to impact on calcifying organisms. Among these are the scleractinian corals, which are the main builders of tropical coral reefs. Several recent studies have evaluated the physiological impact of low pH, particularly in relation to coral growth and calcification. However, very few studies have focused on the impact of low pH at the global molecular level. In this context we investigated global transcriptomic modifications in a scleractinian coral (Pocillopora damicornis) exposed to pH 7.4 compared to pH 8.1during a 3-week period. The RNAseq approach shows that 16% of our transcriptome was affected by the treatment with 6% of upregulations and 10% of downregulations. A more detailed analysis suggests that the downregulations are less coordinated than the upregulations and allowed the identification of several biological functions of interest. In order to better understand the links between these functions and the pH, transcript abundance of 48 candidate genes was quantified by q-RT-PCR (corals exposed at pH 7.2 and 7.8 for 3 weeks). The combined results of these two approaches suggest that pH≥7.4 induces an upregulation of genes coding for proteins involved in calcium and carbonate transport, conversion of CO2 into HCO3 and organic matrix that may sustain calcification. Concomitantly, genes coding for heterotrophic and autotrophic related proteins are upregulated. This can reflect that low pH may increase the coral energy requirements, leading to an increase of energetic metabolism with the mobilization of energy reserves. In addition, the uncoordinated downregulations measured can reflect a general trade-off mechanism that may enable energy reallocation.
机译:自工业化前时代以来,平均海洋表面pH下降了0.1个pH单位,预计到2100年将进一步下降0.3个pH单位。尽管微妙,pH的下降对碳酸盐矿物的海水饱和状态有深远的影响,因此预计会影响钙化生物。其中有Scleractinian珊瑚,它们是热带珊瑚礁的主要建造者。最近的一些研究评估了低pH值对生理的影响,特别是在珊瑚生长和钙化方面。但是,很少有研究集中在全球分子水平上低pH的影响上。在这种情况下,我们调查了在3周内暴露于pH 7.4与pH 8.1的巩膜珊瑚(Pocillopora damicornis)中的总体转录组修饰。 RNAseq方法显示,有6%的上调和10%的下调受到治疗的影响,其中有16%的转录组受到影响。更详细的分析表明,与上调相比,下调的协调性较差,并且可以识别出所需的几种生物学功能。为了更好地理解这些功能与pH之间的联系,通过q-RT-PCR(在pH 7.2和7.8下暴露3周的珊瑚)对48个候选基因的转录本丰度进行了定量。两种方法的综合结果表明,pH≥7.4会诱导编码参与钙和碳酸盐运输,将CO2转化为HCO3 -和可能维持钙化的有机基质的蛋白质的基因上调。伴随地,编码异养和自养相关蛋白的基因被上调。这可以反映出低pH值可能会增加珊瑚对能量的需求,从而随着能量储备的调动而增加能量代谢。另外,测得的不协调的下调可以反映出可以实现能量重新分配的一般权衡机制。

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