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Arctic Coralline Algae Elevate Surface pH and Carbonate in the Dark

机译:北极珊瑚藻类在黑暗中可提高表面pH和碳酸盐含量

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摘要

Red coralline algae are projected to be sensitive to ocean acidification, particularly in polar oceans. As important ecosystem engineers, their potential sensitivity has broad implications, and understanding their carbon acquisition mechanisms is necessary for making reliable predictions. Therefore, we investigated the localized carbonate chemistry at the surface of Arctic coralline algae using microsensors. We report for the first time carbonate ion concentration and pH measurements ([CO32-]) at and above the algal surface in the microenvironment. We show that surface pH and [CO32-] are higher than the bulk seawater in the light, and even after hours of darkness. We further show that three species of Arctic coralline algae have efficient carbon concentrating mechanisms including direct bicarbonate uptake and indirect bicarbonate use via a carbonic anhydrase enzyme. Our results suggest that Arctic corallines have strong biological control over their surface chemistry, where active calcification occurs, and that net dissolution in the dark does not occur. We suggest that the elevated pH and [CO32-] in the dark could be explained by a high rate of light independent carbon fixation that reduces respiratory CO2 release. This mechanism could provide a potential adaptation to ocean acidification in Arctic coralline algae, which has important implications for future Arctic marine ecosystems.
机译:珊瑚红藻预计对海洋酸化敏感,特别是在极地海洋中。作为重要的生态系统工程师,他们的潜在敏感性具有广泛的意义,因此了解他们的碳捕获机制对于做出可靠的预测是必要的。因此,我们使用微传感器研究了北极珊瑚藻表面的碳酸盐化学成分。我们首次报告了微环境中藻类表面及其上方的碳酸根离子浓度和pH测量([CO3 2-])。我们显示,即使在经过数小时的黑暗之后,表面的pH值和[CO3 2-]仍比光照下的海水高。我们进一步表明,三种北极珊瑚藻具有有效的碳浓缩机制,包括直接吸收碳酸氢盐和通过碳酸酐酶间接使用碳酸氢盐。我们的结果表明,北极珊瑚礁对其表面化学具有强大的生物控制能力,在该表面发生积极的钙化作用,并且在黑暗中不会发生净溶解。我们认为,黑暗中pH值升高和[CO3 2-]的升高可以通过光独立的高碳固定率来降低,从而减少呼吸中的CO2释放。这种机制可能对北极珊瑚藻中的海洋酸化提供潜在的适应性,这对未来的北极海洋生态系统具有重要意义。

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