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Elevated CO_2 stimulates marsh elevation gain, counterbalancing sea-level rise

机译:升高的CO_2刺激了沼泽的增高,抵消了海平面的上升

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Tidal wetlands experiencing increased rates of sea-level rise (SLR) must increase rates of soil elevation gain to avoid permanent conversion to open water. The maximal rate of SLR that these ecosystems can tolerate depends partly on mineral sediment deposition, but the accumulation of organic matter is equally important for many wetlands. Plant productivity drives organic matter dynamics and is sensitive to global change factors, such as rising atmospheric CO_2 concentration. It remains unknown how global change will influence organic mechanisms that determine future tidal wetland viability. Here, we present experimental evidence that plant response to elevated atmospheric [CO_2] stimulates biogenic mechanisms of elevation gain in a brackish marsh. Elevated CO_2 (ambient + 340 ppm) accelerated soil elevation gain by -3.9 mm yr~(-1) in this 2-year field study, an effect mediated by stimulation of below-ground plant productivity. Further, a companion greenhouse experiment revealed that the CO_2 effect was enhanced under salinity and flooding conditions likely to accompany future SLR. Our results indicate that by stimulating biogenic contributions to marsh elevation, increases in the greenhouse gas, CO_2, may paradoxically aid some coastal wetlands in counterbalancing rising seas.
机译:经历海平面上升速率(SLR)增加的潮汐湿地必须提高土壤增高速率,以避免永久性转换为开放水域。这些生态系统可以忍受的SLR的最大速率部分取决于矿物沉积物的沉积,但是有机物的积累对于许多湿地同样重要。植物的生产力驱动着有机物的动力学,并且对诸如大气中CO_2浓度上升等全球变化因素敏感。尚不清楚全球变化将如何影响决定未来潮汐湿地生存能力的有机机制。在这里,我们提供了实验证据,表明植物对大气[CO_2]升高的反应刺激了微咸沼泽中海拔升高的生物机制。在这项为期2年的田间研究中,升高的CO_2(环境+ 340 ppm)使土壤海拔增加加速了-3.9 mm yr〜(-1),这是通过刺激地下植物生产力而介导的。此外,伴随的温室实验表明,在未来的单反相机可能伴随的盐度和洪水条件下,CO_2的作用增强了。我们的结果表明,通过刺激沼气海拔升高的生物成因,温室气体CO_2的增加可能矛盾地帮助某些沿海湿地平衡上升的海洋。

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