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The role of land plants, phosphorus weathering and fire in the rise andregulation of atmospheric oxygen

机译:陆地植物,磷的风化和火灾在大气氧的上升和调节中的作用

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The evolution of vascular plants and their spread across the land surface, beginning similar to 420 Ma, progressively increased the rate of weathering of phosphorus from rocks. This phosphorus supply promoted terrestrial and marine productivity and the burial of organic carbon, which has been the major source Of O-2 over geological timescales. Hence, it is predicted that the rise of plants led to an increase in the O-2 content of the atmosphere from similar to 12 vol %, 570-400 Ma to its present level of similar to 21 vol % by similar to 340 Ma. Previous modelling studies suggest that O-2 then rose to similar to 35 vol % similar to 300 Ma. Such high concentrations are difficult to reconcile with the known persistence of forests, because rising O-2 increases the frequency and intensity of vegetation fires, tending to decrease biomass and cause ecological shifts toward faster regenerating ecosystems. Rising O-2 also directly inhibits C3 photosynthetic carbon assimilation and increases the production of toxic reactive oxygen species in cells. These effects suppress plant-induced phosphorus weathering and hence organic carbon burial, providing a sensitive negative feedback on O-2. A revised model predicts that this mechanism could have regulated atmospheric O-2 within the range 15-25 vol % for the last 350 million years.
机译:维管植物的进化及其在陆地表面的扩散(始于420 Ma)逐渐增加了岩石中磷的风化速率。磷的供应促进了陆地和海洋生产力以及埋藏有机碳,有机碳一直是地质时期内O-2的主要来源。因此,据预测,植物的生长导致大气中O-2的含量从570-400 Ma的约12 vol%增加到目前的21 vol%的约340 Ma。先前的建模研究表明,O-2随后上升到约35 vol%,类似于300 Ma。如此高的浓度很难与已知的森林持久性相调和,因为上升的O-2会增加植被火灾的频率和强度,从而趋于减少生物量,并导致生态系统向更快再生的生态系统转移。上升的O-2还直接抑制C3光合碳同化并增加细胞中有毒活性氧的产生。这些作用抑制了植物引起的磷风化,从而抑制了有机碳的埋葬,从而对O-2提供了灵敏的负反馈。修改后的模型预测,在过去的3.5亿年中,该机制可能已将大气中的O-2调节在15-25 vol%的范围内。

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