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Ectomycorrhizal fungi and past high CO2 atmospheres enhance mineral weathering through increased below-ground carbon-energy fluxes

机译:外生菌根真菌和过去的高CO2气氛通过增加地下碳能量通量来增强矿物风化

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摘要

Field studies indicate an intensification of mineral weathering with advancement from arbuscular mycorrhizal (AM) to later-evolving ectomycorrhizal (EM) fungal partners of gymnosperm and angiosperm trees. We test the hypothesis that this intensification is driven by increasing photosynthate carbon allocation to mycorrhizal mycelial networks using 14CO2-tracer experiments with representative tree–fungus mycorrhizal partnerships. Trees were grown in either a simulated past CO2 atmosphere (1500 ppm)—under which EM fungi evolved—or near-current CO2 (450 ppm). We report a direct linkage between photosynthate-energy fluxes from trees to EM and AM mycorrhizal mycelium and rates of calcium silicate weathering. Calcium dissolution rates halved for both AM and EM trees as CO2 fell from 1500 to 450 ppm, but silicate weathering by AM trees at high CO2 approached rates for EM trees at near-current CO2. Our findings provide mechanistic insights into the involvement of EM-associating forest trees in strengthening biological feedbacks on the geochemical carbon cycle that regulate atmospheric CO2 over millions of years.
机译:野外研究表明,矿物质风化程度从丛枝菌根(AM)到裸子植物和被子植物树的后来发展的外生菌根(EM)真菌伙伴不断发展。我们使用14CO2-示踪剂实验和代表性的树真菌真菌菌种伙伴关系来检验这种强化是由增加光合产物碳分配到菌根菌丝体网络驱动的假说。树木在模拟的过去CO2气氛(1500 ppm)下生长(EM真菌在该环境下生长),或者在近乎当前的CO2(450 ppm)下生长。我们报告了从树木到EM和AM菌根菌丝体的光合能通量与硅酸钙风化率之间的直接联系。当CO2从1500 ppm降至450 ppm时,AM和EM树木的钙溶解速率减半,但是AM树木在高CO2下的硅酸盐风化接近EM树在接近当前CO2的情况下的风化速率。我们的发现提供了与EM相关的林木参与加强对地球化学碳循环的生物反馈的力学见解,这些反馈调节了数百万年的大气CO2。

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