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首页> 外文期刊>global change biology >Leaf gas exchange and nitrogen dynamics of N2‐fixing, field‐grownAlnus glutinosaunder elevated atmospheric CO2
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Leaf gas exchange and nitrogen dynamics of N2‐fixing, field‐grownAlnus glutinosaunder elevated atmospheric CO2

机译:固氮、田间种植的桔梗叶气交换与氮素动力学

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AbstractFew studies have investigated the effects of elevated CO2on the physiology of symbiotic N2‐fixing trees. Tree species grown in low N soils at elevated CO2generally show a decline in photosynthetic capacity over time relative to ambient CO2controls. This negative adjustment may be due to a reallocation of leaf N away from the photosynthetic apparatus, allowing for more efficient use of limiting N. We investigated the effect of twice ambient CO2on net CO2assimilation (A), photosynthetic capacity, leaf dark respiration, and leaf N content of N2‐fixingAlnus glutinosa(black alder) grown in field open top chambers in a low N soil for 160 d.At growth CO2, A was always greater in elevated compared to ambient CO2plants. Late season A vs. internal leaf p(CO2) response curves indicated no negative adjustment of photosynthesis in elevated CO2plants. Rather, elevated CO2plants had 16 greater maximum rate of CO2fixation by Rubisco. Leaf dark respiration was greater at elevated CO2on an area basis, but unaffected by CO2on a mass or N basis. In elevated CO2plants, leaf N content (μg N cm−2) increased 50 between Julian Date 208 and 264. Leaf N content showed little seasonal change in ambient CO2plants. A single point acetylene reduction assay of detached, nodulated root segments indicated a 46 increase in specific nitrogenase activity in elevated compared to ambient CO2plants. Our results suggest that N2‐fixing trees will be able to maintain high A with minimal negative adjustment of photosynthetic capacity following prolonged exposure to elevated CO2on N‐
机译:摘要很少有研究探讨CO2升高对共生固氮树生理学的影响。在高 CO2 条件下生长在低氮土壤中的树种通常相对于环境 CO2 控制而言,随着时间的推移,光合能力会下降。这种负调整可能是由于叶子 N 从光合装置中重新分配,从而可以更有效地利用限制 N。研究了2次环境CO2对净CO2同化(A)、光合能力、叶片暗呼吸作用和N2固氮量的影响,在低氮土壤中田间露顶室中生长160 d.At CO2,与环境CO2植物相比,A在高处总是更大。晚季A与叶片内p(CO2)的响应曲线表明,CO2升高植株的光合作用没有负向调整。相反,升高的 CO2 植物的最大 CO2 固定速率比 Rubisco 高 16%。CO2浓度升高时叶片暗呼吸作用较大,但不受CO2质量或氮的影响。在CO2升高的植株中,儒略历208年至264年间叶片氮含量(μg N cm−2)增加了50%。环境CO2植株叶片氮含量的季节变化不大。分离的结瘤根段的单点乙炔还原测定表明,与环境 CO2 植物相比,升高的特定固氮酶活性增加了 46%。我们的结果表明,在长时间暴露于升高的 CO2on N‐ 后,固氮树将能够保持高 A,光合能力的负调整最小

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