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Resistance of soil protein depolymerization rates to eight years of elevated CO2, warming, and summer drought in a temperate heathland

机译:土壤蛋白质解聚率的耐药率至8年的升高的CO2,变暖和夏季干旱在温带气象兰德

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Soil N availability for plants and microorganisms depends on the breakdown of soil polymers such as proteins into smaller, assimilable units by microbial extracellular enzymes. Changing climatic conditions are expected to alter protein depolymerization rates over the next decades, and thereby affect the potential for plant productivity. We here tested the effect of increased CO2 concentration, temperature, and drought frequency on gross rates of protein depolymerization, N mineralization, microbial amino acid and ammonium uptake using N-15 pool dilution assays. Soils were sampled in fall 2013 from the multifactorial climate change experiment CLIMAITE that simulates increased CO2 concentration, temperature, and drought frequency in a fully factorial design in a temperate heathland. Eight years after treatment initiation, we found no significant effect of any climate manipulation treatment, alone or in combination, on protein depolymerization rates. Nitrogen mineralization, amino acid and ammonium uptake showed no significant individual treatment effects, but significant interactive effects of warming and drought. Combined effects of all three treatments were not significant for any of the measured parameters. Our findings therefore do not suggest an accelerated release of amino acids from soil proteins in a future climate at this site that could sustain higher plant productivity.
机译:土壤N用于植物和微生物的可用性取决于通过微生物细胞外酶的蛋白质如蛋白质如蛋白质的崩溃。期望改变气候条件在未来几十年中改变蛋白质解聚率,从而影响植物生产率的潜力。我们在这里测试了CO 2浓度,温度和干旱频率提高的效果,以蛋白质解聚,N-15池稀释测定的含量蛋白解聚,N矿化,微生物氨基酸和铵摄取的速率。来自2013年秋季的多因素气候变化实验高潮在2013年秋季进行了取样,该实验高度模拟了在温带Heathland的完全因数设计中增加了CO 2浓度,温度和干旱频率。治疗开始八年后,我们发现任何气候操纵治疗,单独或组合,对蛋白质解聚率没有显着影响。氮矿化,氨基酸和铵摄取显示出没有显着的个体治疗效果,但变暖和干旱的显着互动影响。所有三种治疗的组合效果对于任何测量的参数都不重要。因此,我们的研究结果并不意味着在该网站的未来气候中加速释放来自土壤蛋白的氨基酸,可以维持更高的植物生产率。

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