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首页> 外文期刊>Soil Biology & Biochemistry >Phosphorus addition alters the response of soil organic carbon decomposition to nitrogen deposition in a subtropical forest
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Phosphorus addition alters the response of soil organic carbon decomposition to nitrogen deposition in a subtropical forest

机译:磷添加改变了亚热带林中土壤有机碳分解对氮沉积的反应

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The continuous increase of nitrogen (N) deposition may exacerbate phosphorus (P) deficiency, which affects soil organic carbon (SOC) decomposition by changing microbial community characteristics in subtropical forests with highly weathered soils. However, there is currently little information about the role of P and the N x P interaction in SOC dynamics. Here, a field nutrient manipulation experiment was established in a subtropical plantation forest in China. Soils collected from simulated N deposition and P addition treatments for 5 years were incubated at 25 degrees C for 130 days. Soil microbial composition was measured using the phospholipid fatty acid method and the enzyme activities related to SOC hydrolysis were measured. The SOC concentration and delta C-13 in bulk soil and three particle-size fracfractions were also determined. The cumulative CO2 respired over 9 days, representing the utilization of carbon sources under field conditions, increased with N deposition levels under the without-P treatment, while no significant differences were found among the three N deposition levels in the with-P treatment. Meanwhile, P addition generally suppressed the SOC decomposition during 130 days incubation. Similarly, P addition decreased the potential organic carbon decomposition (C-0) and C-0/SOC ratio. In contrast, C-0 increased with N deposition in the without-P treatment, while was unaffected by N deposition under the with-P treatment, suggesting the response of SOC decomposition to N deposition was affected following P addition by alteration of SOC quality. Moreover, N deposition tended to deplete the delta C-13 of the SOC and P addition enriched the delta C-13 of the macro-particulate organic carbon. Addition of P increased total microbial, fungal and bacterial biomass values by 41.6%, 90.0% and 46.9%, respectively, whereas N deposition had no significant effect. Soil fungi/bacteria ratio significantly increased by N deposition and P addition, which partly explained the reduction of SOC decomposition after P addition. The cellobioside activity significantly decreased by 48.3% after P addition, while cellobioside and beta-xylosidase activities increased with N deposition, suggesting that N deposition and P addition had opposite roles in the SOC stability. These results indicate that the positive effect of N deposition on SOC decomposition was suppressed when P was added by changing microbial community and enzyme activity and enhanced P availability may result in increased SOC accumulation under N deposition scenarios in subtropical forests.
机译:氮(N)沉积的连续增加可以加剧磷(P)缺乏,这影响通过高度风化的土壤中亚热带林中的微生物群落特征来影响土壤有机碳(SOC)分解。但是,目前有关于P的作用和N X P在SoC动态中的互动的信息很少。在此,在中国的亚热带种植林中建立了现场营养处理实验。将从模拟的N沉积和P添加处理中收集的土壤在25℃下在25℃下孵育130天。使用磷脂脂肪酸法测量土壤微生物组合物,并测量与SOC水解有关的酶活性。还测定了散装土壤中的SoC浓度和δC-13和三种粒径的熔汞。累积二氧化碳在9天内呼吸,代表现场条件下的碳源的利用率,在没有-P处理下的N沉积水平增加,而在用-P处理中的三个沉积水平下没有发现显着差异。同时,在孵育130天内,P添加通常抑制SOC分解。类似地,P添加降低了潜在的有机碳分解(C-0)和C-0 / SOC比率。相反,在没有-P处理中,C-0随着N沉积而增加,同时在用p的情况下不受N沉积的影响,表明SoC分解对n沉积的响应受到SoC质量的改变后的影响。此外,n沉积倾向于耗尽SoC和P添加的δc-13,富集的宏观微粒有机碳的δc-13。添加P增加总微生物,真菌和细菌生物质值41.6%,90.0%和46.9%,而N沉积没有显着效果。土壤真菌/细菌比例显着增加,N沉积和P添加,这部分解释了P添加后的SOC分解的减少。在P添加后,纤维酶活性的活性显着降低了48.3%,而纤维酶促和β-木糖苷酶活性随N沉积而增加,表明N沉积和P添加在SOC稳定性中具有相反的作用。这些结果表明,当通过改变微生物群落和酶活性加入P时,抑制了N沉积对SOC分解的阳性效应,并且增强的P可用性可能导致亚热带森林中的N沉积场景下的SOC积累增加。

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