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臭氧暴露和氮添加对树木根系特征和生物量分配格局的交互作用:一项实验案例研究和文献荟萃分析。

Interactive effects of ozone exposure and nitrogen addition on tree root traits and biomass allocation pattern: An experimental case study and a literature meta-analysis.

机构信息

College of Forestry, Beijing Forestry University, Beijing 100083, China; State Key Laboratory of Urban and Regional Ecology, Research Center for Eco-Environmental Sciences, Chinese Academy of Sciences, Shuangqing Road 18, Haidian District, Beijing 100085, China.

State Key Laboratory of Urban and Regional Ecology, Research Center for Eco-Environmental Sciences, Chinese Academy of Sciences, Shuangqing Road 18, Haidian District, Beijing 100085, China.

出版信息

Sci Total Environ. 2020 Mar 25;710:136379. doi: 10.1016/j.scitotenv.2019.136379. Epub 2020 Jan 2.

Abstract

Ground-level ozone (O) pollution often co-occurs with anthropogenic nitrogen (N) deposition. Many studies have explored how O and soil N affect aboveground structure and function of trees, but it remains unclear how belowground processes change over a spectrum of N addition and O concentrations levels. Here, we explored the interactive impact of O (five levels) and soil N (four levels) on fine and coarse root biomass and biomass allocation pattern in poplar clone 107 (Populus euramericana cv. '74/76'). We then evaluated the modifying effects of N on the responses of tree root biomass to O via a synthesis of published literature. Elevated O inhibited while N addition stimulated root biomass, with more pronounced effects on fine roots than on coarse root. The root:shoot (R:S) ratio was markedly decreased by N addition but remained unaffected by O. No interactive effects between O and N were observed on root biomass and R:S ratio. The slope of log-log linear relationship between shoot and root biomass (i.e. scaling exponent) was increased by N, but not significantly affected by O. The analysis of published literature further revealed that the O-induced reduction in tree root biomass was not modified by soil N. The results suggest that higher N addition levels enhance faster allocation of shoot biomass while shoot biomass scales isometrically with root biomass across multiple O levels. N addition does not markedly alter the sensitivity of root biomass of trees to O. These findings highlight that the biomass allocation exhibits a differential response to environmentally realistic levels of O and N, and provide an important perspective for understanding and predicting net primary productivity and carbon dynamics in O-polluted and N-enriched environments.

摘要

地面臭氧(O)污染通常与人为氮(N)沉积同时发生。许多研究都探讨了 O 和土壤 N 如何影响树木的地上结构和功能,但对于 N 添加和 O 浓度水平范围内地下过程的变化仍不清楚。在这里,我们研究了 O(五个水平)和土壤 N(四个水平)对杨树无性系 107(Populus euramericana cv. '74/76')细根和粗根生物量及其生物量分配模式的交互影响。然后,我们通过综合已发表的文献评估了 N 对树木根生物量对 O 响应的修饰作用。O 升高抑制根生物量,而 N 添加则刺激根生物量,对细根的影响比粗根更明显。N 添加显著降低了根冠比(R:S),但 O 对其没有影响。O 和 N 之间没有观察到对根生物量和 R:S 比的交互作用。N 添加增加了根生物量与地上生物量之间的对数-对数线性关系的斜率(即标度指数),但 O 对其没有显著影响。对已发表文献的分析进一步表明,O 对树木根生物量的降低作用不受土壤 N 的修饰。研究结果表明,较高的 N 添加水平增强了地上生物量的更快分配,而在多个 O 水平下,地上生物量与根生物量呈等比关系。N 添加不会显著改变树木根生物量对 O 的敏感性。这些发现强调了生物量分配对环境现实水平的 O 和 N 具有不同的响应,为理解和预测 O 污染和 N 富集环境中的净初级生产力和碳动态提供了重要视角。

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