植物生态学报 ›› 2026, Vol. 50 ›› Issue (预发表): 0-.DOI: 10.17521/cjpe.2025.0077

• •    下一篇

不同形态氮素添加对四个温带树种幼苗叶性状和生长的影响

卜欣雅, 王秀伟   

  1. 东北林业大学, 150040
  • 收稿日期:2025-03-03 修回日期:2025-06-22 接受日期:2025-09-30 出版日期:2026-05-20 发布日期:2026-07-21

Effects of different forms of nitrogen addition on leaf traits and growth of seedlings of four temperate tree species

Xinya BU, Wang Xiuwei   

  1. , Northeast Forestry University 150040,
  • Received:2025-03-03 Revised:2025-06-22 Accepted:2025-09-30 Online:2026-05-20 Published:2026-07-21

摘要: 大气氮 (N) 沉降加剧导致森林生态系统中不同形态氮输入比例发生变化,而植物对不同形态氮源的响应机制及其资源权衡策略尚未明晰,这严重制约着基于氮素形态调控的森林生产力的提升。本研究旨在揭示温带树种叶性状和生长对不同形态氮素添加的响应,阐明植物对铵态氮、硝态氮和有机氮的适应策略。以东北温带森林四个常见树种 (白桦 (Betula platyphylla)、水曲柳 (Fraxinus mandshurica)、胡桃楸 (Juglans mandshurica) 和蒙古栎 (Quercus mongolica) )的一年生幼苗为研究对象,在三个生长季 (2021—2023) 的盆栽实验结束后,分析了铵态氮、硝态氮和有机氮 (甘氨酸) 添加对叶形态性状、化学性状、计量比和生物量共11项指标在不同形态氮处理下的差异,探讨对氮添加具有敏感可塑性响应的叶性状与生长的关系。发现三种形态氮添加均降低了叶磷含量,提高了地上生物量,呈现出由于快速生长造成叶磷含量降低的“生长稀释效应”;相较于对照,铵态氮和硝态氮处理对叶氮含量无显著影响,而甘氨酸处理显著提升叶氮含量 (+19%);叶氮磷比和碳磷比对氮添加表现出敏感的可塑性变化 (PPI≥0.3),且在铵态氮和硝态氮处理下种间差异扩大,高氮磷比和碳磷比的物种生物量更高,说明高资源竞争能力的物种将具有更大的竞争潜力。研究表明,氮添加通过调控叶化学性状及计量比影响温带树种生长策略,其中有机氮提升氮含量的同时未加剧种间差异,更利于幼苗适应氮磷限制环境。该结果为氮沉降背景下温带森林树种响应机制及人工林氮肥形态选择提供了理论依据,建议优先施用有机氮以平衡生产力提升与群落稳定性维持。

关键词: 氮添加, 氮形态, 表型可塑性, 叶性状, 地上生物量

Abstract: Aims Increased atmospheric nitrogen (N) deposition leads to changes in the proportion of different forms of N input in forest ecosystems, but the response mechanisms of plants to different N-form sources and their resource trade-off strategies have not been clarified. The effects of N deposition on plant growth and development are still unclear, restricting the improvement of forest productivity based on the regulation of N forms. This study aimed to reveal the response of leaf traits and growth of temperate tree species to different forms of N addition and elucidate the adaptive strategies of plants to the heterogeneity of ammonium, nitrate, and organic N. Methods We selected one-year-old seedlings of four common tree species in the temperate forests of Northeast China as the research objects, namely Betula platyphylla, Fraxinus mandshurica, Juglans mandshurica, and Quercus mongolica. We analyzed the effects of ammonium, nitrate, and organic N (glycine) additions and control (no N addition) on leaf traits of seedlings grown in pots over three growing seasons (2021-2023). At the end of the third growing season, changes in 11 indices, including leaf morphological traits, chemical traits, stoichiometric ratios, and biomass, were evaluated for their differences among N treatments and to investigate the relationship between leaf traits with sensitive plasticity in response to nitrogen treatments and growth. Important findings All three forms of N additions were found to reduce leaf P concentration and increase aboveground biomass, showing a “growth dilution effect” on P concentration due to rapid growth. Compared with control, the ammonium and nitrate additions did not have a significant effect on leaf N concentration, whereas glycine addition significantly increased leaf N concentration (+19%). Leaf N:P and C:P ratios showed sensitive plasticity to N addition (PPI≥0.3), and interspecific differences increased under ammonium and nitrate treatments. The species with high N:P and C:P achieved greater biomass, indicating that species capable of more effective resource utilization had greater growth competition potential. The addition of N affected growth strategies of temperate tree species by regulating leaf chemical traits and stoichiometric ratios. Organic N (glycine) addition boosted N concentration without exacerbating interspecific differences and facilitated seedling acclimatization to N- and P-limited environments. These results provide a theoretical basis for understanding the response of temperate forest species to N addition and guidance for the selection of N fertilizer forms in plantation forests under the background of N depletion. It is recommended to prioritize the application of organic N to balance productivity enhancement and maintenance of community stability.

Key words: Nitrogen addition, nitrogen form, phenotypic plasticity, leaf traits, aboveground biomass