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林业科学 ›› 2026, Vol. 62 ›› Issue (8): 43-54.doi: 10.11707/j.1001-7488.LYKX20260049

• 研究论文 • 上一篇    下一篇

蒙古栎多器官功能性状的协同与权衡关系及其对土壤碳氮含量的响应

任雪莹1,许智荣1,王璇1,李重仪1,赵秀海1,何怀江2,张春雨1,张新娜1,*()   

  1. 1. 北京林业大学 森林培育与保护教育部重点实验室 北京 100083
    2. 吉林省林业科学研究院 长春 130022
  • 收稿日期:2026-01-23 修回日期:2026-05-14 出版日期:2026-08-10 发布日期:2026-08-20
  • 通讯作者: 张新娜 E-mail:zhangxinna@bjfu.edu.cn
  • 基金资助:
    国家重点研发计划项目(2023YFF1304004-06);北京林业大学“5-5工程”科研创新团队项目(BLRC2023B06)。

Synergistic and Trade-off Relationships among Multi-Organ Functional Traits of Quercus mongolica and Their Responses to Soil Carbon and Nitrogen Contents

Xueying Ren1,Zhirong Xu1,Xuan Wang1,Zhongyi Li1,Xiuhai Zhao1,Huaijiang He2,Chunyu Zhang1,Xinna Zhang1,*()   

  1. 1. Key Laboratory of Forest Cultivation and Protection of Ministry of Education Beijing Forestry University Beijing 100083
    2. Jilin Provincial Academy of Forestry Sciences Changchun 130022
  • Received:2026-01-23 Revised:2026-05-14 Online:2026-08-10 Published:2026-08-20
  • Contact: Xinna Zhang E-mail:zhangxinna@bjfu.edu.cn

摘要:

目的: 基于不同土层土壤有机碳和全氮含量的垂直分布格局,探究蒙古栎叶、枝、根功能性状间的协同与权衡关系,揭示其资源利用策略,为蒙古栎的科学经营和管理提供理论依据。方法: 测定辽东山区典型蒙古栎叶、枝、根全碳、全氮含量及叶干物质含量、比叶面积、比根长、根平均直径、根组织密度等功能性状指标,结合0~10、10~20、20~30 cm土层的有机碳、全氮含量,分析蒙古栎各器官功能性状间的内在关联及其与土壤碳氮化学计量特征的关系。结果: 1) 蒙古栎碳、氮含量及化学计量比在各器官间呈极显著差异(P<0.01),其中碳含量呈现出根>叶>枝的分布格局,氮含量呈现出叶>根>枝的分布格局,碳氮比呈现出枝>根>叶的分布格局;整体形成从叶片“快速投资?收益型”到枝条“缓慢投资?收益型”再到根系“持久维持”的连续资源利用策略谱,对应“获取?保守?持久”的资源利用策略。2) 蒙古栎各器官功能性状间呈显著相关性,其中枝碳氮比与比叶面积呈极显著负相关(P<0.01)、与叶干物质含量呈极显著正相关(P<0.01),根氮含量与叶氮含量呈极显著正相关(P<0.01),比叶面积与比根长呈极显著正相关(P<0.01),表明蒙古栎各器官功能性状并非独立变异,而是通过内在的紧密关联对资源进行协调分配和利用。根平均直径与根组织密度呈极显著负相关(P<0.01),表明蒙古栎根系在结构构建与资源获取之间存在权衡关系,并表现为“结构?功能解耦”特征,反映出其地下资源获取的复杂性。3) 土壤有机碳、全氮含量随土层加深而递减,呈明显的表层富集特征,而碳氮比在不同土层间差异不显著。第一主成分(土壤碳、氮含量梯度)对蒙古栎各器官功能性状变异具有显著解释作用(P<0.05),第二主成分(土壤碳氮比)未表现出显著作用。此外,各器官功能性状沿土壤碳、氮含量梯度呈现出方向一致或相反的变化特征,表明蒙古栎通过多器官功能性状间的协同与权衡对土壤碳、氮含量梯度作出响应。结论: 蒙古栎各器官功能性状未对土壤碳氮比表现出显著响应,而是通过器官功能性状间的协同与权衡响应土壤碳、氮含量变化,并呈现出“获取?保守?持久”的资源利用策略。

关键词: 蒙古栎, 功能性状, 土壤碳氮, 生态化学计量, 适应策略

Abstract:

Objective: Based on the vertical distribution of soil organic carbon and total nitrogen in different soil layers, this study aims to examine the coordination and trade-offs among leaf, branch, and root functional traits of Quercus mongolica, and to clarify its resource-use strategy, thereby providing a theoretical basis for its scientific management. Method: The functional traits of leaves, branches, and roots of typical Q. mongolica in the Liaodong mountainous area, including total carbon content, total nitrogen content, leaf dry matter content, specific leaf area, specific root length, root average diameter, and root tissue density, were measured. Combined with soil organic carbon and total nitrogen contents measured at depths of 0?10, 10?20, and 20?30 cm, the relationships among functional traits of different organs of Q. mongolica and their associations with soil carbon and nitrogen stoichiometric characteristics were analyzed. Result: 1) There were significant differences in carbon and nitrogen contents, as well as their stoichiometric ratios among organs of Q. mongolica (P<0.01). Among them, carbon content followed a pattern of root > leaf > branch, nitrogen content followed a pattern of leaf > root > branch, and the carbon to nitrogen ratio followed a pattern of branch > root > leaf. The spectrum of continuous resource utilization strategies overall formed from “fast investment-return” in leaves to “slow investment–return” in branches and “persistent maintenance” in roots, corresponding to the resource-use strategy of “acquisitive–conservative–persistent” . 2) There were significant correlations among functional traits of different organs of Q. mongolica. Among them, branch carbon to nitrogen ratio was negatively correlated with specific leaf area (P<0.01) and positively correlated with leaf dry matter content (P<0.01), root nitrogen content was positively correlated with leaf nitrogen content (P<0.01), and specific leaf area was positively correlated with specific root length (P<0.01), indicating that functional traits of different organs of Q. mongolica did not vary independently, but rather coordinated resource allocation and use through internal linkages. In addition, average diameter of roots was negatively correlated with root tissue density (P<0.01), indicating a trade-off between structural construction and resource acquisition in roots of Q. mongolica, showing a “structure–function decoupling” pattern and reflecting the complexity of belowground resource acquisition. 3) Soil organic carbon and total nitrogen contents decreased with increasing soil depth, showing a clear surface enrichment pattern, while soil carbon to nitrogen ratio did not differ significantly among layers. The first principal component, representing the soil carbon and nitrogen content gradient, had a significant effect on the variation of functional traits of different organs of Q. mongolica (P<0.05), while the second principal component, representing soil carbon to nitrogen ratio, showed no significant effect. Additionally, functional traits of different organs of Q. mongolica showed consistent or opposite trends along the soil carbon and nitrogen content gradient, indicating that Q. mongolica responded to soil carbon and nitrogen content gradient through coordination and trade-offs among multiple organ functional traits. Conclusion: Functional traits of different organs of Q. mongolica do not significantly respond to soil carbon to nitrogen ratio, but respond to variations in soil carbon and nitrogen contents through coordination and trade-offs among organ functional traits, showing an “acquisitive–conservative–persistent” resource-use strategy.

Key words: Quercus mongolica, functional traits, soil carbon and nitrogen, ecological stoichiometry, adaptive strategy

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