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根序与林龄协同驱动柠条锦鸡儿细根水力解剖特征的演变规律

温海瑞1, 何师万1, 刘文栩2, 李雅妮1, 王佩将1, 程建伟1, 李宗善3,4,5, 梁海斌1,3,4,5*   

  1. 1.太原师范学院地理科学学院,晋中 030619;2. 山西大学黄土高原研究所,太原 030619;3. 中国科学院生态环境研究中心区域与城市生态安全全国重点实验室,北京 100085;4. 陕西延安森林生态系统国家定位观测研究站,北京,100085;5. 陕西黄土高原地球关键带国家野外科学观测站,西安,710061
  • 收稿日期:2026-06-30 修回日期:2026-08-02 接受日期:2026-08-21
  • 通讯作者: 梁海斌

Root order and stand age synergistically drive the evolution of fine root hydraulic anatomical traits in Caragana korshinskii

Hairui Wen1, Shiwan He1, Wenxu Liu2, Yani Li1, Peijiang Wang1, Jianwei Cheng1, Zongshan Li3,4,5, Haibin Liang1,3,4,5*   

  1. 1 Institute of Geographical Science, Taiyuan Normal University, Jinzhong, Shanxi 030619, China 

    2 Institute of Loess Plateau, Shanxi University, TaiYuan, Shanxi 030032, China 

    3 State Key Laboratory of Regional and Urban Ecology, Research Center for Eco-Environmental Sciences, Chinese Academy of Sciences, Beijing 100085, China 

    4 Shaanxi Yan'an Forest Ecosystem National Observation and Research Station, Beijing 100085, China 

    5 National Observation and Research Station of Earth Critical Zone on the Loess Plateau in Shaanxi, Xi'an 710061, China

  • Received:2026-06-30 Revised:2026-08-02 Accepted:2026-08-21
  • Contact: Haibin Liang

摘要: 细根水力解剖特征深刻影响木本植物在干旱环境中的水分吸收、运输及群落演替稳定性。本研究以晋西北黄土丘陵区不同林龄(11、16、22、32、47、60 a)柠条锦鸡儿(Caragana korshinskii, 俗名柠条)灌丛为研究对象,采用根序分级、石蜡切片和显微图像分析方法,测定1–5级细根木质部面积(Axyl)、导管密度(VD)、水力直径(Dh)、根比导水率(Khp)和导管面积与木质部面积之比(Aves/Axyl)等核心解剖参数,并结合双因素方差分析、主成分分析和结构方程模型,探讨林龄与根序对细根水力解剖构型的协同驱动机制。结果表明:(1)根序是细根水力解剖性状分异的主要来源,对AxylKhp的变异解释率分别为88.16%和76.32%。随根序级次升高,DhAxylKhp总体增加,VD降低,表明低级根导管配置较保守,高级根具有更强的结构可塑性。(2)林龄主要影响高级根的导管配置。林龄11 a和16 a的高级根仅维持基础水力结构;林龄22–60 a,高级根通过调整VDAves/AxylAxyl的组合关系,提高DhKhp,增强水分运输能力。(3)林龄与根序的交互作用对VDKhpAxylDh均产生极显著影响(P < 0.001),说明根序效应随林龄发生变化。结构方程模型进一步表明,林龄主要通过调整木质部内部导管空间分配影响细根水力结构,而Dh对土壤含水量的响应更为直接。综上,柠条锦鸡儿细根水力解剖构型表现出根序分层响应,低级根受初生结构限制,导管配置相对保守;高级根依托次生生长空间,通过表型可塑性调整提高输水能力。该机制有助于维持柠条锦鸡儿灌丛演替过程中的水分供需平衡。在植被恢复实践中,应重点关注林龄22–32 a林分的水分管理;对老龄林(> 47 a)可考虑适度平茬或间伐更新,以降低深层土壤水分过度消耗风险。

关键词: 细根, 林龄, 水力解剖结构, 表型可塑性, 空间约束

Abstract

Aims: Fine root hydraulic anatomical traits profoundly influence water uptake and transport in woody plants and the stability of community succession in arid environments. This study investigated Caragana korshinskii (common name: ning tiao) shrubs of different stand ages (11, 16, 22, 32, 47, and 60 years) in the loess hilly region of northwestern Shanxi Province. By analyzing the hydraulic anatomical traits of 1st- to 5th-order fine roots, this study aimed to clarify the synergistic effects of stand age and root order on fine root hydraulic anatomical architecture. 

Methods: Fine roots were classified into five orders using the root-order classification method. Paraffin sectioning and microscopic image analysis were used to measure key anatomical parameters, including xylem area (Axyl), vessel density (VD), hydraulic diameter (Dh), root specific hydraulic conductivity (Khp), and the ratio of vessel area to xylem area (Aves/Axyl). Two-way ANOVA, principal component analysis (PCA), and structural equation modeling (SEM) were used to examine the effects of stand age and root order on fine root hydraulic anatomical architecture. 

Results: (1) Root order was the main source of variation in fine root hydraulic anatomical traits, accounting for 88.16% and 76.32% of the variation in Axyl and Khp, respectively. With increasing root order, Dh, Axyl, and Khp generally increased, whereas VD decreased, indicating that lower-order roots had more conservative vessel configurations, while higher-order roots exhibited greater structural plasticity. (2) Stand age mainly affected vessel configuration in higher-order roots. At stand ages of 11 and 16 years, higher-order roots only maintained the basic hydraulic structure. At stand ages ranging from 22 to 60 years, higher-order roots increased Dh and Khp by adjusting the combined relationships among VD, Aves/Axyl, and Axyl, thereby enhancing water transport capacity. (3) The interaction between stand age and root order had extremely significant effects on VD, Khp, Axyl, and Dh (P < 0.001), indicating that root-order effects varied with stand age. Structural equation modeling further revealed that stand age mainly affected fine root hydraulic structure by regulating vessel space allocation within the xylem, whereas Dh responded more directly to soil water content. 

Conclusion: The fine root hydraulic anatomical architecture in C. korshinskii followed a root-order hierarchical response pattern. Lower-order roots were constrained by their primary structure and maintained relatively conservative vessel configurations, whereas higher-order roots utilized the structural space provided by secondary growth to improve water transport capacity through phenotypic plasticity. This mechanism may help maintain the balance between water supply and demand during shrub succession. In vegetation restoration practices, water management should receive particular attention in 22- to 32-year-old stands. For older stands (> 47-year), moderate stumping or thinning may be considered to reduce the risk of excessive deep soil water depletion.

Key words: fine roots, stand age, hydraulic anatomical structure, phenotypic plasticity, spatial constraint