植物生态学报

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增温对林木高生长和径向生长的差异化影响研究进展

刘林焰, 韩润宇, 魏媛媛, 杨智杰, 熊德成, 陈仕东   

  1. 福建师范大学地理科学学院/碳中和未来技术学院, 福州 350007地理科学学院/碳中和未来技术学院, 福建 350007 中国
    福建三明森林生态系统与国家野外科学观测研究站, 福建三明 365002福建三明森林生态系统与国家野外科学观测研究站, 福建 365002 中国
  • 收稿日期:2025-08-19 修回日期:2026-02-10
  • 基金资助:
    福建省自然科学基金项目(2023I0010); 福建省自然科学基金项目(2025R1101)

A review of the divergent responses of tree height and radial growth to warming

LIU Lin-Yan, HAN Run-Yu, WEI Yuan-Yuan, YANG Zhi-Jie, XIONG De-Cheng, CHEN Shi-Dong   

  1. College of Geographic Sciences/Carbon-Neutral Institute of Future Technology, College of Geographic Sciences/Carbon-Neutral Institute of Future Technology, Fujian Normal University, Fuzhou 350007, China 350007, China
    Fujian Sanming Forest Ecosystem and National Field Scientific Observatory, and Fujian Sanming Forest Ecosystem and National Field Scientific Observatory, Sanming, Fujian 365002, China 365002, China
  • Received:2025-08-19 Revised:2026-02-10
  • Supported by:
    Supported by the National Natural Science Foundation of China(32271727); and the Natural Science Foundation of Fujian Province(2023I0010 and 2025R1101)

摘要: 林木高生长和径向生长是评估森林生产力与碳汇能力的关键指标,但二者对增温的响应可能存在差异。本文综述了当前林木高生长和径向生长的主流观测方法,比较了增温控制实验与野外观测中的检测手段,并系统梳理了增温影响高生长和径向生长的生态生理机制。总体而言,由于受限于高生长连续测量的技术瓶颈,现有研究更多关注径向生长对增温的响应,而高生长对增温响应的研究仍不足。在机制上,林木高生长主要受顶端分生组织的激素调控及光合产物分配策略影响;径向生长则更依赖形成层活动和非结构性碳储备,更易受到干旱胁迫和碳平衡的调控。增温主要通过影响林木的碳分配格局、水分利用效率、养分获取过程与物候等途径调控高生长和径向生长。其效应在不同纬度、树种功能性状与环境背景下表现出显著异质性。未来的研究应加强激光雷达等树高生长观测与自动径向生长仪等高分辨率检测技术的融合,重点关注增温与水分、养分等关键限制因子之间的交互作用及滞后效应,以提升对森林生产力的预测能力,并为增温背景下的适应性碳汇管理提供理论依据。

关键词: 增温, 高生长, 径向生长, 差异化影响, 碳分配

Abstract: Tree height and radial growth, key to forest productivity and carbon sink capacity, however, their responses to warming may differ. Here, we review the main observation methods for tree height and radial growth, compare detection techniques employed in both warming manipulation experiments and field observations, and systematically summarize the ecological and physiological mechanisms by which warming affects these growth processes. Overall, due to technical limitations in continuous tree height measurement, most studies have focused on radial growth responses to warming, while evidence on tree height growth remains limited. Mechanistically, tree height growth is primarily regulated by hormone signaling in apical meristem and photosynthate allocation strategies. In contrast, tree radial growth depends more on cambial activity and non-structural carbohydrate storage, making it more sensitive to drought stress and carbon balance regulation. Warming primarily affects tree height and radial growth by altering carbon allocation, water-use efficiency, nutrient uptake, and phenological timing. Its effects show substantial heterogeneity across latitudes, tree functional traits, and environmental conditions. The key priority for future research is to strengthen the integration of high-resolution monitoring technologies such as LiDAR for height growth and automated dendrometers for radial growth, while emphasizing the interactions and legacy effects between warming and key limiting factors such as water and nutrient availability. These approaches will improve predictive capacity for forest productivity and offer a theoretical foundation for adaptive carbon sink management under global warming.

Key words: Warming, Height growth, Radial growth, Divergent responses, Carbon allocation