欢迎访问林业科学,今天是

林业科学 ›› 2026, Vol. 62 ›› Issue (9): 165-176.doi: 10.11707/j.1001-7488.LYKX20260008

• 研究论文 • 上一篇    

持续干旱时间对黄藤幼苗功能性状的影响

徐瑞晶1,王艺1,黄川腾2,蔡春菊1,范少辉3,刘广路3,*()   

  1. 1. 国际竹藤中心三亚研究基地 三亚 572000
    2. 海南省林业科学研究院(海南省红树林研究院) 海口 571100
    3. 国际竹藤中心 北京 100102
  • 收稿日期:2026-01-06 修回日期:2026-07-05 出版日期:2026-09-10 发布日期:2026-09-16
  • 通讯作者: 刘广路 E-mail:liuguanglu@icbr.ac.cn
  • 基金资助:
    国际竹藤中心三亚研究基地基本科研业务费(1630032025004)。

Effects of Drought Durations on the Functional Traits of Daemonorops jenkinsiana Seedlings

Ruijing Xu1,Yi Wang1,Chuanteng Huang2,Chunju Cai1,Shaohui Fan3,Guanglu Liu3,*()   

  1. 1. International Center for Bamboo and Rattan Sanya Research Base Sanya 572000
    2. Hainan Academy of Forestry (Hainan Academy of Mangrove) Haikou 571100
    3. International Center for Bamboo and Rattan Beijing 100102
  • Received:2026-01-06 Revised:2026-07-05 Online:2026-09-10 Published:2026-09-16
  • Contact: Guanglu Liu E-mail:liuguanglu@icbr.ac.cn

摘要:

目的: 探究连续干旱对黄藤幼苗功能性状及其性状网络的影响,阐明黄藤干旱适应机理,为黄藤资源保护和利用提供科学依据。方法: 对3年生黄藤盆栽苗进行连续干旱试验,根据土壤相对湿度(相对于田间持水量)和生长状况划分为对照(非干旱)、轻度干旱、中度干旱、重度干旱4种处理,每个胁迫时间后测定黄藤叶片气体交换、叶绿素荧光、叶片抗性生理物质、叶片形态、根叶非结构碳水化合物、根叶片解剖和生物量等47项功能性状。结果: 1) 黄藤幼苗功能性状对干旱的响应具有时序性,随着干旱加剧,功能性状类型的响应顺序为光合生理性状、生化性状、形态解剖性状和生物量性状。2) 土壤水分通过光合生理性状和生化性状路径间接促进生物量积累,二者共同主导黄藤幼苗生物量形成,但器官形态与解剖性状对生物量没有显著影响。3) 与非干旱比,干旱处理下的黄藤模块度和平均路径长度增加,但边密度降低;轻度和中度干旱处理下的网络直径和平均聚类系数增加;重度干旱处理下的网络直径和平均聚类系数变化不大。4) 无论是干旱还是非干旱处理,光合生理性状的网络度均较高,始终是网络的中心性状。超氧化物歧化酶活性的介数在重度干旱前均较大,说明是网络中连接不同性状模块的关键性状。暗适应下最大荧光的紧密度在3个持续干旱时间均较大,且在重度干旱时最大(0.46)。结论: 黄藤抗旱策略随干旱程度动态转变。非干旱与轻度干旱以光合优化和生物量积累为主;中度干旱转向生理调节与渗透保护;重度干旱条件下,植株以保护光合系统结构完整性为核心目标,资源优先向维持光系统功能分配。维持光系统Ⅱ(PSⅡ)功能稳定是黄藤应对不同干旱程度的共同策略。干旱胁迫时根叶性状跨模块整合,体现了跨组织、跨层次的系统调控,光合生理性状始终是性状网络的核心性状,叶绿素荧光性状(如Fm)在重度干旱下成为关键性状,超氧化物歧化酶活性在轻至中度干旱期间是连接不同性状模块的关键节点,但在重度干旱下其调控性状网络能力丧失。

关键词: 黄藤, 功能性状, 性状网络, 干旱胁迫, 适应策略

Abstract:

Objective: This study aims to investigate the effects of continuous drought on the functional traits and trait networks of Daemonorops jenkinsiana seedlings, and elucidate the underlying adaptive mechanisms to drought stress, so as to provide a scientific basis for the conservation and utilization of this rattan resource. Method: A continuous drought experiment was conducted on 3-year-old potted D. jenkinsiana seedlings. Based on soil relative humidity (relative to field capacity) and plant growth status, four treatments were established: control (non-drought), light drought, medium drought, and severe drought. Upon reaching each stress level, a total of 47 functional traits were measured, including leaf gas exchange, chlorophyll fluorescence, leaf resistance-related physiological substances, leaf morphology, non-structural carbohydrates in roots and leaves, root and leaf anatomy, and biomass. Result: 1) The functional traits of D. jenkinsiana seedlings in response to drought exhibited a temporal sequence. As drought intensified, the order of trait type response was: photosynthetic physiological traits, followed by biochemical traits, morphological and anatomical traits, and finally biomass traits. 2) Soil moisture indirectly promoted biomass accumulation through the pathways of photosynthetic physiological traits and biochemical traits, with both jointly dominating formation of biomass in D. jenkinsiana seedlings. In contrast, organ morphological and anatomical traits had no significant effect on biomass. 3) Compared with non-drought conditions, the modularity and average path length of D. jenkinsiana increased under drought stress, whereas edge density decreased. Under light and medium drought, network diameter and average clustering coefficient increased. However, under severe drought, network diameter and average clustering coefficient showed little change. 4) Regardless of drought or non-drought conditions, photosynthetic physiological traits exhibited high network degree and consistently served as the central traits of the network. The betweenness centrality of superoxide dismutase (SOD) activity remained relatively high before severe drought, indicating that it was a key trait connecting different trait modules within the network. The closeness centrality of maximum fluorescence under dark adaptation (Fm) was relatively high across all three continuous drought durations, reaching its maximum value (0.46) under severe drought. Conclusion: The drought resistance strategy of D. jenkinsiana dynamically shifts with drought severity. Under non-drought and light drought conditions, the strategy is characterized by photosynthetic optimization and biomass accumulation. Under medium drought, it transitions toward physiological regulation and osmotic protection. Under severe drought, the plant prioritizes the protection of the structural integrity of the photosynthetic apparatus, with resources preferentially allocated to maintaining photosystem function. The common strategy for D. jenkinsiana to cope with different degrees of drought is to maintain the stability of photosystem Ⅱ (PSⅡ) function. Under drought stress, root and leaf traits undergo cross-module integration, reflecting systemic regulation across tissues and levels. Photosynthetic physiological traits consistently remain the core traits of the trait network. Chlorophyll fluorescence traits (e.g., Fm) become key traits under severe drought. SOD activity serves as a key node connecting different trait modules under light to medium drought, but its capacity to regulate the trait network is lost under severe drought.

Key words: Daemonorops jenkinsiana, functional traits, trait network, drought stress, adaptive strategies

中图分类号: