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生态学杂志 ›› 2026, Vol. 45 ›› Issue (5): 1508-1516.doi: 10.13292/j.1000-4890.202605.024

• 研究报告 • 上一篇    下一篇

不同土壤水分下香樟幼苗生长生理响应与抗旱机制

黄榆婷1,杨源通2,朱洁怡1,苏立城1,罗志忠1,曾曙才1*   

  1. 1华南农业大学林学与风景园林学院, 广州 510642; 2东莞理工学院生态环境工程技术研发中心, 广东东莞 523808)

  • 出版日期:2026-05-10 发布日期:2026-05-07

Physiological responses and drought resistance mechanisms of Cinnamomum camphora seedlings under different soil moisture.

HUANG Yuting1, YANG Yuantong2, ZHU Jieyi1, SU Licheng1, LUO Zhizhong1, ZENG Shucai1*   

  1. (1College of Forestry and Landscape Architecture, South China Agricultural University, Guangzhou 510642, China; 2Eco-Environmental Engineering Technology Research and Development Center, Dongguan University of Technology, Dongguan 523808, Guangdong, China).

  • Online:2026-05-10 Published:2026-05-07

摘要: 本实验探索香樟(Cinnamomum camphora)根系形态重塑与抗氧化协同的干旱适应机制,为香樟育苗策略及节水林业提供理论依据。以半年生香樟幼苗为研究对象,通过盆栽实验模拟不同干旱处理,共设置4个水分水平:CK(对照,田间持水量的80%~85%)、LD(轻度干旱,田间持水量的65%~70%)、MD(中度干旱,田间持水量的50%~55%)、SD(重度干旱,田间持水量的35%~40%),分析不同处理下香樟幼苗的生长和生理响应。结果表明:轻度干旱(LD)促进香樟幼苗生长,其总生物量、根长、根表面积、根体积分别较对照(CK)增加51.15%、29.09%、57.18%、68.46%;而中度(MD)、重度(SD)干旱存在明显的抑制作用。香樟幼苗通过提高超氧化物歧化酶活性(SOD)以调节抗氧化系统,相较于CK,中、重度干旱(MD、SD)处理SOD活性分别显著增加了75.72%、76.85%(P<0.05)。重度(SD)干旱处理对香樟幼苗可溶性蛋白、可溶性糖和脯氨酸含量存在显著影响(P<0.05),其值分别较CK增加81.56%、45.64%、34.06%。表型可塑性特征表明,地茎增长量、POD、SOD和脯氨酸的可塑性指数最大;主成分分析表明,轻度干旱(LD)对叶绿素a、叶绿素b、MDA的影响较大;中度、重度干旱(MD、SD)对SOD、可溶性糖、脯氨酸的影响较大。中度(MD)和重度(SD)干旱下,香樟幼苗通过牺牲生长速率、根系形态重塑、调控抗氧化酶(SOD为主)生成、提高渗透调节(脯氨酸为主)等,全面提高自身抗干旱胁迫的适应力。香樟幼苗表现的“轻度干旱增益效应”,为苗木节水培育(推荐65%~70%田间持水量)及抗旱品种筛选提供关键指标(根系形态可塑性、SOD活性)。


关键词: 干旱, 根系形态, 抗氧化系统, 干旱增益

Abstract: We investigated the drought adaptation mechanisms associated with root morphological reshaping and antioxidant synergy in Cinnamomum camphora, to provide a theoretical foundation for optimizing the seedling nursery strategies and advancing water-saving forestry practices. We conducted a pot experiment with 6-month-old Cinnamomum camphora seedlings along a simulated drought stress gradient. There were four water treatments: CK (control, 80%-85% of field capacity), LD (light drought, 65%-70% of field capacity), MD (moderate drought, 50%-55% of field capacity), and SD (severe drought, 35%-40% of field capacity). The growth and physiological responses of seedlings were analyzed. The results showed that mild drought (LD) promoted seedling growth. Under LD, total biomass, root length, root surface area, and root volume increased by 51.15%, 29.09%, 57.18%, and 68.46%, respectively. In contrast, moderate (MD) and severe drought (SD) treatments exerted a significant inhibitory effect on seedling growth. The antioxidant system was modulated primarily through enhanced superoxide dismutase (SOD) activity. Specifically, under MD and SD treatments, SOD activity significantly increased by 75.72% and 76.85%, respectively (P<0.05). The SD treatment significantly elevated the contents of soluble protein, soluble sugar, and proline by 81.56%, 45.64%, and 34.06%, respectively (P<0.05). Analysis of phenotypic plasticity revealed that ground stem growth, peroxidase (POD) activity, SOD activity, and proline content exhibited the highest plasticity indices. Principal component analysis indicated that LD was more strongly associated with variations in chlorophyll a, chlorophyll b, and malondialdehyde (MDA) contents, whereas MD and SD were more closely linked to variations in SOD activity, soluble sugar, and proline contents. Under MD and SD conditions, C. camphora seedlings enhanced drought resistance through an integrated strategy, including reduced growth rate, root morphological reshaping, regulation of antioxidant enzyme synthesis (mainly SOD), and enhanced osmotic adjustment (primarily via proline accumulation). The beneficial effect of mild drought (LD) identified here provides key indicators for water-saving seedling cultivation, such as root morphological plasticity and SOD activity. A soil moisture level of 65%-70% of field capacity is recommended. These indicators are also valuable for screening drought-resistant C. camphora cultivars.


Key words: drought, root morphology, antioxidant system, drought gain effect