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生态学杂志 ›› 2026, Vol. 45 ›› Issue (9): 2853-2859.doi: 10.13292/j.1000-4890.202609.028

• ·红树林湿地生态学专栏·(专栏组织专家:曹文志、王文卿、宋长春) • 上一篇    下一篇

不同迁地修复地区濒危红树植物红榄李叶片结构解剖与生态适应性

洪文君,曾德华,王炳宇,黄永平,孙令俊,徐金铎*   

  1. (三亚市林业科学研究院, 海南三亚 572000)

  • 出版日期:2026-09-10 发布日期:2026-09-07

Leaf anatomical structure and ecological adaptability of endangered mangrove Lumnitzera littorea in different ex-situ restoration areas.

HONG Wenjun, ZENG Dehua, WANG Bingyu, HUANG Yongping, SUN Lingjun, XU Jinduo*   

  1. (Sanya Academy of Forestry, Sanya 572000, Hainan, China).
  • Online:2026-09-10 Published:2026-09-07

摘要: 濒危红树植物红榄李(Lumnitzera littorea)为国家一级保护植物,其叶片结构解剖特征与环境适应性的关联尚不清楚。本研究选取海南海口市东寨港国家级自然保护区、陵水县新村港和陵水县赤田村3个迁地修复区的红榄李为对象,测定其细胞组织水平叶片厚度(LT)、上表皮角质层厚度(CTUE)、下表皮角质层厚度(CTLE)、上表皮厚度(TUE)等9个植物功能性状,分析其与土壤因子的关系,揭示该物种对盐渍环境适应性的机制。3个区红榄李的叶片结构存在相似性,上下表皮细胞排列紧密,表皮细胞外均分布着角质层、内侧分布着多层栅栏组织和海绵组织,但它们叶片结构的数量特征存在差异。新村港样地红榄李叶片厚度(1472.78 μm)、上下角质层厚度(3.83~8.12 μm)、栅栏组织厚度(228.79 μm)和海绵组织层厚度(1271.63 μm)显著高于东寨港和赤田村样地,而栅/海比值显著低于东寨港和赤田村样地;叶片结构紧密度以赤田村样地最高(0.28),叶片结构疏松度以新村港样地最高(0.84)。PCA结果表明,东寨港样地的叶片结构主要影响环境因子为土壤全磷含量;新村港样地的叶片结构主要影响环境因子为土壤微生物生物量碳和氮,赤田村样地的叶片结构主要影响因子为土壤有机碳和全钾含量,反映了红榄李叶片结构特征为适应不同生境的权衡关系。


关键词: 红榄李, 叶片结构, 解剖结构, 生态适应, 迁地修复

Abstract: The relationship between leaf anatomical characteristics and environmental adaptability in the endangered mangrove Lumnitzera littorea, a first-class nationally protected plant in China, remains poorly understood. In this study, we collected L. littorea leaf samples from three restoration sites: Dongzhaigang National Nature Reserve in Haikou, Xincun Port in Lingshui County, and Chitian Village in Lingshui County, Hainan Province. We measured nine plant functional traits at the cellular and tissue levels, including leaf thickness (LT), cuticle thickness of upper epidermis (CTUE), cuticle thickness of lower epidermis (CTLE), and thickness of upper epidermis (TUE). By analyzing functional traits correlations with soil factors, we elucidated the mechanisms underlying the species’ adaptation to saline environments. The results showed that leaf structure of L. littorea from the three sites was similar. Specifically, the upper and lower epidermal cells were closely arranged, with the cuticles distributed outside the epidermal cells and the palisade and spongy tissues distributed inside the epidermal cells. However, there were differences in the quantitative characteristics of leaf structure among the three sites. The leaf thickness (1472.78 μm), upper and lower cuticle thickness (3.83-8.12 μm), palisade tissue thickness (228.79 μm), and spongy tissue thickness (1271.63 μm) in Xincun Port were significantly higher than those of other two sites, while the ratio of palisade tissue to spongy tissue was significantly lower than that of Dongzhaigang and Chitian Village. The compactness of leaf structure was the highest in Chitian Village (0.28), and the porosity of leaf structure was the highest in Xincun Port (0.84). Results of the principal component analysis (PCA) revealed that soil total phosphorus was the primary factor influencing leaf structure in Dongzhaigang, soil microbial biomass carbon and nitrogen were the dominant factors in Xincun Port, while soil organic carbon and total potassium constituted the major influencing factors in Chitian Village. These results demonstrate habitat-specific trade-offs in leaf structural characteristics of L. littorea for adapting to environmental variations.

Key words: Lumnitzera littorea, leaf structure, anatomical structure, ecological adaptation, ex-situ restoration