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生态学杂志 ›› 2026, Vol. 45 ›› Issue (5): 1444-1453.doi: 10.13292/j.1000-4890.202605.025

• ·克隆植物的适应策略与生态功能·(专栏组织专家:钱建强、雒文涛、武 晶) • 上一篇    下一篇

干旱影响外来与本地克隆植物形态和光合特性的跨代效应

陈昌凡1,蒋洁1,邱成刚1,田娇1,杨瀚竣1,王雪梅1,魏青2,陈劲松1*   

  1. 1四川师范大学生命科学学院, 成都 610101; 2兰州大学生命科学学院, 兰州 730000)
  • 出版日期:2026-05-10 发布日期:2026-05-07

Transgenerational effects of drought on morphological and photosynthetic traits between an invasive clonal plant and its congeneric native species.

CHEN Changfan1, JIANG Jie1, QIU Chenggang1, TIAN Jiao1, YANG Hanjun1, WANG Xuemei1, WEI Qing2, CHEN Jinsong1*   

  1. (1College of Life Sciences, Sichuan Normal University, Chengdu 610101, China; 2College of Life Sciences, Lanzhou University, Lanzhou 730000, China).

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

摘要: 跨代可塑性(或跨代效应)被认为可能促进外来入侵植物的扩散与定殖。然而,目前关于外来入侵克隆植物与本地克隆植物在跨代可塑性的差异仍缺乏系统性研究。在同质园实验中,将外来入侵植物南美蟛蜞菊(Wedelia trilobata)及其同属本地植物蟛蜞菊(Wedelia chinensis)的母本分株分别种植在正常水分和干旱胁迫条件下,10周后将后代分株统一移植到干旱胁迫条件下。通过测定后代的形态结构、光合生理参数及生物量分配策略,旨在探讨:(1)母本干旱胁迫是否通过跨代效应提高后代在干旱条件下的生长表现;(2)比较两物种在跨代可塑性上的差异。结果表明,南美蟛蜞菊和蟛蜞菊后代分株均表现明显的跨代效应,但在具体性状的响应幅度和调控范围存在明显差异。在母本经历干旱胁迫后,南美蟛蜞菊后代分株通过降低比叶面积、比根长和比根体积,提高根表面积、气孔导度(Gs)、光系统II最大光化学量子效率(Fv/Fm)、实际光化学效率(ΦPSⅡ)和光化学猝灭(qP),显著促进总生物量的积累。与之相比,母本经历干旱胁迫对蟛蜞菊后代分株根系形态和叶片光合性能的影响并未转化对总生物量积累的正贡献。综上,母本干旱胁迫可通过跨代效应提升两种植物后代对干旱胁迫的耐受能力;南美蟛蜞菊展现出更强的跨代可塑性,可能赋予其更高的环境适应能力与入侵潜力。


关键词: 干旱胁迫, 跨代效应, 克隆植物, 植物入侵, 形态学特性, 光合特性

Abstract: Transgenerational plasticity (or transgenerational effect) is believed to play a potential role in promoting the spread and successful establishment of invasive plant species. However, the differences in transgenerational plasticity between invasive and native clonal plants are less understood. In a common garden experiment, maternal ramets of the invasive species Wedelia trilobata and its native congener Wedelia chinensis were grown under either well-watered or drought-stressed conditions. After 10 weeks, offspring ramets from both treatments were transplanted into a uniform drought-stress environment. Morphological traits, photosynthetic parameters, and biomass allocation strategies of the offspring were measured to address two questions: (1) Does maternal drought stress enhance offspring performance under drought through transgenerational effects? (2) Are there differences in transgenerational plasticity between the two species? Our results showed that both species exhibited significant transgenerational effects, but with substantial differences in the response magnitude and regulatory scope of specific traits. Offspring of drought-stressed W. trilobata achieved higher total biomass accumulation by reducing specific leaf area, specific root length, and specific root volume, while increasing root surface area, stomatal conductance (Gs), maximum quantum yield of photosystem Ⅱ (Fv/Fm), actual photochemical efficiency (ΦPSⅡ), and photochemical quenching (qP). Although maternal drought stress altered root morphology and leaf photosynthetic performance in W. chinensis offspring, these changes did not translate into higher biomass production. This study revealed that maternal drought stress can confer increased drought tolerance to offspring via transgenerational plasticity in both Wedelia species. W. trilobata displayed stronger transgenerational plasticity, which may underpin its superior environmental adaptability and invasion potential.


Key words: drought stress, transgenerational effect, clonal plant, plant invasion, morphological trait, photosynthetic trait