植物生态学报

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互花米草季节性萌发特征对纬度环境变化的响应

曾华华, 陈欣淙, 吴福佳, 张宜辉   

  1. 厦门大学环境与生态学院滨海湿地生态系统教育部重点实验室, 福建 厦门 361102, 福建 361102 中国
    福建师范大学地理科学学院, 福州 350117, 350117
  • 收稿日期:2025-12-19 修回日期:2026-03-04 接受日期:2026-03-26

Seasonal germination characteristics of Spartina alterniflora in response to latitudinal environmental gradients

ZENG Hua-Hua, CHEN Xin-Cong, WU Fu-Jia, ZHANG Yi-Hui   

  1. , Key Laboratory of the Ministry of Education for Coastal and Wetland Ecosystems, College of the Environment and Ecology, Xiamen University, Xiamen, Fujian 361102 361102, China
    , School of Geographical Sciences, Fujian Normal University, Fuzhou 350117, China 350117,
  • Received:2025-12-19 Revised:2026-03-04 Accepted:2026-03-26
  • Supported by:
    Supported by the National Natural Science Foundation of China(32530069); Supported by the National Natural Science Foundation of China(32025026)

摘要: 萌发时间决定了萌发后经历的环境条件,具有重要的适应性意义。植物种群沿环境梯度呈现出一定的萌发时间格局,且各种群萌发时间受到环境变化的影响。互花米草(Spartina alterniflora)自引进我国以来迅速扩张至温带、亚热带和热带等区域,在中、高纬度地区通常在次年春季萌发,但沿纬度种群经过对不同环境条件的适应,出现了萌发时间的分化。然而,很少有研究探讨互花米草沿纬度种群的季节性萌发特征对环境变化的响应。本研究沿互花米草的纬度分布范围,采集9个种群的种子,分别种植在3个不同气候带的同质园中,持续观测种子萌发日期,分析探讨互花米草沿纬度种群的季节性萌发特征对种植环境和种源地环境的响应。结果表明:(1)随着同质园纬度下降,冬季温度升高,互花米草由仅在次年春季萌发转变为在当年冬季和次年春季均能萌发。伴随冬季萌发率的上升(P < 0.05)和春季萌发率的降低(P < 0.05),冬季萌发占比显著增加(P < 0.05),但总萌发率持续降低(P < 0.05)。(2)各同质园中,随着种源地纬度下降,沿纬度不同种群的冬季萌发率不变,但春季萌发率降低(P < 0.001)。其中,在中、低纬度同质园中,冬季萌发占比和种源地纬度呈现显著负相关关系(P < 0.05)。(3)从种源地环境角度来看,随着各种群的种源地温度升高,各种群的总萌发率显著降低(P < 0.001),但冬季萌发占比显著增加(P < 0.001)。综上所述,种植环境温度升高和种源地温度升高均提高了当年冬季萌发的可能性,但降低了总萌发率,表明温度是影响互花米草沿纬度种群季节性萌发特征的重要因素。研究结果为预测气候变暖背景下互花米草沿纬度种群萌发策略的变化提供了科学依据,这对于预测互花米草种群的适应性和分布范围变化具有重要意义。

关键词: 萌发时间, 季节性, 纬度, 互花米草, 生活史

Abstract: Aims Germination timing determines the environmental conditions experienced after germination, holding significant adaptive significance. Plant populations can exhibit distinct patterns of germination timing along environmental gradients, and germination timing within populations responds to environmental change. Spartina alterniflora has rapidly expanded into temperate, subtropical, and tropical regions since it was introduced to China in 1979. At mid and high latitudes, it typically germinates in spring. However, populations along a latitudinal gradient have developed differentiated germination timing by adapting to local environmental conditions. Few studies have examined how seasonal germination characteristics vary among populations along the latitudinal gradient. Methods In this study, we collected seeds from nine populations along the latitudinal distribution range of S. alterniflora and sowed them in multiple common gardens across three different climate zones. Seed germination dates were continuously monitored to explore how seasonal germination characteristics responds to both the planting and seed source environmental conditions. Important findings (1) As the latitude of common gardens decreased, winter temperatures significantly increased. Consequently, the germination window of S. alterniflora expanded from exclusively spring to both winter (earlier) and spring. Accompanied by increased winter germination percentage (P < 0.05) and decreased spring germination percentage (P < 0.05), the proportion of winter-germinated significantly increased (P < 0.05), while the total germination percentage declined (P < 0.05). (2) Within each common garden, winter germination percentage did not change across populations along a latitudinal gradient; however, spring germination percentage decreased significantly with decreased latitude of origin (P < 0.001). Specifically, in the mid-latitude and low-latitude common gardens, the proportion of winter-germinated showed a significant negative correlation with the latitude of origin (P < 0.05). (3) As the temperature at sites of origin increased, the total germination percentage significantly decreased (P < 0.001), and the proportion of winter-germinated significantly increased (P < 0.001). Overall, both increased temperature of the planting environments and the source environments enhanced the likelihood of germinating in the current winter but reduced the total germination percentage, indicating that temperature is a key factor influencing the seasonal germination characteristics across latitudinal populations of S. alterniflora. These findings provide a scientific basis for predicting changes in the germination strategies of S. alterniflora along the latitudinal gradient under climate warming, which is crucial for forecasting shifts in the fitness and distribution range of S. alterniflora.

Key words: germination timing, seasonality, latitude, Spartina alterniflora, life history