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生态学杂志 ›› 2025, Vol. 44 ›› Issue (6): 1866-1873.doi: 10.13292/j.1000-4890.202506.028

• 研究论文 • 上一篇    下一篇

低温胁迫抑制桐花树幼苗光合作用的生理机制

陈思意,李军建,殷雅欣,单巧博,郑春芳*   

  1. (温州大学生命与环境科学学院, 浙江温州 325000)
  • 出版日期:2025-06-10 发布日期:2025-06-06

Physiological mechanism of low temperature stress inhibiting photosynthesis in Aegiceras corniculatum seedlings.

CHEN Siyi, LI Junjian, YIN Yaxin, SHAN Qiaobo, ZHENG Chunfang*   

  1. (College of Life and Environmental Science, Wenzhou University, Wenzhou 325000, Zhejiang, China).

  • Online:2025-06-10 Published:2025-06-06

摘要: 为研究不同低温胁迫对桐花树(Aegiceras corniculatum)幼苗光合作用的影响,以14个月大的桐花树幼苗为试验材料,分别进行4 d的不同低温胁迫(昼/夜17 ℃/12 ℃、12 ℃/7 ℃、7 ℃/2 ℃和5 ℃/-2 ℃)处理,研究了低温对桐花树幼苗叶片气体交换参数、抗氧化酶活性、过氧化氢和内源植物激素含量以及褪黑素合成途径等影响。结果表明,当温度在12 ℃(昼)/7 ℃(夜)以上时,桐花树幼苗净光合速率降低主要因为气孔限制,而当温度在7 ℃(昼)/2 ℃(夜)以下时,其净光合速率的下降主要因为气孔和非气孔限制。这主要体现于:严重低温胁迫不仅降低了叶片净光合速率、气孔导度以及超氧化物歧化酶和过氧化物酶活性、叶片植物激素含量等,而且也抑制了褪黑素合成的中间产物形成以及相关合成酶活性;同时,严重低温胁迫也会增加叶片胞间二氧化碳浓度、丙二醛以及过氧化氢含量。表明,严重低温胁迫对桐花树幼苗光合的抑制作用主要与内源褪黑素生物合成途径受阻、氧化稳态和植物激素失衡有关。


关键词: 低温胁迫, 桐花树, 光合作用, 抗氧化酶, 内源激素, 褪黑素

Abstract: We investigated the effects of low-temperature stresses on the photosynthesis of 14-month-old seedlings of Aegiceras corniculatum. These seedlings were subjected to different low-temperature stresses (day/night temperatures of 17 ℃/12 ℃, 12 ℃/7 ℃, 7 ℃/2 ℃, and 5 ℃/-2 ℃) for four days. We examined the impacts of low temperatures on gas exchange parameters, antioxidant enzyme activity, hydrogen peroxide, and endogenous phytohormone content in the leaves, as well as the melatonin synthesis pathway. Results showed that when the temperature exceeded 12 ℃ (day)/7 ℃ (night), the decline in the net photosynthetic rate was primarily attributed to stomatal limitation. However, when the temperature fell below 7 ℃ (day)/2 ℃ (night), the reduction in photosynthesis could be attributed to both stomatal and nonstomatal limitations. Severe low-temperature stress not only diminished net photosynthetic rate, stomatal conductance, activities of superoxide dismutase and peroxidase, and hormone contents in leaves but also impeded the formation of intermediate products in the melatonin synthesis pathway and the activities of related synthases. Concurrently, severe low-temperature stress elevated intercellular CO2 concentration and the contents of malonaldehyde and hydrogen peroxide in leaves. The findings suggest that the inhibition of severe low-temperature stress on the photosynthesis of A. corniculatum seedlings is primarily linked to the blockade of endogenous melatonin biosynthesis pathway, oxidative homeostasis, and the imbalance of plant hormones.


Key words: low temperature stress, Aegiceras corniculatum, photosynthesis, antioxidant enzyme, endogenous phytohormone, melatonin