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中国沙漠 ›› 2026, Vol. 46 ›› Issue (4): 89-97.DOI: 10.7522/j.issn.1000-694X.2026.00012

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干旱致死过程中沙冬青( Ammopiptanthus mongolicus )幼苗非结构性碳代谢动态

王方琳1,2(), 柴成武1,2(), 贺访印1, 胡小柯1, 何芳兰1,2, 赵彦坤2,3   

  1. 1.甘肃省治沙研究所,甘肃省荒漠化防治重点实验室,甘肃 兰州 730070
    2.甘肃省治沙研究所,甘肃河西走廊森林生态系统定位观测研究站,甘肃 兰州 730070
    3.武威市石羊河林业总场,甘肃 武威 733000
  • 收稿日期:2025-12-11 修回日期:2026-01-15 出版日期:2026-07-20 发布日期:2026-08-27
  • 通讯作者: 柴成武
  • 作者简介:王方琳(1985—),女,甘肃天水人,研究员,主要从事植物生理生态和荒漠化防治研究。E-mail: wangfanglin2008@163.com
  • 基金资助:
    国家自然科学基金项目(U23A2061);甘肃省第二批陇原青年英才项目;甘肃省重点研发项目(25YFFA073)

Non-structural carbon metabolism dynamics of Ammopiptanthus mongolicus seedlings during drought-induced lethality

Fanglin Wang1,2(), Chengwu Chai1,2(), Fangyin He1, Xiaoke Hu1, Fanglan He1,2, Yankun Zhao2,3   

  1. 1.Key Laboratory of Desertification Prevention and Control in Gansu Province /, Gansu Desert Control Research Institute,Lanzhou 730070,China
    2.Gansu Hexi Corridor Forest Ecosystem Research Station, Gansu Desert Control Research Institute,Lanzhou 730070,China
    3.Shiyanghe Forestry General Farm of Wuwei City,Wuwei 733000,Gansu,China
  • Received:2025-12-11 Revised:2026-01-15 Online:2026-07-20 Published:2026-08-27
  • Contact: Chengwu Chai

摘要:

非结构性碳水化合物(NSC)作为植物逆境响应的核心碳源,兼具渗透调节与提供代谢能量的双重功能。本研究以沙冬青幼苗为材料,模拟持续干旱胁迫,监测其生理过程及根、茎、叶NSC动态,并通过主成分分析解析NSC代谢与生理衰退的耦合关系。结果表明:干旱20~24 d时叶片相对含水量和光合速率趋近于0,光合功能丧失;根可溶性糖(RSS)持续升高,茎可溶性糖(SSS)先升后降,叶可溶性糖(LSS)后期骤降;淀粉在根中先保持稳定后降低,在茎中呈先升后降,在叶片中持续降低,降幅达73.80%。干旱加剧时,种内NSC分配由叶片主导(64%)转向死亡前根系主导(52%)。主成分分析表明,光合-水分变量与叶NSC呈正相关,而与根NSC呈负相关,体现了地上生长与地下生存的碳资源权衡。研究表明,沙冬青通过调控器官间NSC代谢与分配策略延缓干旱致死,而NSC代谢失衡与生理功能衰退的同步加剧可能是触发死亡的关键机制。

关键词: 沙冬青, 干旱致死, 光合生理, 非结构性碳水化合物, 代谢动态

Abstract:

Non-structural carbohydrates (NSC), as the core carbon source for plant stress responses, perform dual functions of osmotic regulation and metabolic energy supply. In this study, Ammopiptanthus mongolicus seedlings were used as experimental materials to simulate continuous drought stress. The physiological processes and dynamic changes of NSC in roots, stems, and leaves were monitored, and the coupling relationship between NSC metabolism and physiological decline was analyzed via principal component analysis (PCA). The results showed that: the relative water content (RWC) and photosynthetic rate of leaves approached 0 at 20-24 days of drought, indicating the loss of photosynthetic function; root soluble sugars (RSS) increased continuously, stem soluble sugars (SSS) increased first and then decreased, leaf soluble sugars (LSS) decreased sharply in the later stage; starch remained stable in the roots, initially increases and then decreases in the stems, and continuously declines in the leaves, with a reduction rate of up to 73.80%. With the intensification of drought, the intraspecific NSC allocation shifted from leaf-dominated (64%) to root-dominated (52%) before death. PCA revealed that photosynthetic-water variables were positively correlated with leaf NSC but negatively correlated with root NSC, reflecting the carbon resource trade-off of aboveground growth-underground survival. This study demonstrated that Ammopiptanthus mongolicus delays drought-induced mortality by regulating the metabolic and allocation strategies of NSC among organs, and the synchronous exacerbation of NSC metabolic imbalance and physiological function decline may be the key mechanism triggering death.

Key words: Ammopiptanthus mongolicus, drought-indu ced lethality, photosynthetic physiology, non-structural carbohydrates, metabolic dynamics

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