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Low temperature and hardening effects on photosynthetic apparatus efficiency and survival of forage grass varieties

机译:低温和硬化对牧草品种光合装置效率和存活的影响

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摘要

Freezing tolerance is essential for perennial plants and ability to adapt to extreme temperature is crucial for their survival in many environments. Freezing tolerance of hardened and unhardened plants of Dactylis glomerata and Lolium perenne varieties was probed by their quantum photosynthetic efficiency using the chlorophyll fluorescence technique. Quantum yield of photosystem II (PSII) electron transport (Phi(PSII)), maximal (F-m') and steady-state (F-s) chlorophyll fluorescence yields of light-adapted samples were measured. Phi(PSII) depended on developmental phase, temperature and hardening process. A clear decline in PSII activity, especially after -10 degrees C application was observed. Plant hardening during emergence phase had a positive impact on PSII activity, especially after -5 degrees C application. After 72 h of -5 degrees C temperature treatment, hardened plants showed quicker recovery of their photosynthetic apparatus (0.527-0.697) as compared to unhardened ones (0.224-0.330). Stress temperature of 10 C caused irreversible changes of photosynthetic apparatus of hardened and unhardened plants independently of growth phases (0.003-0.014). Phi(PSII) and F-m' parameters were strongly correlated with shoots survival under stress. Our results suggest that perennial plants' hardening allows them to survive low temperatures due inter alia enhancing their photosynthetic machinery performance.
机译:耐寒性对于多年生植物至关重要,适应极端温度的能力对于它们在许多环境中的生存至关重要。利用叶绿素荧光技术,通过量子光合作用效率研究了小叶小球藻和黑麦草的硬化和未硬化植物的抗冻性。测量了光适应性样品的光系统II(PSII)电子传输(Phi(PSII)),最大(F-m')和稳态(F-s)叶绿素荧光产量的量子产率。 Phi(PSII)取决于显影阶段,温度和硬化过程。观察到PSII活性明显下降,尤其是在-10℃施用后。萌芽阶段的植物硬化对PSII活性有积极影响,尤其是在-5°C施用后。在-5摄氏度的温度下处理72小时后,与未硬化的植物(0.224-0.330)相比,硬化的植物显示出其光合装置恢复更快(0.527-0.697)。 10 C的应力温度导致硬化和未硬化植物的光合作用装置发生不可逆变化,而与生长期无关(0.003-0.014)。 Phi(PSII)和F-m'参数与胁迫下的枝条存活密切相关。我们的结果表明,多年生植物的硬化使它们能够在低温下生存,这尤其是由于增强了其光合机械性能。

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