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Low-Temperature Effects on Photosynthesis and Correlation with Freezing Tolerance in Spring and Winter Cultivars of Wheat and Rye.

机译:低温对小麦和黑麦品种光合作用的影响及其与耐寒性的关系。

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摘要

Winter cultivars of rye (Secale cereale L., cv Musketeer) and wheat (Triticum aestivum L. cvs Kharkov and Monopol), but not a spring cultivar of wheat (Glenlea), grown at cold-hardening temperatures showed, at high irradiances, a higher proportion of oxidized to reduced primary, stable quinone receptor (QA) than did the same cultivars grown under nonhardening conditions. In addition, there was a positive correlation between the effects of low-growth temperature on this increased proportion of oxidized QA, and a concomitant increase in the capacity for photosynthesis, and LT50, the temperature at which 50% of the seedlings are killed, in cultivars showing different freezing tolerances. This suggests that low-temperature modulation of the photosynthetic apparatus may be an important factor during the induction of freezing resistance in cereals. Finally, the control of photosystem II photochemistry by nonphotochemical quenching of excitation energy was identical for nonhardened and cold-hardened winter rye. However, examination of measuring temperature effects per se revealed that, irrespective of growth temperature, nonphotochemical quenching exerted a stronger control on photosystem II photochemistry at 10[deg] C rather than at 20[deg] C.
机译:黑麦(Secale graine L.,cv Musketeer)和小麦(Triticum aestivum L. cvs Kharkov和Monopol)的冬季品种,而不是在冷硬化温度下生长的春季小麦(Glenlea)品种,在高辐照度下显示出与在非硬化条件下生长的相同品种相比,氧化成还原的一级稳定醌受体(QA)的比例更高。此外,低生长温度对这种增加的氧化QA比例的影响与光合作用能力的同时增加之间存在正相关关系,而LT50是50%幼苗被杀死的温度。品种显示出不同的耐寒性。这表明光合装置的低温调节可能是诱导谷物抗冻性的重要因素。最后,对于未硬化和冷硬化的黑麦,通过激发能的非光化学猝灭对光系统II光化学的控制是相同的。然而,对温度效应本身的测量检查表明,与生长温度无关,非光化学猝灭在10℃而不是20℃下对光系统II光化学产生了更强的控制。

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