首页> 美国卫生研究院文献>Scientific Reports >Ultraviolet-B Radiation (UV-B) Relieves Chilling-Light-Induced PSI Photoinhibition And Accelerates The Recovery Of CO2 Assimilation In Cucumber (Cucumis sativus L.) Leaves
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Ultraviolet-B Radiation (UV-B) Relieves Chilling-Light-Induced PSI Photoinhibition And Accelerates The Recovery Of CO2 Assimilation In Cucumber (Cucumis sativus L.) Leaves

机译:紫外线-B(UV-B)消除了冷光诱导的PSI光抑制并加速了黄瓜(Cucumis sativus L.)叶片中CO2同化的恢复。

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摘要

Ultraviolet-B radiation (UV-B) is generally considered to negatively impact the photosynthetic apparatus and plant growth. UV-B damages PSII but does not directly influence PSI. However, PSI and PSII successively drive photosynthetic electron transfer, therefore, the interaction between these systems is unavoidable. So we speculated that UV-B could indirectly affect PSI under chilling-light conditions. To test this hypothesis, the cucumber leaves were illuminated by UV-B prior or during the chilling-light treatment, and the leaves were then transferred to 25 °C and low-light conditions for recovery. The results showed that UV-B decreased the electron transfer to PSI by inactivating the oxygen-evolving complex (OEC), thereby protecting PSI from chilling-light-induced photoinhibition. This effect advantages the recoveries of PSI and CO2 assimilation after chilling-light stress, therefore should minimize the yield loss caused by chilling-light stress. Because sunlight consists of both UV-B and visible light, we suggest that UV-B-induced OEC inactivation is critical for chilling-light-induced PSI photoinhibition in field. Moreover, additional UV-B irradiation is an effective strategy to relieve PSI photoinhibition and yield loss in protected cultivation during winter. This study also demonstrates that minimizing the photoinhibition of PSI rather than that of PSII is essential for the chilling-light tolerance of the plant photosynthetic apparatus.
机译:通常认为紫外线B辐射(UV-B)会对光合作用和植物的生长产生负面影响。 UV-B会损坏PSII,但不会直接影响PSI。然而,PSI和PSII相继驱动光合电子转移,因此,这些系统之间的相互作用是不可避免的。因此,我们推测UV-B可以在寒冷的条件下间接影响PSI。为了验证该假设,在冷光处理之前或期间,用紫外线-B照射黄瓜叶片,然后将叶片转移至25°C和弱光条件下进行恢复。结果表明,UV-B通过使析氧复合物(OEC)失活而降低了向PSI的电子转移,从而保护了PSI免受冷光诱导的光抑制。这种效果有利于冷光胁迫后PSI和CO2同化的恢复,因此应使冷光胁迫引起的产量损失最小。由于阳光由UV-B和可见光组成,因此我们建议UV-B诱导的OEC失活对于冷光诱导的PSI光抑制在现场至关重要。此外,额外的UV-B辐射是缓解PSI光抑制和冬季保护性栽培中减产的有效策略。这项研究还表明,最小化PSI而不是PSII的光抑制对于植物光合作用设备的耐寒性至关重要。

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