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气体交换、气孔行为和微量营养素分析揭示了番茄植株对单色光处理的动态响应和适应性。

Analysis of gas exchange, stomatal behaviour and micronutrients uncovers dynamic response and adaptation of tomato plants to monochromatic light treatments.

作者信息

O'Carrigan Andrew, Babla Mohammad, Wang Feifei, Liu Xiaohui, Mak Michelle, Thomas Richard, Bellotti Bill, Chen Zhong-Hua

机构信息

School of Science and Health, University of Western Sydney, Penrith, 2751, NSW, Australia.

School of Science and Health, University of Western Sydney, Penrith, 2751, NSW, Australia; School of Agricultural Science, University of Tasmania, Hobart, TAS, 7001, Australia.

出版信息

Plant Physiol Biochem. 2014 Sep;82:105-15. doi: 10.1016/j.plaphy.2014.05.012. Epub 2014 Jun 3.

Abstract

Light spectrum affects the yield and quality of greenhouse tomato, especially over a prolonged period of monochromatic light treatments. Physiological and chemical analysis was employed to investigate the influence of light spectral (blue, green and red) changes on growth, photosynthesis, stomatal behaviour, leaf pigment, and micronutrient levels. We found that plants are less affected under blue light treatment, which was evident by the maintenance of higher A, gs, Tr, and stomatal parameters and significantly lower VPD and Tleaf as compared to those plants grown in green and red light treatments. Green and red light treatments led to significantly larger increase in the accumulation of Fe, B, Zn, and Cu than blue light. Moreover, guard cell length, width, and volume all showed highly significant positive correlations to gs, Tr and negative links to VPD. There was negative impact of monochromatic lights-induced accumulation of Mn, Cu, and Zn on photosynthesis, leaf pigments and plant growth. Furthermore, most of the light-induced significant changes of the physiological traits were partially recovered at the end of experiment. A high degree of morphological and physiological plasticity to blue, green and red light treatments suggested that tomato plants may have developed mechanisms to adapt to the light treatments. Thus, understanding the optimization of light spectrum for photosynthesis and growth is one of the key components for greenhouse tomato production.

摘要

光谱会影响温室番茄的产量和品质,尤其是在长时间单色光处理的情况下。采用生理和化学分析方法,研究了光谱(蓝光、绿光和红光)变化对生长、光合作用、气孔行为、叶片色素和微量营养素水平的影响。我们发现,蓝光处理下植物受影响较小,这表现为与绿光和红光处理下生长的植物相比,蓝光处理下的植物能维持较高的光合速率(A)、气孔导度(gs)、蒸腾速率(Tr)和气孔参数,且叶片蒸汽压亏缺(VPD)和叶片温度(Tleaf)显著更低。绿光和红光处理导致铁(Fe)、硼(B)、锌(Zn)和铜(Cu)的积累量比蓝光处理下显著增加。此外,保卫细胞的长度、宽度和体积与气孔导度(gs)、蒸腾速率(Tr)均呈现高度显著的正相关,与叶片蒸汽压亏缺(VPD)呈负相关。单色光诱导的锰(Mn)、铜(Cu)和锌(Zn)积累对光合作用、叶片色素和植物生长有负面影响。此外,大多数光诱导的生理性状显著变化在实验结束时部分得到恢复。番茄植株对蓝光、绿光和红光处理具有高度的形态和生理可塑性,这表明番茄植株可能已经形成了适应光处理的机制。因此,了解光合和生长的光谱优化是温室番茄生产的关键要素之一。

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