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首页> 外文期刊>The Journal of Horticultural Science & Biotechnology >The influence of light intensity and leaf age on the photosynthetic capacity of leaves within a tomato canopy
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The influence of light intensity and leaf age on the photosynthetic capacity of leaves within a tomato canopy

机译:光照强度和叶龄对番茄冠层叶片光合能力的影响

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In dense crop stands, the decrease in leaf photosynthetic capacity (A(max)) is paralleled by a decrease in photosynthetically active photon flux density (PPFD) and an increase in leaf age. In greenhouse horticulture, assimilation lighting is traditionally applied from above the canopy. Recently a new lighting technique has been developed in which assimilation lighting is applied within the canopy: intracanopy lighting. This development raises the question whether the decrease in the A(max) of lower, thus older and shaded, leaves in a crop is solely due to the lower PPFD, or also partly due to ageing of these leaves. We investigated whether leaf ageing influenced changes in the A(max) of tomato leaves during their usual life-span during cultivation in commercial crop systems (i.e., up to 70 d). To uncouple leaf age from the PPFD, tomato plants were grown horizontally, so that the PPFD was similar for all leaves. To investigate the effect of PPFD during leaf development (PPFDLD), A(max)-leaf age profiles were determined for the leaves of plants grown under conditions with distinctly different natural patterns of PPFD (i.e., Winter, early Spring, and late Spring). In addition, in half of the plants used per experiment, all fully-developed leaves were shaded to 25% of the normal PPFD in the greenhouse using a neutral density filter. Photosynthetic capacity and chlorophyll contents were higher in late Spring than in Winter, but were hardly affected by leaf age. In early Spring, the A(max), and chlorophyll contents were higher in younger leaves than in older leaves. To a large extent, this was due to the differences in PPFDLD, and hardly due to leaf ageing. Shading fully-developed, mature leaves dramatically decreased their A(max) and chlorophyll contents within a few days. We conclude that, during the normal 70 d life-span of tomato leaves in commercial cultivation, the decrease in PPFD within the canopy, and not leaf-ageing, is the most important factor causing changes in A(max) with canopy depth.
机译:在茂密的农作物林中,叶片光合能力的下降(A(max))与光合有效光子通量密度(PPFD)的下降和叶龄的增加平行。在温室园艺中,传统上在树冠上方使用同化照明。最近,已经开发了一种新的照明技术,其中在树冠内应用了同化照明:树冠内照明。这种发展提出了一个问题,即农作物中较低,因此较老和阴影的叶片的A(max)下降是否仅是由于PPFD较低,还是部分由于这些叶片的老化。我们调查了在商业作物系统中耕种期间,叶片衰老是否影响番茄叶片在其通常寿命期间的A(max)变化(即长达70 d)。为了使叶龄与PPFD脱钩,番茄植株水平生长,因此所有叶片的PPFD都相似。为了研究PPFD在叶片发育过程中的作用(PPFDLD),确定了在PPFD自然模式明显不同的条件下(即冬季,早春和晚春)生长的植物叶片的A(max)-叶龄图。此外,在每个实验中使用的一半植物中,使用中性密度滤光片将所有完全发育的叶片遮盖到温室中正常PPFD的25%。春末的光合能力和叶绿素含量高于冬季,但几乎不受叶龄的影响。早春,年轻叶片的A(max)和叶绿素含量高于老叶片。在很大程度上,这是由于PPFDLD的差异,而不是由于叶片老化。在完全成熟的阴影下,成熟叶片在几天内会显着降低其A(max)和叶绿素含量。我们得出的结论是,在商业化种植的番茄叶片正常的70 d寿命期间,冠层内PPFD的下降(而不是叶龄)是引起冠层深度A(max)变化的最重要因素。

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