Light Environment and Photosynthetic Capacities of Leaves at Different Locations within Eggplant Canopies in a Greenhouse in Ontario, Canada

IF 1.5 3区 农林科学 Q2 HORTICULTURE Hortscience Pub Date : 2024-05-01 DOI:10.21273/hortsci17642-23
Daniel Terlizzese, J. Lanoue, Xiuming Hao, Youbin Zheng
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Abstract

To effectively manage crop production in a greenhouse, it is essential to understand the natural light environment and physiological responses of the plants to light. This study investigated the dynamics of photosynthetic photon flux densities (PPFD) and light quality within the canopies of greenhouse-grown eggplant (Solanum melongena) and the photosynthetic capacities of leaves at different locations within the canopies. The light environment was quantified at 0.2-m intervals within (intra-canopy) and adjacent to (extra-canopy) the crop canopy on both sunny and cloudy days within a commercial greenhouse located in Leamington, Ontario, Canada. Our results indicated a linear decline in extra-canopy PPFD on both sunny and cloudy days, but an exponential decrease in intra-canopy PPFD. The intra-canopy PPFD decreased by 91% and 76% between 0 m and 0.4 m from the canopy apex on sunny and cloudy days, respectively. The lower canopy (0.6–1.2 m) light spectrum consisted largely of far-red light, equal amounts of red light and green light, with a lower percentage of blue light. Parameters derived from leaf-level light response curves indicated that the light-saturated net carbon exchange rate, light saturation point, and light compensation point decreased as the distance from canopy apex increased, whereas quantum yield was unaffected. Thus, leaves in the lower canopy were less efficient at using high PPFD, but they displayed no deterioration of photosynthetic machinery. Based solely on photosynthetic capabilities, leaves between 0 and 1.0 m from the canopy apex should not be removed to decrease the total plant sink strength.
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加拿大安大略省温室中茄子篷内不同位置的光环境和叶片的光合能力
为了有效管理温室中的作物生产,了解自然光环境和植物对光的生理反应至关重要。本研究调查了温室栽培茄子(Solanum melongena)树冠内光合光通量密度(PPFD)和光质量的动态变化,以及树冠内不同位置叶片的光合能力。在加拿大安大略省利明顿的一个商业温室内,晴天和阴天都对作物冠层内(冠层内)和冠层外(冠层外)0.2 米间隔的光环境进行了量化。我们的研究结果表明,无论是晴天还是阴天,冠层外的 PPFD 都呈线性下降,而冠层内的 PPFD 则呈指数下降。在晴天和阴天,距树冠顶点 0 米和 0.4 米之间的树冠内 PPFD 分别下降了 91% 和 76%。冠层下部(0.6-1.2 米)的光谱主要由远红光、等量的红光和绿光组成,蓝光的比例较低。从叶面光反应曲线得出的参数表明,随着离冠层顶点距离的增加,光饱和净碳交换率、光饱和点和光补偿点都会降低,而量子产量则不受影响。因此,冠层下部的叶片利用高 PPFD 的效率较低,但它们的光合作用机制没有退化。仅从光合作用能力来看,距离树冠顶点 0 至 1.0 米之间的叶片不应被摘除,以降低植物的总汇强度。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Hortscience
Hortscience 农林科学-园艺
CiteScore
3.00
自引率
10.50%
发文量
224
审稿时长
3 months
期刊介绍: HortScience publishes horticultural information of interest to a broad array of horticulturists. Its goals are to apprise horticultural scientists and others interested in horticulture of scientific and industry developments and of significant research, education, or extension findings or methods.
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