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Estimating photosynthetically active radiation distribution in maize canopies by a three-dimensional incident radiation model.利用三维入射辐射模型估算玉米冠层光合有效辐射分布
Funct Plant Biol. 2008 Dec;35(10):867-875. doi: 10.1071/FP08054.
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Optimal crop canopy architecture to maximise canopy photosynthetic CO uptake under elevated CO - a theoretical study using a mechanistic model of canopy photosynthesis.在二氧化碳浓度升高条件下使作物冠层光合二氧化碳吸收量最大化的最优作物冠层结构——一项使用冠层光合作用机理模型的理论研究
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Rapid stomatal response to fluctuating light: an under-explored mechanism to improve drought tolerance in rice.气孔对波动光照的快速响应:一种未被充分探索的提高水稻耐旱性的机制。
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Elevated CO2 increases photosynthesis in fluctuating irradiance regardless of photosynthetic induction state.升高的 CO2 增加了波动光照下的光合作用,而与光合作用诱导状态无关。
J Exp Bot. 2017 Nov 28;68(20):5629-5640. doi: 10.1093/jxb/erx357.
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Photosynthetic responses to light variation in rainforest species : II. Carbon gain and photosynthetic efficiency during lightflecks.雨林物种对光照变化的光合响应:II. 光斑期间的碳同化与光合效率
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波动光照对作物表现的影响。

The Impacts of Fluctuating Light on Crop Performance.

机构信息

Global Change and Photosynthesis Research Unit, Agricultural Research Service, United States Department of Agriculture, Urbana, Illinois 61801.

Carl R. Woese Institute for Genomic Biology, University of Illinois, Urbana, Illinois 61801.

出版信息

Plant Physiol. 2018 Feb;176(2):990-1003. doi: 10.1104/pp.17.01234. Epub 2017 Nov 30.

DOI:10.1104/pp.17.01234
PMID:29192028
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC5813574/
Abstract

Rapidly changing light conditions can reduce carbon gain and productivity in field crops because photosynthetic responses to light fluctuations are not instantaneous. Plant responses to fluctuating light occur across levels of organizational complexity from entire canopies to the biochemistry of a single reaction and across orders of magnitude of time. Although light availability and variation at the top of the canopy are largely dependent on the solar angle and degree of cloudiness, lower crop canopies rely more heavily on light in the form of sunflecks, the quantity of which depends mostly on canopy structure but also may be affected by wind. The ability of leaf photosynthesis to respond rapidly to these variations in light intensity is restricted by the relatively slow opening/closing of stomata, activation/deactivation of C cycle enzymes, and up-regulation/down-regulation of photoprotective processes. The metabolic complexity of C photosynthesis creates the apparently contradictory possibilities that C photosynthesis may be both more and less resilient than C to dynamic light regimes, depending on the frequency at which these light fluctuations occur. We review the current understanding of the underlying mechanisms of these limitations to photosynthesis in fluctuating light that have shown promise in improving the response times of photosynthesis-related processes to changes in light intensity.

摘要

快速变化的光照条件会降低田间作物的碳增益和生产力,因为植物对光波动的光合响应不是瞬间发生的。植物对波动光的反应发生在组织复杂性的各个层次上,从整个冠层到单个反应的生物化学,以及跨越时间的多个数量级。尽管冠层顶部的可用光和变化在很大程度上取决于太阳角度和云层的密集程度,但较低的作物冠层更依赖于阳光斑的形式,其数量主要取决于冠层结构,但也可能受到风的影响。叶片光合作用快速响应这些光照强度变化的能力受到气孔相对缓慢的开合、C 循环酶的激活/失活以及光保护过程的上调/下调的限制。C 光合作用的代谢复杂性使得 C 光合作用在动态光照条件下的弹性可能比 C 光合作用更强或更弱,这取决于这些光波动发生的频率。我们回顾了目前对波动光下光合作用这些限制的潜在机制的理解,这些机制在提高光合作用相关过程对光强度变化的响应时间方面显示出了一定的前景。