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2
Effects of leaf age, nitrogen nutrition and photon flux density on the distribution of nitrogen among leaves of a vine (Ipomoea tricolor Cav.) grown horizontally to avoid mutual shading of leaves.叶龄、氮素营养和光通量密度对水平生长以避免叶片相互遮荫的藤本植物(三色牵牛)叶片间氮素分配的影响。
Oecologia. 1994 May;97(4):451-457. doi: 10.1007/BF00325881.
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Maximizing daily canopy photosynthesis with respect to the leaf nitrogen allocation pattern in the canopy.根据冠层中叶片氮分配模式最大化每日冠层光合作用。
Oecologia. 1987 Jul;72(4):520-526. doi: 10.1007/BF00378977.
4
Phenomics for photosynthesis, growth and reflectance in Arabidopsis thaliana reveals circadian and long-term fluctuations in heritability.拟南芥光合作用、生长和反射率的表型组学揭示了遗传力的昼夜和长期波动。
Plant Methods. 2016 Feb 15;12:14. doi: 10.1186/s13007-016-0113-y. eCollection 2016.
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A Journey Through a Leaf: Phenomics Analysis of Leaf Growth in Arabidopsis thaliana.一片叶子的历程:拟南芥叶片生长的表型组学分析
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Quantifying the dynamics of light tolerance in Arabidopsis plants during ontogenesis.量化拟南芥植物在个体发育过程中对光耐受性的动态变化。
Plant Cell Environ. 2015 Dec;38(12):2603-17. doi: 10.1111/pce.12574. Epub 2015 Jul 14.
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Quantifying spatial heterogeneity of chlorophyll fluorescence during plant growth and in response to water stress.量化植物生长过程中以及对水分胁迫响应时叶绿素荧光的空间异质性。
Plant Methods. 2015 Mar 26;11:23. doi: 10.1186/s13007-015-0067-5. eCollection 2015.
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Parameters of photosynthetic energy partitioning.光合能量分配参数
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叶片和植物年龄会影响光合作用性能和光保护能力。

Leaf and Plant Age Affects Photosynthetic Performance and Photoprotective Capacity.

机构信息

Biophysics of Photosynthesis/Energy, Faculty of Sciences, Department of Physics and Astronomy, VU Amsterdam, 1081 HV Amsterdam, The Netherlands

Institute of Informatics, University of Warsaw, 02-097 Warsaw, Poland.

出版信息

Plant Physiol. 2017 Dec;175(4):1634-1648. doi: 10.1104/pp.17.00904. Epub 2017 Oct 10.

DOI:10.1104/pp.17.00904
PMID:29018097
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC5717728/
Abstract

In this work, we studied the changes in high-light tolerance and photosynthetic activity in leaves of the Arabidopsis () rosette throughout the vegetative stage of growth. We implemented an image-analysis work flow to analyze the capacity of both the whole plant and individual leaves to cope with excess excitation energy by following the changes in absorbed light energy partitioning. The data show that leaf and plant age are both important factors influencing the fate of excitation energy. During the dark-to-light transition, the age of the plant affects mostly steady-state levels of photochemical and nonphotochemical quenching, leading to an increased photosynthetic performance of its leaves. The age of the leaf affects the induction kinetics of nonphotochemical quenching. These observations were confirmed using model selection procedures. We further investigated how different leaves on a rosette acclimate to high light and show that younger leaves are less prone to photoinhibition than older leaves. Our results stress that both plant and leaf age should be taken into consideration during the quantification of photosynthetic and photoprotective traits to produce repeatable and reliable results.

摘要

在这项工作中,我们研究了拟南芥(Arabidopsis)莲座叶在整个营养生长阶段高光耐受性和光合作用活性的变化。我们采用图像分析工作流程来分析整个植株和单个叶片通过吸收光能分配的变化来应对过量激发能的能力。数据表明,叶片和植株年龄都是影响激发能命运的重要因素。在由暗到明的转变过程中,植株的年龄主要影响光化学和非光化学猝灭的稳态水平,从而提高叶片的光合作用性能。叶片的年龄影响非光化学猝灭的诱导动力学。这些观察结果通过模型选择程序得到了证实。我们进一步研究了拟南芥莲座叶上的不同叶片如何适应高光,并表明较年轻的叶片比较老的叶片不易受到光抑制。我们的研究结果强调,在量化光合作用和光保护特性时,应同时考虑植株和叶片的年龄,以获得可重复和可靠的结果。