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本文引用的文献

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The evolution of C photosynthesis.C4光合作用的进化。
New Phytol. 2004 Feb;161(2):341-370. doi: 10.1111/j.1469-8137.2004.00974.x.
2
Oxygen sensitivity of photosynthesis and photorespiration in different photosynthetic types in the genus Flaveria.黄顶菊属不同光合类型中光合作用和光呼吸作用的氧敏感性
Planta. 1996 Apr;198(4):563-571. doi: 10.1007/BF00262643. Epub 2017 Mar 18.
3
Role of the xanthophyll cycle in photoprotection elucidated by measurements of light-induced absorbance changes, fluorescence and photosynthesis in leaves of Hedera canariensis.通过测量光诱导吸收变化、荧光和光合作用,阐明了山茶花叶片中叶黄质循环在光保护中的作用。
Photosynth Res. 1990 Sep;25(3):173-85. doi: 10.1007/BF00033159.
4
The relationship between contents of photosynthetic metabolites and the rate of photosynthetic carbon assimilation in leaves of Amaranthus edulis L.苋菜叶片光合碳同化率与光合代谢物含量的关系。
Planta. 1988 May;174(2):253-62. doi: 10.1007/BF00394779.
5
The dicotyledonous NAD malic enzyme C4 plant Cleome gynandra displays age-dependent plasticity of C4 decarboxylation biochemistry.双子叶植物 NAD 苹果酸酶 C4 植物Cleome gynandra 表现出 C4 脱羧生化的年龄依赖性可塑性。
Plant Biol (Stuttg). 2012 Jul;14(4):621-9. doi: 10.1111/j.1438-8677.2011.00539.x. Epub 2012 Jan 30.
6
Evolution of C4 photosynthesis in the genus Flaveria: how many and which genes does it take to make C4?类芦属植物 C4 光合作用的进化:制造 C4 需要多少个和哪些基因?
Plant Cell. 2011 Jun;23(6):2087-105. doi: 10.1105/tpc.111.086264. Epub 2011 Jun 24.
7
Connecting the plastid: transporters of the plastid envelope and their role in linking plastidial with cytosolic metabolism.连接质体:质体膜的转运蛋白及其在连接质体与胞质代谢中的作用。
Annu Rev Plant Biol. 2011;62:53-77. doi: 10.1146/annurev-arplant-042110-103903.
8
Evolution of the C(4) photosynthetic mechanism: are there really three C(4) acid decarboxylation types?C(4) 光合作用机制的演化:真的存在三种 C(4) 酸脱羧类型吗?
J Exp Bot. 2011 May;62(9):3103-8. doi: 10.1093/jxb/err080. Epub 2011 Apr 21.
9
The chloroplastic 2-oxoglutarate/malate transporter has dual function as the malate valve and in carbon/nitrogen metabolism.质体 2-氧戊二酸/苹果酸转运蛋白具有作为苹果酸阀的双重功能,以及在碳/氮代谢中的作用。
Plant J. 2011 Jan;65(1):15-26. doi: 10.1111/j.1365-313X.2010.04397.x. Epub 2010 Nov 15.
10
Structural and metabolic transitions of C4 leaf development and differentiation defined by microscopy and quantitative proteomics in maize.玉米叶片 C4 发育和分化的结构和代谢转变通过显微镜和定量蛋白质组学定义。
Plant Cell. 2010 Nov;22(11):3509-42. doi: 10.1105/tpc.110.079764. Epub 2010 Nov 16.

玉米叶片发育梯度的系统分析重新定义了当前的 C4 模型,并为调控提供了候选基因。

Systems analysis of a maize leaf developmental gradient redefines the current C4 model and provides candidates for regulation.

机构信息

Plant Biochemistry, Heinrich Heine University Düsseldorf, Duesseldorf, Germany.

出版信息

Plant Cell. 2011 Dec;23(12):4208-20. doi: 10.1105/tpc.111.090324. Epub 2011 Dec 20.

DOI:10.1105/tpc.111.090324
PMID:22186372
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3269860/
Abstract

We systematically analyzed a developmental gradient of the third maize (Zea mays) leaf from the point of emergence into the light to the tip in 10 continuous leaf slices to study organ development and physiological and biochemical functions. Transcriptome analysis, oxygen sensitivity of photosynthesis, and photosynthetic rate measurements showed that the maize leaf undergoes a sink-to-source transition without an intermediate phase of C(3) photosynthesis or operation of a photorespiratory carbon pump. Metabolome and transcriptome analysis, chlorophyll and protein measurements, as well as dry weight determination, showed continuous gradients for all analyzed items. The absence of binary on-off switches and regulons pointed to a morphogradient along the leaf as the determining factor of developmental stage. Analysis of transcription factors for differential expression along the leaf gradient defined a list of putative regulators orchestrating the sink-to-source transition and establishment of C(4) photosynthesis. Finally, transcriptome and metabolome analysis, as well as enzyme activity measurements, and absolute quantification of selected metabolites revised the current model of maize C(4) photosynthesis. All data sets are included within the publication to serve as a resource for maize leaf systems biology.

摘要

我们系统地分析了从光中出现的第三片玉米(Zea mays)叶的发育梯度,从点到叶尖,在 10 个连续的叶片中进行研究,以研究器官发育和生理生化功能。转录组分析、光合作用的氧气敏感性和光合速率测量表明,玉米叶经历了从汇到源的转变,没有 C(3)光合作用或光呼吸碳泵的中间阶段。代谢组和转录组分析、叶绿素和蛋白质测量以及干重测定表明,所有分析项目都存在连续梯度。不存在二元开/关开关和调控因子表明,形态梯度是决定发育阶段的因素。沿叶梯度差异表达的转录因子分析定义了一组假定的调节剂,它们协调从汇到源的转变和 C(4)光合作用的建立。最后,转录组和代谢组分析以及酶活性测量和选定代谢物的绝对定量修正了玉米 C(4)光合作用的现行模型。所有数据集都包含在出版物中,作为玉米叶片系统生物学的资源。