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本文引用的文献

1
Intramolecular, compound-specific, and bulk carbon isotope patterns in C and C plants: a review and synthesis.C₃和C₄植物中的分子内、化合物特异性和整体碳同位素模式:综述与综合分析
New Phytol. 2004 Feb;161(2):371-385. doi: 10.1111/j.1469-8137.2004.00970.x.
2
Theoretical considerations about carbon isotope distribution in glucose of C plants.关于C4植物葡萄糖中碳同位素分布的理论思考。
Funct Plant Biol. 2004 Oct;31(9):857-877. doi: 10.1071/FP04053.
3
Why are non-photosynthetic tissues generally C enriched compared with leaves in C plants? Review and synthesis of current hypotheses.为什么在C4植物中,与叶片相比,非光合组织通常富含碳?当前假说的综述与综合。
Funct Plant Biol. 2009 Mar;36(3):199-213. doi: 10.1071/FP08216.
4
Biochemical and physiological determinants of intramolecular isotope patterns in sucrose from C₃, C₄ and CAM plants accessed by isotopic ¹³C NMR spectrometry: a viewpoint.通过稳定同位素 ¹³C NMR 光谱法研究 C₃、C₄ 和 CAM 植物蔗糖中分子内同位素模式的生化和生理决定因素:观点。
Nat Prod Rep. 2012 Apr;29(4):476-86. doi: 10.1039/c2np00089j. Epub 2012 Feb 16.
5
The structure of sucrose synthase-1 from Arabidopsis thaliana and its functional implications.拟南芥蔗糖合酶 1 的结构及其功能意义。
J Biol Chem. 2011 Oct 14;286(41):36108-36118. doi: 10.1074/jbc.M111.275974. Epub 2011 Aug 24.
6
(12)C/(13)C fractionations in plant primary metabolism.(12)C/(13)C 分馏在植物初级代谢中的作用。
Trends Plant Sci. 2011 Sep;16(9):499-506. doi: 10.1016/j.tplants.2011.05.010. Epub 2011 Jun 24.
7
A 13C NMR spectrometric method for the determination of intramolecular δ13C values in fructose from plant sucrose samples.一种基于 13C NMR 光谱法测定植物蔗糖样品中果糖分子内 δ13C 值的方法。
New Phytol. 2011 Jul;191(2):579-588. doi: 10.1111/j.1469-8137.2011.03690.x. Epub 2011 Mar 9.
8
The thermodynamic properties of isotopic substances.同位素物质的热力学性质。
J Chem Soc. 1947 Apr:562-81. doi: 10.1039/jr9470000562.
9
Biosynthetic origin of the saw-toothed profile in delta(13)C and delta(2)H of n-alkanes and systematic isotopic differences between n-, iso- and anteiso-alkanes in leaf waxes of land plants.陆生植物叶蜡中 n-、异和 anteiso-烷烃的 δ13C 和 δ2H 呈锯齿状分布的生物合成起源和系统同位素差异。
Phytochemistry. 2010 Mar;71(4):388-403. doi: 10.1016/j.phytochem.2009.11.009. Epub 2010 Jan 6.
10
Accurate quantitative isotopic 13C NMR spectroscopy for the determination of the intramolecular distribution of 13C in glucose at natural abundance.用于测定天然丰度下葡萄糖中 13C 分子内分布的精确定量同位素 13C NMR 光谱法。
Anal Chem. 2009 Nov 1;81(21):8978-85. doi: 10.1021/ac901441g.

自养和异养 C3 植物组织中六碳糖的分子内 13C 模式。

Intramolecular 13C pattern in hexoses from autotrophic and heterotrophic C3 plant tissues.

机构信息

L'Université Nantes Angers Le Mans, Centre National de la Recherche Scientifique- University of Nantes Unité Mixte de Recherche 6230, F-44322 Nantes, France.

出版信息

Proc Natl Acad Sci U S A. 2012 Oct 30;109(44):18204-9. doi: 10.1073/pnas.1211149109. Epub 2012 Oct 16.

DOI:10.1073/pnas.1211149109
PMID:23074255
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3497804/
Abstract

The stable carbon isotope (13)C is used as a universal tracer in plant eco-physiology and studies of carbon exchange between vegetation and atmosphere. Photosynthesis fractionates against (13)CO(2) so that source sugars (photosynthates) are on average (13)C depleted by 20‰ compared with atmospheric CO(2). The carbon isotope distribution within sugars has been shown to be heterogeneous, with relatively (13)C-enriched and (13)C-depleted C-atom positions. The (13)C pattern within sugars is the cornerstone of (13)C distribution in plants, because all metabolites inherit the (13)C abundance in their specific precursor C-atom positions. However, the intramolecular isotope pattern in source leaf glucose and the isotope fractionation associated with key enzymes involved in sugar interconversions are currently unknown. To gain insight into these, we have analyzed the intramolecular isotope composition in source leaf transient starch, grain storage starch, and root storage sucrose and measured the site-specific isotope fractionation associated with the invertase (EC 3.2.1.26) and glucose isomerase (EC 5.3.1.5) reactions. When these data are integrated into a simple steady-state model of plant isotopic fluxes, the enzyme-dependent fractionations satisfactorily predict the observed intramolecular patterns. These results demonstrate that glucose and sucrose metabolism is the primary determinant of the (13)C abundance in source and sink tissue and is, therefore, of fundamental importance to the interpretation of plant isotopic signals.

摘要

稳定的碳同位素 (13)C 被广泛应用于植物生态生理学和植被与大气之间碳交换的研究。光合作用会使 (13)CO2 发生分馏,导致源糖(光合产物)与大气 CO2 相比平均(13)C 减少 20‰。已证明糖内的碳同位素分布存在不均匀性,具有相对(13)C 富集和(13)C 贫化的碳原子位置。糖内的(13)C 模式是植物内(13)C 分布的基础,因为所有代谢物都继承了其特定前体碳原子位置的(13)C 丰度。然而,源叶葡萄糖内的分子内同位素模式以及与糖转化相关的关键酶的同位素分馏目前尚不清楚。为了深入了解这些,我们分析了源叶暂存淀粉、谷物贮藏淀粉和根贮藏蔗糖内的分子内同位素组成,并测量了与转化酶(EC 3.2.1.26)和葡萄糖异构酶(EC 5.3.1.5)反应相关的特定位置同位素分馏。当将这些数据整合到植物同位素通量的简单稳态模型中时,酶依赖性分馏很好地预测了观察到的分子内模式。这些结果表明,葡萄糖和蔗糖代谢是源组织和汇组织中(13)C 丰度的主要决定因素,因此对植物同位素信号的解释具有根本重要性。