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通过¹³C同位素标记和H/D同位素效应揭示的对叶呼吸通量组学突出了光照叶片中三羧酸“循环”的非循环性质。

In folio respiratory fluxomics revealed by 13C isotopic labeling and H/D isotope effects highlight the noncyclic nature of the tricarboxylic acid "cycle" in illuminated leaves.

作者信息

Tcherkez Guillaume, Mahé Aline, Gauthier Paul, Mauve Caroline, Gout Elizabeth, Bligny Richard, Cornic Gabriel, Hodges Michael

机构信息

Institut de Biotechnologie des Plantes, Plateforme Métabolisme-Métabolome IFR87, Bâtiment 630, Université Paris-Sud 11, 91405 Orsay cedex, France.

出版信息

Plant Physiol. 2009 Oct;151(2):620-30. doi: 10.1104/pp.109.142976. Epub 2009 Aug 12.

Abstract

While the possible importance of the tricarboxylic acid (TCA) cycle reactions for leaf photosynthesis operation has been recognized, many uncertainties remain on whether TCA cycle biochemistry is similar in the light compared with the dark. It is widely accepted that leaf day respiration and the metabolic commitment to TCA decarboxylation are down-regulated in illuminated leaves. However, the metabolic basis (i.e. the limiting steps involved in such a down-regulation) is not well known. Here, we investigated the in vivo metabolic fluxes of individual reactions of the TCA cycle by developing two isotopic methods, (13)C tracing and fluxomics and the use of H/D isotope effects, with Xanthium strumarium leaves. We provide evidence that the TCA "cycle" does not work in the forward direction like a proper cycle but, rather, operates in both the reverse and forward directions to produce fumarate and glutamate, respectively. Such a functional division of the cycle plausibly reflects the compromise between two contrasted forces: (1) the feedback inhibition by NADH and ATP on TCA enzymes in the light, and (2) the need to provide pH-buffering organic acids and carbon skeletons for nitrate absorption and assimilation.

摘要

虽然三羧酸(TCA)循环反应对叶片光合作用运行的潜在重要性已得到认可,但关于TCA循环生物化学在光照条件下与黑暗条件下是否相似仍存在许多不确定性。人们普遍认为,在光照叶片中,叶片白天呼吸作用以及对TCA脱羧的代谢投入会下调。然而,这种下调所涉及的代谢基础(即限制步骤)尚不清楚。在此,我们通过开发两种同位素方法,即(13)C追踪和通量组学以及利用H/D同位素效应,对苍耳叶片中TCA循环各个反应的体内代谢通量进行了研究。我们提供的证据表明,TCA“循环”并非像正常循环那样正向运行,而是分别以逆向和正向运行来产生富马酸和谷氨酸。循环的这种功能划分可能反映了两种相反力量之间的权衡:(1)光照条件下NADH和ATP对TCA酶的反馈抑制,以及(2)为硝酸盐吸收和同化提供pH缓冲有机酸和碳骨架的需求。

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