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非靶向 C 代谢物分析表明,当气体交换条件发生变化时,叶片代谢会广泛重新组合。

Non-targeted C metabolite analysis demonstrates broad re-orchestration of leaf metabolism when gas exchange conditions vary.

机构信息

Institut de Recherche en Horticulture et Semences, INRA d'Angers, Université d'Angers, Angers, France.

Research School of Biology, ANU Joint College of Sciences, Australian National University, Canberra, Australia.

出版信息

Plant Cell Environ. 2021 Feb;44(2):445-457. doi: 10.1111/pce.13940. Epub 2020 Nov 18.

Abstract

It is common practice to manipulate CO and O mole fraction during gas-exchange experiments to suppress or exacerbate photorespiration, or simply carry out CO response curves. In doing so, it is implicitly assumed that metabolic pathways other than carboxylation and oxygenation are altered minimally. In the past few years, targeted metabolic analyses have shown that this assumption is incorrect, with changes in the tricarboxylic acid cycle, anaplerosis (phosphoenolpyruvate carboxylation), and nitrogen or sulphur assimilation. However, this problem has never been tackled systematically using non-targeted analyses to embrace all possible affected metabolic pathways. Here, we exploited combined NMR, GC-MS, and LC-MS data and conducted non-targeted analyses on sunflower leaves sampled at different O /CO ratios in a gas exchange system. The statistical analysis of nearly 4,500 metabolic features not only confirms previous findings on anaplerosis or S assimilation, but also reveals significant changes in branched chain amino acids, phenylpropanoid metabolism, or adenosine turn-over. Noteworthy, all of these pathways involve CO assimilation or liberation and thus affect net CO exchange. We conclude that manipulating CO and O mole fraction has a broad effect on metabolism, and this must be taken into account to better understand variations in carboxylation (anaplerotic fixation) or apparent day respiration.

摘要

在气体交换实验中,通常会操纵 CO 和 O 的摩尔分数来抑制或加剧光呼吸,或者简单地进行 CO 响应曲线的实验。这样做的隐含假设是除羧化和加氧作用以外的代谢途径改变很小。在过去的几年中,靶向代谢分析表明,这种假设是不正确的,三羧酸循环、氨甲酰磷酸合成(磷酸烯醇丙酮酸羧化)以及氮或硫同化都会发生变化。然而,这个问题从未使用非靶向分析来系统地解决,以涵盖所有可能受影响的代谢途径。在这里,我们利用组合 NMR、GC-MS 和 LC-MS 数据,在气体交换系统中对不同 O/CO 比下的向日葵叶片进行了非靶向分析。对近 4500 个代谢特征的统计分析不仅证实了先前关于氨甲酰磷酸合成或 S 同化的发现,还揭示了支链氨基酸、苯丙烷代谢或腺苷周转的显著变化。值得注意的是,所有这些途径都涉及 CO 的同化或释放,因此会影响净 CO 交换。我们得出结论,操纵 CO 和 O 的摩尔分数对代谢有广泛的影响,这必须考虑在内,以更好地理解羧化(氨甲酰磷酸合成)或表观日呼吸的变化。

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