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千里光属植物光呼吸和羧化过程中的碳同位素分馏

Carbon isotope fractionation during photorespiration and carboxylation in Senecio.

作者信息

Lanigan Gary J, Betson Nicholas, Griffiths Howard, Seibt Ulli

机构信息

Physiological Ecology Group, Department of Plant Sciences, University of Cambridge, Cambridge CB2 3EA, United Kingdom.

出版信息

Plant Physiol. 2008 Dec;148(4):2013-20. doi: 10.1104/pp.108.130153. Epub 2008 Oct 15.

Abstract

The magnitude of fractionation during photorespiration and the effect on net photosynthetic (13)C discrimination (Delta) were investigated for three Senecio species, S. squalidus, S. cineraria, and S. greyii. We determined the contributions of different processes during photosynthesis to Delta by comparing observations (Delta(obs)) with discrimination predicted from gas-exchange measurements (Delta(pred)). Photorespiration rates were manipulated by altering the O(2) partial pressure (pO(2)) in the air surrounding the leaves. Contributions from (13)C-depleted photorespiratory CO(2) were largest at high pO(2). The parameters for photorespiratory fractionation (f), net fractionation during carboxylation by Rubisco and phosphoenolpyruvate carboxylase (b), and mesophyll conductance (g(i)) were determined simultaneously for all measurements. Instead of using Delta(obs) data to obtain g(i) and f successively, which requires that b is known, we treated b, f, and g(i) as unknowns. We propose this as an alternative approach to analyze measurements under field conditions when b and g(i) are not known or cannot be determined in separate experiments. Good agreement between modeled and observed Delta was achieved with f = 11.6 per thousand +/- 1.5 per thousand, b = 26.0 per thousand +/- 0.3 per thousand, and g(i) of 0.27 +/- 0.01, 0.25 +/- 0.01, and 0.22 +/- 0.01 mol m(-2) s(-1) for S. squalidus, S. cineraria, and S. greyii, respectively. We estimate that photorespiratory fractionation decreases Delta by about 1.2 per thousand on average under field conditions. In addition, diurnal changes in Delta are likely to reflect variations in photorespiration even at the canopy level. Our results emphasize that the effects of photorespiration must be taken into account when partitioning net CO(2) exchange of ecosystems into gross fluxes of photosynthesis and respiration.

摘要

对三种千里光属植物,即脏污千里光(Senecio squalidus)、银叶千里光(S. cineraria)和灰叶千里光(S. greyii),研究了光呼吸过程中的分馏程度及其对净光合(13)C 同位素分馏(Δ)的影响。通过将观测值(Δobs)与根据气体交换测量预测的分馏值(Δpred)进行比较,我们确定了光合作用中不同过程对Δ的贡献。通过改变叶片周围空气中的 O₂ 分压(pO₂)来调控光呼吸速率。在高 pO₂ 时,来自贫(13)C 的光呼吸 CO₂ 的贡献最大。对所有测量同时确定了光呼吸分馏(f)、Rubisco 和磷酸烯醇式丙酮酸羧化酶羧化过程中的净分馏(b)以及叶肉导度(gi)的参数。我们没有采用依次利用Δobs 数据来获取 gi 和 f(这需要已知 b)的方法,而是将 b、f 和 gi 视为未知数。我们提出这是一种在野外条件下分析测量数据的替代方法,此时 b 和 gi 未知或无法在单独实验中确定。对于脏污千里光、银叶千里光和灰叶千里光,当 f = 11.6‰ ± 1.5‰,b = 26.0‰ ± 0.3‰,以及 gi 分别为 0.27 ± 0.01、0.25 ± 0.01 和 0.22 ± 0.01 mol m⁻² s⁻¹ 时,模型预测的Δ与观测值之间取得了良好的一致性。我们估计在野外条件下,光呼吸分馏平均使Δ降低约 1.2‰。此外,即使在冠层水平,Δ的日变化也可能反映光呼吸的变化。我们的结果强调,在将生态系统的净 CO₂ 交换划分为光合作用和呼吸作用的总通量时,必须考虑光呼吸的影响。

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