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首页> 外文期刊>Photosynthesis Research: An International Journal >Species-specific differences in temporal and spatial variation in delta C-13 of plant carbon pools and dark-respired CO2 under changing environmental conditions
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Species-specific differences in temporal and spatial variation in delta C-13 of plant carbon pools and dark-respired CO2 under changing environmental conditions

机译:在变化的环境条件下,植物碳库的δC-13和暗呼吸的CO2在时间和空间上的物种差异

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摘要

Stable carbon isotope signatures are often used as tracers for environmentally driven changes in photosynthetic delta C-13 discrimination. However, carbon isotope signatures downstream from carboxylation by Rubisco are altered within metabolic pathways, transport and respiratory processes, leading to differences in delta C-13 between carbon pools along the plant axis and in respired CO2. Little is known about the within-plant variation in delta C-13 under different environmental conditions or between species. We analyzed spatial, diurnal, and environmental variations in delta C-13 of water soluble organic matter (delta C-13(WSOM)) of leaves, phloem and roots, as well as dark-respired delta(CO2)-C-13 (delta C-13(res)) in leaves and roots. We selected distinct light environments (forest understory and an open area), seasons (Mediterranean spring and summer drought) and three functionally distinct understory species (two native shrubs-Halimium halimifolium and Rosmarinus officinalis-and a woody invader-Acacia longifolia). Spatial patterns in delta C-13(WSOM) along the plant vertical axis and between respired delta(CO2)-C-13 and its putative substrate were clearly species specific and the most delta C-13-enriched and depleted values were found in delta C-13 of leaf dark-respired CO2 and phloem sugars, similar to-15 and similar to-33 aEuro degrees, respectively. Comparisons between study sites and seasons revealed that spatial and diurnal patterns were influenced by environmental conditions. Within a species, phloem delta C-13(WSOM) and delta C-13(res) varied by up to 4 aEuro degrees between seasons and sites. Thus, careful characterization of the magnitude and environmental dependence of apparent post-carboxylation fractionation is needed when using delta C-13 signatures to trace changes in photosynthetic discrimination.
机译:稳定的碳同位素特征通常用作光合作用C-13区分度的环境驱动变化的示踪剂。但是,Rubisco羧化下游的碳同位素特征在代谢途径,运输和呼吸过程中发生了变化,导致沿植物轴的碳库之间和呼吸的CO2之间的δC-13差异。对于在不同环境条件下或物种之间的C-13植物内部变化知之甚少。我们分析了叶片,韧皮部和根部的水溶性有机物(delta C-13(WSOM))的delta C-13的空间,昼夜和环境变化,以及黑暗呼吸的delta(CO2)-C-13(叶和根中的C-13(res)。我们选择了不同的光照环境(森林林下和空旷地区),季节(地中海春季和夏季干旱)和三种功能上不同的林下物种(两种原生灌木-哈利木哈密草和迷迭香-以及木质入侵者-长叶金合欢)。沿植物垂直轴的三角洲C-13(WSOM)以及呼吸的三角洲(CO2)-C-13及其推定的底物之间的空间格局显然是物种特异性的,在三角洲中发现的三角洲C-13富集和枯竭值最高叶暗呼吸的CO2和韧皮部糖的C-13分别类似于15和-33 aEuro度。研究地点和季节之间的比较表明,空间和昼夜模式受环境条件的影响。在一个物种内,韧皮部δC-13(WSOM)和δC-13(res)在季节和地点之间的差异高达4 aEuro度。因此,当使用δC-13标记追踪光合作用的变化时,需要仔细表征表观羧化后分级分离的幅度和环境依赖性。

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