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首页> 外文期刊>Planta: An International Journal of Plant Biology >Combined effects of CO_2 enrichment and elevated growth temperatures on metabolites in soybean leaflets: Evidence for dynamic changes of TCA cycle intermediates
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Combined effects of CO_2 enrichment and elevated growth temperatures on metabolites in soybean leaflets: Evidence for dynamic changes of TCA cycle intermediates

机译:CO_2富集和生长温度升高对大豆小叶代谢产物的综合影响:TCA循环中间体动态变化的证据

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摘要

Soybean (Glycine max [Merr.] L.) was grown in indoor chambers with ambient (38 Pa) and elevated (70 Pa) CO_2 and dayight temperature treatments of 28/20, 32/24 and 36/28 °C. We hypothesized that CO_2 enrichment would mitigate the deleterious effects of elevated growth temperatures on metabolites in soybean leaflets. Net CO_2 assimilation rates increased incrementally with growth temperature and were enhanced up to 24 % on average by CO_2 enrichment. Stomatal conductance about doubled from the lowest to highest temperature but this was partially reversed by CO_2 enrichment. Metabolites were measured thrice daily and 19 and 28 of 43 total leaf metabolites were altered by the 32/24 and 36/28 °C temperature treatments, respectively, in both CO_2 treatments. Polyols, raffinose and GABA increased and 23 nonstructural carbohydrates, organic acids and amino acids decreased when the temperature was increased from 28 to 36 °C under ambient CO_2. Citrate, aconitate and 2-oxoglutarate decreased over 90 % in the 36/28 °C compared to the 28/20 °C temperature treatment. Temperature-dependent changes of sugars, organic acids and all but three amino acids were almost completely eliminated by CO_2 enrichment. The above findings suggested that specific TCA cycle intermediates were highly depleted by heat stress under ambient CO_2. Mitigating effects of CO_2 enrichment on soybean leaflet metabolites were attributed to altered rates of photosynthesis, photorespiration, dark respiration, the anaplerotic pathway and to possible changes of gene expression.
机译:大豆(Glycine max [Merr。] L.)在室内(38 Pa)和升高(70 Pa)的CO_2以及昼夜温度分别为28 / 20、32 / 24和36/28°C的室内室内生长。我们假设CO_2富集将减轻生长温度升高对大豆小叶中代谢产物的有害影响。净CO_2同化率随着生长温度的增加而增加,并且通过CO_2富集平均提高到24%。气孔导度从最低温度到最高温度大约翻了一番,但这被CO_2富集部分逆转了。每天测量三次代谢产物,在两种CO_2处理中,分别通过32/24和36/28°C温度处理分别改变了43种叶片中的19种和28种代谢产物。当温度在环境CO_2下从28°C升高时,多元醇,棉子糖和GABA升高,而23种非结构性碳水化合物,有机酸和氨基酸降低。与28/20°C的温度处理相比,在36/28°C的柠檬酸,乌头酸和2-氧戊二酸降低了90%以上。糖,有机酸和除三个氨基酸以外的所有氨基酸的温度依赖性变化几乎都通过CO_2富集消除了。上述发现表明,特定的TCA循环中间体在环境CO_2下被热应力高度消耗。 CO_2富集对大豆小叶代谢产物的缓解作用归因于光合作用速率的改变,光呼吸,暗呼吸,无血管通路和基因表达的可能变化。

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