首页> 外文OA文献 >The operation of two decarboxylases, transamination, and partitioning of C4 metabolic processes between mesophyll and bundle sheath cells allows light capture to be balanced for the maize C4 pathway.
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The operation of two decarboxylases, transamination, and partitioning of C4 metabolic processes between mesophyll and bundle sheath cells allows light capture to be balanced for the maize C4 pathway.

机译:在叶肉和束鞘细胞之间的两个脱羧酶的操作,转氨作用和C4代谢过程的分配允许光捕获在玉米C4途径中平衡。

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摘要

The C4 photosynthesis carbon-concentrating mechanism in maize (Zea mays) has two CO2 delivery pathways to the bundle sheath (BS; via malate or aspartate), and rates of phosphoglyceric acid reduction, starch synthesis, and phosphoenolpyruvate regeneration also vary between BS and mesophyll (M) cells. The theoretical partitioning of ATP supply between M and BS cells was derived for these metabolic activities from simulated profiles of light penetration across a leaf, with a potential 3-fold difference in the fraction of ATP produced in the BS relative to M (from 0.29 to 0.96). A steady-state metabolic model was tested using varying light quality to differentially stimulate M or BS photosystems. CO2 uptake, ATP production rate (JATP; derived with a low oxygen/chlorophyll fluorescence method), and carbon isotope discrimination were measured on plants under a low light intensity, which is considered to affect C4 operating efficiency. The light quality treatments did not change the empirical ATP cost of gross CO2 assimilation (JATP/GA). Using the metabolic model, measured JATP/GA was compared with the predicted ATP demand as metabolic functions were varied between M and BS. Transamination and the two decarboxylase systems (NADP-malic enzyme and phosphoenolpyruvate carboxykinase) were critical for matching ATP and reduced NADP demand in BS and M when light capture was varied under contrasting light qualities.
机译:玉米(Zea mays)中的C4光合作用碳浓缩机制具有两个向束鞘(BS;通过苹果酸或天冬氨酸)的CO2传递途径,并且磷酸甘油酸还原,淀粉合成和磷酸烯醇丙酮酸的再生速率在BS和叶肉之间也不同(M)个细胞。 M和BS细胞之间ATP供给的理论分配是从这些穿过叶片的光的模拟分布图得出的,这些代谢活动具有相对于M的BS中产生的ATP分数潜在的3倍差异(从0.29至0.96)。使用变化的光质量来差异刺激M或BS光系统,测试了稳态代谢模型。在低光照强度下对植物进行了二氧化碳吸收,ATP产生速率(JATP;通过低氧/叶绿素荧光法得出)和碳同位素判别的研究,这被认为会影响C4的运行效率。光质处理不会改变总CO2同化的经验ATP成本(JATP / GA)。使用代谢模型,将测量的JATP / GA与预计的ATP需求进行比较,因为M和BS之间的代谢功能有所不同。当在不同的光线质量下改变光捕获时,转氨和两种脱羧酶系统(NADP-苹果酸酶和磷酸烯醇丙酮酸羧激酶)对于匹配ATP和减少BS和M中NADP需求至关重要。

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    Bellasio, C.; Griffiths, H.;

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  • 年度 2013
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