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金属和其他配体平衡叶绿体中的碳固定和光呼吸。

Metals and other ligands balance carbon fixation and photorespiration in chloroplasts.

机构信息

Department of Plant Sciences, University of California at Davis, Davis, CA.

出版信息

Physiol Plant. 2024 Jul-Aug;176(4):e14463. doi: 10.1111/ppl.14463.

Abstract

The behavior of many plant enzymes depends on the metals and other ligands to which they are bound. A previous study demonstrated that tobacco Rubisco binds almost equally to magnesium and manganese and rapidly exchanges one metal for the other. The present study characterizes the kinetics of Rubisco and the plastidial malic enzyme when bound to either metal. When Rubisco purified from five C species was bound to magnesium rather than manganese, the specificity for CO over O, (S) increased by 25% and the ratio of the maximum velocities of carboxylation / oxygenation (V/V) increased by 39%. For the recombinant plastidial malic enzyme, the forward reaction (malate decarboxylation) was 30% slower and the reverse reaction (pyruvate carboxylation) was three times faster when bound to manganese rather than magnesium. Adding 6-phosphoglycerate and NADP inhibited carboxylation and oxygenation when Rubisco was bound to magnesium and stimulated oxygenation when it was bound to manganese. Conditions that favored RuBP oxygenation stimulated Rubisco to convert as much as 15% of the total RuBP consumed into pyruvate. These results are consistent with a stromal biochemical pathway in which (1) Rubisco when associated with manganese converts a substantial amount of RuBP into pyruvate, (2) malic enzyme when associated with manganese carboxylates a substantial portion of this pyruvate into malate, and (3) chloroplasts export additional malate into the cytoplasm where it generates NADH for assimilating nitrate into amino acids. Thus, plants may regulate the activities of magnesium and manganese in leaves to balance organic carbon and organic nitrogen as atmospheric CO fluctuates.

摘要

许多植物酶的行为取决于它们结合的金属和其他配体。先前的研究表明,烟草 Rubisco 几乎同等地结合镁和锰,并迅速将一种金属交换为另一种金属。本研究描述了当结合到任一金属时 Rubisco 和质体苹果酸酶的动力学。当从五个 C 物种中纯化的 Rubisco 与镁而不是锰结合时,对 CO 而不是 O 的特异性(S)增加了 25%,羧化/加氧(V/V)的最大速度比增加了 39%。对于重组质体苹果酸酶,当结合到锰而不是镁时,前向反应(苹果酸脱羧)慢 30%,反向反应(丙酮酸羧化)快三倍。当 Rubisco 与镁结合时,添加 6-磷酸甘油酸和 NADP 抑制羧化和加氧,而当与锰结合时刺激加氧。有利于 RuBP 加氧的条件刺激 Rubisco 将总 RuBP 消耗的多达 15%转化为丙酮酸。这些结果与基质生化途径一致,其中(1)与锰结合的 Rubisco 将大量 RuBP 转化为丙酮酸,(2)与锰结合的苹果酸酶羧化大部分丙酮酸为苹果酸,(3)叶绿体将额外的苹果酸运出到细胞质中,在那里它为将硝酸盐同化到氨基酸中生成 NADH。因此,植物可能会调节叶片中镁和锰的活性,以平衡大气 CO 波动时的有机碳和有机氮。

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