Rubisco, the most prevalent protein on Earth, catalysers both a reaction that initiates C(3) carbon fixation, and a reaction that initiates photorespiration, which stimulates protein synthesis. Regulation of the balance between these reactions under atmospheric CO(2) fluctuations remains poorly understood. We have hypothesised that vascular plants maintain organic carbon-to-nitrogen homoeostasis by adjusting the relative activities of magnesium and manganese in chloroplasts to balance carbon fixation and nitrate assimilation rates. The following examined the influence of magnesium and manganese on carboxylation and oxygenation for rubisco purified from two ecotypes of Plantago lanceolata L.: one adapted to the elevated CO(2) atmospheres that occur near a natural CO(2) spring and the other adapted to more typical CO(2) atmospheres that occur nearby. The plastid DNA coding for the large unit of rubisco was similar in both ecotypes. The kinetics of rubiscos from the two ecotypes differed more when associated with manganese than magnesium. Specificity for CO(2) over O(2) (S(c/o)) for rubisco from both ecotypes was higher when the enzymes were bound to magnesium than manganese. Differences in the responses of rubisco from P. lanceolata to the metals may account for the adaptation of this species to different CO(2) environments.
Carboxylation and Oxygenation Kinetics and Large Subunit (rbcL) DNA Sequences for Rubisco From Two Ecotypes of Plantago lanceolata L. That Are Native to Sites Differing in Atmospheric CO(2) Levels.
来自大气 CO(2) 水平不同的地点的两种车前草生态型的 Rubisco 的羧化和氧化动力学以及大亚基 (rbcL) DNA 序列
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作者:Shi Xiaoxiao, Hannon Nathan M, Bloom Arnold J
| 期刊: | Plant Cell and Environment | 影响因子: | 6.300 |
| 时间: | 2025 | 起止号: | 2025 May;48(5):3159-3170 |
| doi: | 10.1111/pce.15346 | ||
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