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首页> 外文期刊>Canadian Journal of Plant Science >Plant respiration in a high CO2 world: How will alternative oxidase respond to future atmospheric and climatic conditions?
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Plant respiration in a high CO2 world: How will alternative oxidase respond to future atmospheric and climatic conditions?

机译:植物呼吸在高二氧化碳世界中:替代氧化酶将如何应对未来的大气和气候条件?

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摘要

Plant mitochondria contain an alternative oxidase (AOX) that reduces the energy yield of respiration. While respiration and photosynthesis are known to interact, the role ofAOX in the light remains poorly understood. This gap in our understanding of leaf metabolism extends to future conditions of high CO2 and climate change. While studies indicate that AOX respiration is quite responsive to growth conditions, few studies have examined AOX respiration at high CO2 and little is known regarding the combined impact of changes in both CO2 and other climatic factors such as temperature and water availability. Given its non-energy conserving nature, a fundamental response by AOX to these future conditions could impact the net carbon gain that results from the combined processes of photosynthesis and respiration. Here, we show that leaf AOX protein amount in Nicotiana tabacum is dependent upon growth irradiance and CO2 level, that AOX is subject to biochemical control by intermediates of photorespiration, and that photosynthesis is impacted in transgenic plants lacking AOX. We also review findings that tobacco AOX respiration is responsive to climatic variables (temperature, water availability), thus providing an excellent experimental system to investigate the interplay between AOX, photosynthesis at high CO2, and climate change.
机译:植物线粒体含有一种可替代的氧化酶(AOX),其降低了呼吸的能量产量。虽然已知呼吸和光合作用是相互作用的,但在光线中的作用仍然是众所周知的。我们对叶片代谢的理解的这种差距延伸到高二氧化碳和气候变化的未来条件。虽然研究表明,AOX呼吸对生长条件相当响应,但很少有研究在高二氧化碳中检测AOX呼吸,并且关于CO2和其他气候因子的变化的组合影响很少,诸如温度和水的其他气候因子的组合影响。鉴于其非能源节约性质,AOX对这些未来条件的根本反应可能会影响来自光合作用和呼吸的组合过程产生的净碳增益。在这里,我们表明烟草竹岩中的叶AOX蛋白量取决于生长辐照度和二氧化碳水平,即AOX通过光呼吸的中间体进行生化控制,并且光合作用受到缺乏AOX的转基因植物。我们还审查了烟草AOX呼吸对气候变量(温度,水可用性)响应的结果,从而提供了优异的实验系统,以研究AOX,光合作用在高二氧化碳的相互作用和气候变化。

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