Australian Research Council Centre of Excellence in Plant Energy Biology, School of Molecular Sciences, University of Western Australia, Perth, WA, 6009, Australia.
Australian Research Council Centre of Excellence in Plant Energy Biology, Research School of Biology, The Australian National University, Canberra, ACT, 0200, Australia.
New Phytol. 2019 Apr;222(2):670-686. doi: 10.1111/nph.15576. Epub 2018 Dec 14.
Contents Summary 670 I. Introduction 671 II. Principle 1 - Plant respiration performs three distinct functions 673 III. Principle 2 - Metabolic pathway flexibility underlies plant respiratory performance 676 IV. Principle 3 - Supply and demand interact over time to set plant respiration rate 677 V. Principle 4 - Plant respiratory acclimation involves adjustments in enzyme capacities 679 VI. Principle 5 - Respiration is a complex trait that helps to define, and is impacted by, plant lifestyle strategies 680 VII. Future directions 680 Acknowledgements 682 References 682 SUMMARY: Respiration is a core biological process that has important implications for the biochemistry, physiology, and ecology of plants. The study of plant respiration is thus conducted from several different perspectives by a range of scientific disciplines with dissimilar objectives, such as metabolic engineering, crop breeding, and climate-change modelling. One aspect in common among the different objectives is a need to understand and quantify the variation in respiration across scales of biological organization. The central tenet of this review is that different perspectives on respiration can complement each other when connected. To better accommodate interdisciplinary thinking, we identify distinct mechanisms which encompass the variation in respiratory rates and functions across biological scales. The relevance of these mechanisms towards variation in plant respiration are explained in the context of five core principles: (1) respiration performs three distinct functions; (2) metabolic pathway flexibility underlies respiratory performance; (3) supply and demand interact over time to set respiration rates; (4) acclimation involves adjustments in enzyme capacities; and (5) respiration is a complex trait that helps to define, and is impacted by, plant lifestyle strategies. We argue that each perspective on respiration rests on these principles to varying degrees and that broader appreciation of how respiratory variation occurs can unite research across scales.
内容概述 670 I. 引言 671 II. 原则 1 - 植物呼吸作用执行三种不同的功能 673 III. 原则 2 - 代谢途径的灵活性是植物呼吸作用的基础 676 IV. 原则 3 - 供应和需求随时间相互作用以确定植物呼吸速率 677 V. 原则 4 - 植物呼吸适应涉及酶容量的调整 679 VI. 原则 5 - 呼吸作用是一个复杂的特征,有助于定义和影响植物生活策略 680 VII. 未来方向 680 致谢 682 参考文献 682 摘要:呼吸作用是一个核心的生物学过程,对植物的生物化学、生理学和生态学都有重要影响。因此,不同的科学学科从不同的角度研究植物呼吸作用,这些学科具有不同的目标,如代谢工程、作物育种和气候变化建模。不同目标的一个共同方面是需要了解和量化呼吸作用在生物组织尺度上的变化。本文的核心观点是,不同的呼吸作用观点在连接起来时可以相互补充。为了更好地适应跨学科思维,我们确定了不同的机制,这些机制涵盖了呼吸作用在生物尺度上的变化。这些机制在植物呼吸作用变化中的相关性是根据五个核心原则来解释的:(1) 呼吸作用执行三种不同的功能;(2) 代谢途径的灵活性是呼吸作用的基础;(3) 供应和需求随时间相互作用以确定呼吸速率;(4) 适应涉及酶容量的调整;(5) 呼吸作用是一个复杂的特征,有助于定义和影响植物生活策略。我们认为,每种呼吸作用观点在不同程度上都基于这些原则,更广泛地了解呼吸作用变化是如何发生的,可以将不同尺度的研究统一起来。