Photorespiration in plant adaptation to environmental changes

Zhisheng Zhang , Guohui Zhu , Xinxiang Peng
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Abstract

Photorespiration begins with the oxygenation reaction catalyzed by 1,5-bisphosphate carboxylase/oxygenase (Rubisco) and serves as a repair pathway for carbon retrieval by converting 2-phosphoglycolate to 3-phosphogly-cerate allowing plants to thrive in an oxygen-rich environment. Photorespiration metabolism is intimately linked to plant primary metabolism, particularly carbon and nitrogen assimilation, and cellular redox equilibrium, and such interactions are dynamically regulated by environmental changes. Although the basic genetics and biochemistry of photorespiration have been well characterized, it is still essential to further improve our understanding of the regulatory mechanisms of photorespiration and the roles in responding to changing environments, which are required for the future genetic manipulation of photorespiration. Here, we summarize recent progress regarding the evolutionary aspects of photorespiration and its multifaceted regulation, highlighting its intricate interactions with environmental CO2, light, and nitrogen nutrition. This review provides a comprehensive perspective on the functional implications of photorespiration for plants to adapt to the environment and opens new avenues for our in-depth exploration of photorespiration to develop better strategies to enhance plant productivity and adaptability in the face of changing environmental conditions.
植物适应环境变化过程中的光呼吸
光呼吸始于 1,5-二磷酸羧化酶/加氧酶(Rubisco)催化的加氧反应,通过将 2-磷酸甘油酸转化为 3-磷酸甘油酸,作为碳回收的修复途径,使植物能够在富氧环境中茁壮成长。光呼吸代谢与植物的初级代谢(尤其是碳、氮同化)和细胞氧化还原平衡密切相关,这种相互作用受环境变化的动态调节。尽管光呼吸的基本遗传学和生物化学特性已经得到了很好的描述,但我们仍有必要进一步加深对光呼吸调控机制及其在应对环境变化中作用的理解,这也是未来对光呼吸进行遗传操作所必需的。在此,我们总结了有关光呼吸及其多方面调控的进化方面的最新进展,强调了光呼吸与环境中二氧化碳、光和氮营养之间错综复杂的相互作用。这篇综述从一个全面的角度阐述了光呼吸对植物适应环境的功能影响,并为我们深入探索光呼吸开辟了新的途径,以制定更好的策略来提高植物在不断变化的环境条件下的生产力和适应能力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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CiteScore
3.50
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