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Transport and Use of Bicarbonate in Plants: Current Knowledge and Challenges Ahead

机译:植物中碳酸氢盐的运输和使用:当前的知识和挑战

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摘要

Bicarbonate plays a fundamental role in the cell pH status in all organisms. In autotrophs, HCO3 may further contribute to carbon concentration mechanisms (CCM). This is especially relevant in the CO2-poor habitats of cyanobacteria, aquatic microalgae, and macrophytes. Photosynthesis of terrestrial plants can also benefit from CCM as evidenced by the evolution of C4 and Crassulacean Acid Metabolism (CAM). The presence of HCO3 in all organisms leads to more questions regarding the mechanisms of uptake and membrane transport in these different biological systems. This review aims to provide an overview of the transport and metabolic processes related to HCO3 in microalgae, macroalgae, seagrasses, and terrestrial plants. HCO3 transport in cyanobacteria and human cells is much better documented and is included for comparison. We further comment on the metabolic roles of HCO3 in plants by focusing on the diversity and functions of carbonic anhydrases and PEP carboxylases as well as on the signaling role of CO2/HCO3 in stomatal guard cells. Plant responses to excess soil HCO3 is briefly addressed. In conclusion, there are still considerable gaps in our knowledge of HCO3 uptake and transport in plants that hamper the development of breeding strategies for both more efficient CCM and better HCO3 tolerance in crop plants.
机译:碳酸氢盐在所有生物体的细胞pH值状态中起着基本作用。在自养生物中,HCO3 -可能进一步有助于碳浓缩机制(CCM)。这在蓝细菌,水生微藻类和大型植物的CO2缺乏生境中尤其重要。 C4和Crassulacean酸代谢(CAM)的演变证明,陆地植物的光合作用也可以从CCM中受益。在所有生物中,HCO3 -的存在引发了更多有关这些不同生物系统中摄取和膜运输机制的问题。这篇综述旨在概述与HCO3 -在微藻类,大型藻类,海草和陆地植物中的运输和代谢过程。蓝细菌和人类细胞中HCO3 -的运输已得到了很好的记录,并包括在内以进行比较。我们通过关注碳酸酐酶和PEP羧化酶的多样性和功能以及CO2 / HCO3 --在植物中的代谢作用。 >在气孔保卫细胞中。简要介绍了植物对过量土壤HCO3 -的反应。总之,我们对植物中HCO3 -的吸收和运输的知识仍然存在很大差距,这阻碍了对更有效的CCM和更好的HCO3 -耐受性的育种策略的发展。在农作物中。

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