Manishankar P, Wang N, Köster P, Alatar A A, Kudla J
Institut für Biologie und Biotechnologie der Pflanzen, WWU Münster, Münster, Germany.
National Key Laboratory of Crop Genetic Improvement and National Center of Plant Gene Research (Wuhan), Huazhong Agricultural University, Wuhan, China.
J Exp Bot. 2018 May 24. doi: 10.1093/jxb/ery201.
Soil composition largely defines the living conditions of plants and represents one of their most relevant, dynamic and complex environmental cues. The effective concentrations of many either tolerated or essential ions and compounds in the soil usually differ from the optimum that would be most suitable for plants. In this regard, salinity - caused by excess of NaCl - represents a widespread adverse growth condition but also shortage of ions like K+, NO3- and Fe2+ restrains plant growth. During the past years many components and mechanisms that function in the sensing and establishment of ion homeostasis have been identified and characterized. Here, we reflect on recent insights that extended our understanding of components and mechanisms, which govern and fine-tune plant salt stress tolerance and ion homeostasis. We put special emphasis on mechanisms that allow for interconnection of the salt overly sensitivity pathway with plant development and discuss newly emerging functions of Ca2+ signaling in salinity tolerance. Moreover, we review and discuss accumulating evidence for a central and unifying role of Ca2+ signaling and Ca2+ dependent protein phosphorylation in regulating sensing, uptake, transport and storage processes of various ions. Finally, based on this cross-field inventory, we deduce emerging concepts and arising questions for future research.
土壤成分在很大程度上决定了植物的生存条件,是植物最相关、最具动态性和复杂性的环境信号之一。土壤中许多耐受或必需离子及化合物的有效浓度通常与最适合植物生长的最佳浓度不同。在这方面,由过量氯化钠导致的盐度是一种普遍存在的不利生长条件,但钾离子、硝酸根离子和亚铁离子等离子的缺乏也会抑制植物生长。在过去几年中,许多在离子稳态的感知和建立过程中发挥作用的成分和机制已被识别和表征。在此,我们回顾了一些最新的见解,这些见解拓展了我们对调控和微调植物耐盐性及离子稳态的成分和机制的理解。我们特别强调了使盐过度敏感途径与植物发育相互关联的机制,并讨论了钙离子信号在耐盐性方面新出现的功能。此外,我们回顾并讨论了越来越多的证据,这些证据表明钙离子信号和钙离子依赖性蛋白磷酸化在调节各种离子的感知、吸收、运输和储存过程中起着核心和统一的作用。最后,基于这一跨领域的总结,我们推断出未来研究中出现的新概念和新问题。