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The Salt Overly Sensitive (SOS) Pathway: Established and Emerging Roles 被引量:26
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作者 Hongtao Ji José M. Pardo +3 位作者 Giorgia Batelli Michael J. Van Oosten Ray A. Bressan Xia Li 《Molecular Plant》 SCIE CAS CSCD 2013年第2期275-286,共12页
Soil salinity is a growing problem around the world with special relevance in farmlands. The ability to sense and respond to environmental stimuli is among the most fundamental processes that enable plants to survive.... Soil salinity is a growing problem around the world with special relevance in farmlands. The ability to sense and respond to environmental stimuli is among the most fundamental processes that enable plants to survive. At the cellular level, the Salt Overly Sensitive (SOS) signaling pathway that comprises SOS3, SOS2, and SOS1 has been proposed to mediate cellular signaling under salt stress, to maintain ion homeostasis. Less well known is how cellularly heterog- enous organs couple the salt signals to homeostasis maintenance of different types of cells and to appropriate growth of the entire organ and plant. Recent evidence strongly indicates that different regulatory mechanisms are adopted by roots and shoots in response to salt stress. Several reports have stated that, in roots, the SOS proteins may have novel roles in addition to their functions in sodium homeostasis. SOS3 plays a critical role in plastic development of lateral roots through modulation of auxin gradients and maxima in roots under mild salt conditions. The SOS proteins also play a role in the dynamics of cytoskeleton under stress. These results imply a high complexity of the regulatory networks involved in plant response to salinity. This review focuses on the emerging complexity of the SOS signaling and SOS protein functions, and highlights recent understanding on how the SOS proteins contribute to different responses to salt stress besides ion homeostasis. 展开更多
关键词 AUXIN ion homeostasis root system architecture salt stress the sos signaling pathway.
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质膜Na^(+)/H^(+)逆向转运蛋白SOS1在植物离子稳态平衡中的作用
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作者 朱业胜 伍国强 魏明 《生物技术通报》 CAS CSCD 北大核心 2023年第12期16-32,共17页
植物通过一系列复杂转运系统调节离子稳态以适应盐渍环境,SOS(salt overly sensitive)信号通路是植物响应非生物胁迫的主要信号途径,主要由质膜Na^(+)/H^(+)逆向转运蛋白SOS1、丝氨酸/苏氨酸类蛋白激酶SOS2和钙感应器SOS3组成。SOS1作为... 植物通过一系列复杂转运系统调节离子稳态以适应盐渍环境,SOS(salt overly sensitive)信号通路是植物响应非生物胁迫的主要信号途径,主要由质膜Na^(+)/H^(+)逆向转运蛋白SOS1、丝氨酸/苏氨酸类蛋白激酶SOS2和钙感应器SOS3组成。SOS1作为SOS信号通路的主要成员之一,广泛存在于高等植物中,由于早期的进化差异,可能导致不同物种SOS1的结构和理化性质存在一定的特异性。SOS1蛋白为一个同型二聚体,每个单体由跨膜和胞内结构域组成,这为整合来自不同途径的信号和调节Na^(+)转运提供了稳定的对接平台。SOS1基因转录水平受到不同胁迫条件的调控,通过Ca^(2+)信号调控、磷酸化、自抑制和与离子转运体协同调控等机制可抑制或激活SOS1活性。该蛋白具有调控植物昼夜节律和pH以及维持离子稳态等功能,在植物逆境胁迫响应中发挥重要作用。论文对SOS1的结构、功能、调控机制及其维持植物离子稳态平衡作用等方面的研究进展加以综述,并对其未来研究方向进行展望,以期为农作物抗逆性遗传改良提供理论支持和优异基因资源。 展开更多
关键词 sos1 Na^(+)外排 Na^(+)长距离运输 离子稳态 sos信号通路 耐盐性 氧化应激
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