Department of Molecular Genetics, The Ohio State University, Columbus, Ohio 43210.
Department of Molecular Genetics, The Ohio State University, Columbus, Ohio 43210
Plant Physiol. 2020 Feb;182(2):1100-1113. doi: 10.1104/pp.19.01010. Epub 2019 Nov 25.
Stomatal movement, which regulates gas exchange in plants, is controlled by a variety of environmental factors, including biotic and abiotic stresses. The stress hormone abscisic acid (ABA) initiates a signaling cascade, which leads to increased HO and Ca levels and F-actin reorganization, but the mechanism of, and connection between, these events is unclear. SINE1, an outer nuclear envelope component of a plant Linker of Nucleoskeleton and Cytoskeleton complex, associates with F-actin and is, along with its putative paralog SINE2, expressed in guard cells. Here, we have determined that Arabidopsis () SINE1 and SINE2 play an important role in stomatal opening and closing. Loss of SINE1 or SINE2 results in ABA hyposensitivity and impaired stomatal dynamics but does not affect stomatal closure induced by the bacterial elicitor flg22. The ABA-induced stomatal closure phenotype is, in part, attributed to impairments in Ca and F-actin regulation. Together, the data suggest that SINE1 and SINE2 act downstream of ABA but upstream of Ca and F-actin. While there is a large degree of functional overlap between the two proteins, there are also critical differences. Our study makes an unanticipated connection between stomatal regulation and nuclear envelope-associated proteins, and adds two new players to the increasingly complex system of guard cell regulation.
气孔运动调节植物的气体交换,受多种环境因素的控制,包括生物和非生物胁迫。胁迫激素脱落酸(ABA)启动信号级联,导致 HO 和 Ca 水平升高和 F-actin 重组,但这些事件的机制和联系尚不清楚。SINE1 是植物核骨架和细胞骨架连接体的核外膜成分,与 F-actin 相关联,与其假定的旁系同源物 SINE2 一起在保卫细胞中表达。在这里,我们已经确定拟南芥(Arabidopsis thaliana)的 SINE1 和 SINE2 在气孔开放和关闭中起着重要作用。SINE1 或 SINE2 的缺失导致 ABA 低敏感性和气孔动力学受损,但不影响细菌激发子 flg22 诱导的气孔关闭。ABA 诱导的气孔关闭表型部分归因于 Ca 和 F-actin 调节的损伤。总之,数据表明 SINE1 和 SINE2 作用于 ABA 的下游,但作用于 Ca 和 F-actin 的上游。虽然这两种蛋白质有很大程度的功能重叠,但也有关键的区别。我们的研究在气孔调节和核膜相关蛋白之间建立了一个意想不到的联系,并为日益复杂的保卫细胞调节系统增加了两个新的参与者。