Avila Emily L, Brown Michelle, Pan Songqin, Desikan Radhika, Neill Steven J, Girke Thomas, Surpin Marci, Raikhel Natasha V
Center for Plant Cell Biology, University of California, Riverside, CA 92521, USA.
J Exp Bot. 2008;59(6):1149-61. doi: 10.1093/jxb/ern025.
Vacuolar sorting receptors (VSRs) are responsible for the proper targeting of soluble cargo proteins to their destination compartments. The Arabidopsis genome encodes seven VSRs. In this work, the spatio-temporal expression of one of the members of this gene family, AtVSR3, was determined by RT-PCR and promoter::reporter gene fusions. AtVSR3 was expressed specifically in guard cells. Consequently, a reverse genetics approach was taken to determine the function of AtVSR3 by using RNA interference (RNAi) technology. Plants expressing little or no AtVSR3 transcript had a compressed life cycle, bolting approximately 1 week earlier and senescing up to 2 weeks earlier than the wild-type parent line. While the development and distribution of stomata in AtVSR3 RNAi plants appeared normal, stomatal function was altered. The guard cells of mutant plants did not close in response to abscisic acid treatment, and the mean leaf temperatures of the RNAi plants were on average 0.8 degrees C lower than both wild type and another vacuolar sorting receptor mutant, atvsr1-1. Furthermore, the loss of AtVSR3 protein caused the accumulation of nitric oxide and hydrogen peroxide, signalling molecules implicated in the regulation of stomatal opening and closing. Finally, proteomics and western blot analyses of cellular proteins isolated from wild-type and AtVSR3 RNAi leaves showed that phospholipase Dgamma, which may play a role in abscisic acid signalling, accumulated to higher levels in AtVSR3 RNAi guard cells. Thus, AtVSR3 may play an important role in responses to plant stress.
液泡分选受体(VSRs)负责将可溶性货物蛋白正确靶向运输到其目的地区室。拟南芥基因组编码7种VSRs。在这项研究中,通过逆转录聚合酶链反应(RT-PCR)和启动子::报告基因融合技术,确定了该基因家族成员之一AtVSR3的时空表达情况。AtVSR3在保卫细胞中特异性表达。因此,采用反向遗传学方法,利用RNA干扰(RNAi)技术来确定AtVSR3的功能。与野生型亲本系相比,几乎不表达或不表达AtVSR3转录本的植株生命周期缩短,抽薹时间提前约1周,衰老时间提前多达2周。虽然AtVSR3 RNAi植株中气孔的发育和分布看起来正常,但气孔功能发生了改变。突变植株的保卫细胞在脱落酸处理下不会关闭,RNAi植株的平均叶片温度比野生型和另一个液泡分选受体突变体atvsr1-1平均低0.8摄氏度。此外,AtVSR3蛋白的缺失导致一氧化氮和过氧化氢的积累,这两种信号分子参与气孔开闭的调节。最后,对从野生型和AtVSR3 RNAi叶片中分离的细胞蛋白进行蛋白质组学和蛋白质印迹分析表明,可能在脱落酸信号传导中起作用的磷脂酶Dγ在AtVSR3 RNAi保卫细胞中积累到更高水平。因此,AtVSR3可能在植物对胁迫的反应中发挥重要作用。