Lee Hyun Kyung, Cho Seok Keun, Son Ora, Xu Zhengyi, Hwang Inhwan, Kim Woo Taek
Department of Integrative Bioscience and Biotechnology, Division of Molecular and Life Science, Pohang University of Science and Technology, Pohang 790-784, Korea.
Plant Cell. 2009 Feb;21(2):622-41. doi: 10.1105/tpc.108.061994. Epub 2009 Feb 20.
Ubiquitination is involved in a variety of biological processes, but the exact role of ubiquitination in abiotic responses is not clearly understood in higher plants. Here, we investigated Rma1H1, a hot pepper (Capsicum annuum) homolog of a human RING membrane-anchor 1 E3 ubiquitin (Ub) ligase. Bacterially expressed Rma1H1 displayed E3 Ub ligase activity in vitro. Rma1H1 was rapidly induced by various abiotic stresses, including dehydration, and its overexpression in transgenic Arabidopsis thaliana plants conferred strongly enhanced tolerance to drought stress. Colocalization experiments with marker proteins revealed that Rma1H1 resides in the endoplasmic reticulum (ER) membrane. Overexpression of Rma1H1 in Arabidopsis inhibited trafficking of an aquaporin isoform PIP2;1 from the ER to the plasma membrane and reduced PIP2;1 levels in protoplasts and transgenic plants. This Rma1H1-induced reduction of PIP2;1 was inhibited by MG132, an inhibitor of the 26S proteasome. Furthermore, Rma1H1 interacted with PIP2;1 in vitro and ubiquitinated it in vivo. Similar to Rma1H1, Rma1, an Arabidopsis homolog of Rma1H1, localized to the ER, and its overexpression reduced the PIP2;1 protein level and inhibited trafficking of PIP2;1 from the ER to the plasma membrane in protoplasts. In addition, reduced expression of Rma homologs resulted in the increased level of PIP2;1 in protoplasts. We propose that Rma1H1 and Rma1 play a critical role in the downregulation of plasma membrane aquaporin levels by inhibiting aquaporin trafficking to the plasma membrane and subsequent proteasomal degradation as a response to dehydration in transgenic Arabidopsis plants.
泛素化参与多种生物学过程,但泛素化在高等植物非生物胁迫响应中的具体作用尚不清楚。在此,我们研究了Rma1H1,它是人类RING膜锚定1 E3泛素(Ub)连接酶在辣椒(Capsicum annuum)中的同源物。细菌表达的Rma1H1在体外表现出E3 Ub连接酶活性。Rma1H1受到包括脱水在内的各种非生物胁迫的快速诱导,其在转基因拟南芥植物中的过表达赋予了对干旱胁迫的强烈耐受性增强。与标记蛋白的共定位实验表明,Rma1H1定位于内质网(ER)膜。Rma1H1在拟南芥中的过表达抑制了水通道蛋白异构体PIP2;1从内质网到质膜的运输,并降低了原生质体和转基因植物中PIP2;1的水平。这种由Rma1H1诱导的PIP2;1减少被26S蛋白酶体抑制剂MG132所抑制。此外,Rma1H1在体外与PIP2;1相互作用并在体内使其泛素化。与Rma1H1类似,Rma1是Rma1H1在拟南芥中的同源物,定位于内质网,其过表达降低了PIP2;1蛋白水平,并抑制了PIP2;1从内质网到原生质体质膜的运输。此外,Rma同源物表达的降低导致原生质体中PIP2;1水平的增加。我们提出,Rma1H1和Rma1在转基因拟南芥植物中通过抑制水通道蛋白向质膜的运输以及随后的蛋白酶体降解来下调质膜水通道蛋白水平,从而在对脱水的响应中发挥关键作用。