Lourenço Tiago F, Serra Tânia S, Cordeiro André M, Swanson Sarah J, Gilroy Simon, Saibo Nelson J M, Oliveira M Margarida
Instituto de Tecnologia Química e Biológica António Xavier, Universidade Nova de Lisboa, 2780-157 Oeiras, Portugal (T.F.L., T.S.S., A.M.C., N.J.M.S., M.M.O.); and Genomics of Plant Stress Unit, iBET, Instituto de Biologia Experimental e Tecnológica, Apartado 12, 2780-901 Oeiras, Portugal (T.F.L., T.S.S., A.M.C., N.J.M.S., M.M.O.); andDepartment of Botany, University of Wisconsin, Madison, Wisconsin 53706 (S.J.S., S.G.).
Instituto de Tecnologia Química e Biológica António Xavier, Universidade Nova de Lisboa, 2780-157 Oeiras, Portugal (T.F.L., T.S.S., A.M.C., N.J.M.S., M.M.O.); and Genomics of Plant Stress Unit, iBET, Instituto de Biologia Experimental e Tecnológica, Apartado 12, 2780-901 Oeiras, Portugal (T.F.L., T.S.S., A.M.C., N.J.M.S., M.M.O.); andDepartment of Botany, University of Wisconsin, Madison, Wisconsin 53706 (S.J.S., S.G.)
Plant Physiol. 2015 Nov;169(3):2275-87. doi: 10.1104/pp.15.01131. Epub 2015 Sep 17.
Plant roots can sense and respond to a wide diversity of mechanical stimuli, including touch and gravity. However, little is known about the signal transduction pathways involved in mechanical stimuli responses in rice (Oryza sativa). This work shows that rice root responses to mechanical stimuli involve the E3-ubiquitin ligase rice HIGH EXPRESSION OF OSMOTICALLY RESPONSIVE GENE1 (OsHOS1), which mediates protein degradation through the proteasome complex. The morphological analysis of the roots in transgenic RNA interference::OsHOS1 and wild-type plants, exposed to a mechanical barrier, revealed that the OsHOS1 silencing plants keep a straight root in contrast to wild-type plants that exhibit root curling. Moreover, it was observed that the absence of root curling in response to touch can be reverted by jasmonic acid. The straight root phenotype of the RNA interference::OsHOS1 plants was correlated with a higher expression rice ROOT MEANDER CURLING (OsRMC), which encodes a receptor-like kinase characterized as a negative regulator of rice root curling mediated by jasmonic acid. Using the yeast two-hybrid system and bimolecular fluorescence complementation assays, we showed that OsHOS1 interacts with two ETHYLENE-RESPONSE FACTOR transcription factors, rice ETHYLENE-RESPONSIVE ELEMENT BINDING PROTEIN1 (OsEREBP1) and rice OsEREBP2, known to regulate OsRMC gene expression. In addition, we showed that OsHOS1 affects the stability of both transcription factors in a proteasome-dependent way, suggesting that this E3-ubiquitin ligase targets OsEREBP1 and OsEREBP2 for degradation. Our results highlight the function of the proteasome in rice response to mechanical stimuli and in the integration of these signals, through hormonal regulation, into plant growth and developmental programs.
植物根系能够感知并响应多种机械刺激,包括触摸和重力。然而,对于水稻(Oryza sativa)中参与机械刺激响应的信号转导途径,我们了解甚少。这项研究表明,水稻根系对机械刺激的响应涉及E3泛素连接酶水稻渗透响应基因1高表达(OsHOS1),它通过蛋白酶体复合物介导蛋白质降解。对暴露于机械屏障的转基因RNA干扰::OsHOS1和野生型植株根系进行形态分析,结果显示,与表现出根卷曲的野生型植株相比,OsHOS1沉默植株的根保持笔直。此外,还观察到茉莉酸可以逆转因触摸而未出现的根卷曲现象。RNA干扰::OsHOS1植株的直根表型与水稻根弯曲卷曲(OsRMC)的高表达相关,OsRMC编码一种类受体激酶,其被表征为茉莉酸介导的水稻根卷曲的负调节因子。利用酵母双杂交系统和双分子荧光互补分析,我们发现OsHOS1与两个乙烯响应因子转录因子相互作用,即水稻乙烯响应元件结合蛋白1(OsEREBP1)和水稻OsEREBP2,已知它们可调节OsRMC基因的表达。此外,我们还表明,OsHOS1以蛋白酶体依赖的方式影响这两个转录因子的稳定性,这表明这种E3泛素连接酶靶向OsEREBP1和OsEREBP2进行降解。我们的研究结果突出了蛋白酶体在水稻对机械刺激的响应以及通过激素调节将这些信号整合到植物生长和发育程序中的作用。