Zhao Jinfeng, Zhao Linlin, Zhang Ming, Zafar Syed Adeel, Fang Jingjing, Li Ming, Zhang Wenhui, Li Xueyong
National Key Facility for Crop Gene Resources and Genetic Improvement, Institute of Crop Sciences, Chinese Academy of Agricultural Sciences, Beijing 100081, China.
College of Life Sciences, Liaocheng University, Liaocheng 252059, China.
Int J Mol Sci. 2017 Aug 24;18(9):1841. doi: 10.3390/ijms18091841.
Drought causes osmotic stress and rapidly triggers abscisic acid (ABA) accumulation in plants. The roles of various ABA receptors in drought tolerance and molecular mechanisms regulating ABA receptor stability needs to be elucidated. Here, we report that Arabidopsis plants overexpressing PYL9, one of the 14 pyrabactin resistance (PYR)/pyrabactin resistance-like (PYL)/regulatory component of ABA receptors (RCAR) family ABA receptors, gained drought tolerance trait. Osmotic stress induced accumulation of the PYL9 protein, which was regulated by the 26S proteasome. PYL9 interacted with two highly homologous plant U-box E3 ubiquitin ligases PUB22 and PUB23. In the cell-free degradation assay, the degradation of GST-PYL9 was accelerated in protein extract from plants overexpressing PUB22 but slowed down in protein extract from the double mutant. The in vivo decay of Myc-PYL9 was significantly reduced in the double mutant as compared with the wild-type. Additionally, PUB22 also interacted with other ABA receptors such as PYL5, PYL7 and PYL8. Considering the improved drought tolerance in the double mutant in previous studies, our results suggest that PUB22 and PUB23 negatively regulate drought tolerance in part by facilitating ABA receptors degradation.
干旱会导致渗透胁迫,并迅速触发植物体内脱落酸(ABA)的积累。各种ABA受体在耐旱性中的作用以及调节ABA受体稳定性的分子机制尚待阐明。在此,我们报道过表达PYL9(ABA受体家族PYR/PYL/RCAR中的14个成员之一)的拟南芥植株获得了耐旱性状。渗透胁迫诱导了PYL9蛋白的积累,该积累受26S蛋白酶体调控。PYL9与两个高度同源的植物U-box E3泛素连接酶PUB22和PUB23相互作用。在无细胞降解试验中,在过表达PUB22的植物蛋白提取物中,GST-PYL9的降解加速,但在双突变体的蛋白提取物中降解减缓。与野生型相比,Myc-PYL9在双突变体中的体内降解显著减少。此外,PUB22还与其他ABA受体如PYL5、PYL7和PYL8相互作用。鉴于先前研究中双突变体耐旱性的提高,我们的结果表明,PUB22和PUB23部分通过促进ABA受体降解来负调控耐旱性。