Li Chengxiang, Shen Hongyun, Wang Tao, Wang Xuelu
National Key Laboratory of Genetic Engineering, School of Life Sciences, Fudan University, Shanghai 200433, China.
National Key Laboratory of Genetic Engineering, School of Life Sciences, Fudan University, Shanghai 200433, China National Key Laboratory of Crop Genetic Improvement, College of Life Science and Technology, Huazhong Agricultural University, Wuhan 430070, Hubei, China.
Plant Cell Physiol. 2015 Dec;56(12):2396-408. doi: 10.1093/pcp/pcv154. Epub 2015 Oct 21.
The phytohormone ABA is a key stress signal in plants. Although the identification of ABA receptors led to significant progress in understanding the Arabidopsis ABA signaling pathway, there are still many unsolved mysteries regarding ABA signaling in monocots, such as rice. Here, we report that a rice ortholog of AtABI1 and AtABI2, named OsABI-LIKE2 (OsABIL2), plays a negative role in rice ABA signaling. Overexpression of OsABIL2 not only led to ABA insensitivity, but also significantly altered plant developmental phenotypes, including stomatal density and root architecture, which probably caused the hypersensitivity to drought stress. OsABIL2 interacts with OsPYL1, SAPK8 and SAPK10 both in vitro and in vivo, and the phosphatase activity of OsABIL2 was repressed by ABA-bound OsPYL1. However, unlike many other solely nuclear-localized clade A type 2C protein phosphatases (PP2Cs), OsABIL2 is localized in both the nucleus and cytosol. Furthermore, OsABIL2 interacts with and co-localized with OsPYL1 mainly in the cytosol, and ABA treatment regulates the nucleus-cytosol distribution of OsABIL2, suggesting a different mechanism for the activation of ABA signaling. Taken together, this study provides significant insights into rice ABA signaling and indicates the important role of OsABIL2 in regulating root development.
植物激素脱落酸(ABA)是植物中的关键胁迫信号。尽管ABA受体的鉴定在理解拟南芥ABA信号通路方面取得了重大进展,但关于单子叶植物(如水稻)的ABA信号传导仍有许多未解之谜。在此,我们报道了AtABI1和AtABI2在水稻中的同源基因OsABI-LIKE2(OsABIL2)在水稻ABA信号传导中起负向作用。OsABIL2的过表达不仅导致对ABA不敏感,还显著改变了包括气孔密度和根系结构在内的植物发育表型,这可能导致对干旱胁迫的超敏反应。OsABIL2在体外和体内均与OsPYL1、SAPK8和SAPK10相互作用,并且ABA结合的OsPYL1抑制了OsABIL2的磷酸酶活性。然而,与许多其他仅定位于细胞核的A类2C型蛋白磷酸酶(PP2C)不同,OsABIL2定位于细胞核和细胞质中。此外,OsABIL2主要在细胞质中与OsPYL1相互作用并共定位,ABA处理调节OsABIL2在细胞核 - 细胞质中的分布,这表明ABA信号激活存在不同机制。综上所述,本研究为水稻ABA信号传导提供了重要见解,并表明OsABIL2在调节根系发育中的重要作用。