Huang Lei, Hong Yongbo, Zhang Huijuan, Li Dayong, Song Fengming
National Key Laboratory for Rice Biology, Institute of Biotechnology, Zhejiang University, Hangzhou, 310058, People's Republic of China.
BMC Plant Biol. 2016 Sep 20;16(1):203. doi: 10.1186/s12870-016-0897-y.
The NAC (NAM, ATAF and CUC) transcriptional factors constitute a large family with more than 150 members in rice and some of them have been demonstrated to play crucial roles in plant abiotic stress response. Here, we report the characterization of a rice stress-responsive NAC gene, ONAC095, and the exploration of its function in drought and cold stress tolerance.
Expression of ONAC095 was up-regulated by drought stress and abscisic acid (ABA) but down-regulated by cold stress. ONAC095 protein had transactivation activity and the C2 domain in C-terminal was found to be critical for transactivation activity. Transgenic rice lines with overexpression of ONAC095 (ONAC095-OE) and dominant chimeric repressor-mediated suppression of ONAC095 (ONAC095-SRDX) were generated. The ONAC095-OE plants showed comparable phenotype to wild type under drought and cold stress conditions. However, the ONAC095-SRDX plants displayed an improved drought tolerance but exhibited an attenuated cold tolerance. The ONAC095-SRDX plants had decreased water loss rate, increased proline and soluble sugar contents, and up-regulated expression of drought-responsive genes under drought condition, whereas the ONAC095-SRDX plants accumulated excess reactive oxygen species, increased malondialdehyde content and down-regulated expression of cold-responsive genes under cold condition. Furthermore, ONAC095-SRDX plants showed an increased ABA sensitivity, contained an elevated ABA level, and displayed altered expression of ABA biosynthetic and metabolic genes as well as some ABA signaling-related genes.
Functional analyses through dominant chimeric repressor-mediated suppression of ONAC095 demonstrate that ONAC095 plays opposite roles in drought and cold stress tolerance, acting as a negative regulator of drought response but as a positive regulator of cold response in rice.
NAC(NAM、ATAF和CUC)转录因子构成一个大家族,在水稻中有150多个成员,其中一些已被证明在植物非生物胁迫响应中起关键作用。在此,我们报道了一个水稻胁迫响应NAC基因ONAC095的特征,并探索了其在耐旱和耐寒性方面的功能。
ONAC095的表达受干旱胁迫和脱落酸(ABA)上调,但受冷胁迫下调。ONAC095蛋白具有反式激活活性,并且发现C端的C2结构域对反式激活活性至关重要。构建了ONAC095过表达(ONAC095-OE)和显性嵌合阻遏物介导的ONAC095抑制(ONAC095-SRDX)的转基因水稻株系。ONAC095-OE植株在干旱和冷胁迫条件下表现出与野生型相当的表型。然而,ONAC095-SRDX植株表现出耐旱性提高,但耐寒性减弱。ONAC095-SRDX植株在干旱条件下水分流失率降低,脯氨酸和可溶性糖含量增加,干旱响应基因的表达上调,而ONAC095-SRDX植株在冷胁迫条件下积累了过量的活性氧,丙二醛含量增加,冷响应基因的表达下调。此外,ONAC095-SRDX植株表现出对ABA的敏感性增加,ABA水平升高,ABA生物合成和代谢基因以及一些ABA信号相关基因的表达发生改变。
通过显性嵌合阻遏物介导的ONAC095抑制进行的功能分析表明,ONAC095在耐旱和耐寒性中发挥相反作用,在水稻中作为干旱响应的负调节因子,但作为冷响应的正调节因子。