[1] 王传琦, 孔稳稳, 李晶. 植物转录因子最新研究方法[J]. 生物技术通讯, 2013(1):118-123. [2] Kato H, Motomura T, Komeda Y, et al. Overexpression of the NAC transcription factor family gene ANAC036 results in a dwarf phenotype in Arabidopsis thaliana[J]. Journal of Plant Physiology, 2010, 167(1):571-577. [3] Lu M, Zhang DF, Shi YS, et al. Expression of SbSNAC1, a NAC transcription factor from sorghum, confers drought tolerance to transgenic Arabidopsis[J]. Plant Cell Tiss, 2013, 115(3):443-455. [4] Zhao T, Liang D, Wang P, et al. Genome-wide analysis and expression profiling of the DREB transcription factor gene family in Malus under abiotic stress[J]. Molecular Genetics and Genomics, 2012, 287(5):423-436. [5] Sun L, Zhang H, Li D, et al. Functions of rice NAC transcriptional factors, ONAC122 and ONAC131, in defense responses against Magnaporthe grisea[J]. Plant Molecular Biology, 2012, 81(1-2):41-56. [6] Li XL, Yang X, Hu YX, et al. A novel NAC transcription factor from Suaeda liaotungensis K. enhanced transgenic Arabidopsis drought, salt, and cold stress tolerance[J]. Plant Cell Rep, 2014, 33(5):767-778. [7] Yang X, Hu YX, Li XL, et al. Molecular characterization and function analysis of SlNAC2 in Suaeda liaotungensis K. [J]. Gene, 2014, 543(2):190-197. [8] Duan MR, Nan J, Liang YH, et al. DNA binding mechanism revealed by high resolution crystal structure of Arabidopsis thaliana WRKY1 protein[J]. Nucleic Acids Res, 2007, 35(4):1145-1154. [9] Tavares CP, Vernal J, Delena RA, et al. S-nitrosylation influences the structure and DNA binding activity of AtMYB30 transcription factor from Arabidopsis thaliana[J]. Biochimica et Biophysica Acta, 2014, 1844(2014):810-817. [10] Ling MM, Robinson BH. Approaches to DNA mutagenesis:an overview[J]. Anal Biochem, 1997, 254(2)157-178. [11] Puranik S, Bahadur RP, Srivastava PS, Prasad M. Molecular cloning and characterization of a membrane associated NAC family gene, SiNAC from foxtail mill[Setaria italica(L. )P. Beauv] [J]. Mol Biotechnol, 2011, 49(2):138-150. [12] Liu HX, Zhou XY, Dong N, et al. Expression of a wheat MYB gene in transgenic tobacco enhances resistance to Ralstonia solanacearum, and to drought and salt stresses[J]. Functional & Integrative Genomics, 2011, 11(3):431-443. [13] Sun P, Zhu X, Huang X, Liu JH. Overexpression of a stress-responsive MYB transcription factor of Poncirus trifoliata confers enhanced dehydration tolerance and increases polyamine biosynthesis[J]. Plant Physiol Biochem, 2014, 78(1):71-79. [14] Peng H, Cheng HY, Yu XW, et al. Characterization of a chickpea(Cicer arietinum L. )NAC family gene, CarNAC5, which is both developmentally- and stress-regulated[J]. Plant Physiol Biochem, 2009, 47(11-12):1037-1045. [15] Sun XL, Li Y, Cai H, et al. The Arabidopsis AtbZIP1 transcription factor is a positive regulator of plant tolerance to salt, osmotic and drought stresses[J]. Journal of-- Plant Research, 2012, 125(3):429-438. [16] Fields S, Song O. A novel genetic system to detect protein-protein interactions[J]. Nature, 1989, 340(6230):245-246. [17] 郑甲成, 徐兆师, 胡银岗, 等. 小麦DREB转录因子TaAIDFa的互作蛋白筛选[J]. 麦类作物学报, 2010, 30(2):189-193. [18] Li D, Li Y, Zhang L, et al. Arabidopsis ABA receptor RCAR1/PYL9 interacts with an R2R3-Type MYB transcription factor, AtMYB44[J]. Int J Mol Sci, 2014, 15(5):8473-8490. [19] Karimova G, Pidoux J, Ullmann A, et al. A bacterial two-hybrid system based on a reconstituted signal transduction pathway[J]. Proc Natl Acad Sci USA, 1998, 95(10):5752-5756. [20] Ladant D, Karimova G. Genetic systems for analyzing protein-protein interactions in bacteria[J]. Res Microbiol, 2000, 151(9):711-720. [21] 姜茜, 贾凌云. 蛋白质相互作用研究的新技术与新方法[J]. 中国生物化学与分子生物学报, 2008, 24(10):974-979. [22] Walter M, Chaban C, Schutze K, et al. Visualization of protein interaetions in living plant cells using bimolecular fluorescence complementation[J]. The Plant Journal, 2004, 40:428-438. [23] Grinberg AV, Hu CD, Kerppola TK. Visualization of Myc/Max/Mad family dimers and the competition for dimerization in living cells[J]. Mol Cell Biol, 2004, 24(10):4294-4308. [24] Kawarazaki T, Kimura S, Iizuka A, et al. A low temperature-inducible protein AtSRC2 enhances the ROS-producing activity of NADPH oxidase AtRbohF[J]. Biochim Biophys Acta, 2013, 1833(12):2775-2780. [25] Weis C, Pfeilmeier S, Glawischnig E, et al. Co-immunoprecipitation-based identification of putative BAX INHIBITOR-1-interacting proteins involved in cell death regulation and plant-powdery mildew interactions[J]. Mol Plant Pathol, 2013, 14(8):791-802. [26] Li XH, Zhang DY, Li HY, et al. EsDREB2B, a novel truncated DREB2-type transcription factor in the desert legume Eremosparton songoricum, enhances tolerance to multiple abiotic stresses in yeast and transgenic tobacco[J]. BMC Plant Biology, 2014, 14:44. [27] Lu M, Ying S, Zhang DF, et al. A maize stress responsive NAC transcription factor, ZmSNAC1, confers enhanced tolerance to dehydration in transgenic Arabidopsis[J]. Plant Cell Rep, 2012, 31(9):1701-1711. [28] Sun H, Huang X, Xu XJ, et al. ENAC1, a NAC Transcription factor, is an early and transient response regulator induced by abiotic stress in rice(Oryza sativa L. )[J]. Molecular Biotechnology, 2012, 52(2):101-110. [29] Liu T, Zhu S, Tang Q, Tang S. Identification of 32 full-length NAC transcription factors in ramie(Boehmeria nivea L. Gaud)and characterization of the expression pattern of these genes[J]. Molecular Genetics and Genomics, 2014, 289(4):675-684. [30] Cenci A, Guignon V, Roux N, Rouard M. Genomic analysis of NAC transcription factors in banana(Musa acuminata)and definition of NAC orthologous groups for monocots and dicots[J]. Plant Molecular Biology, 2014, 85(1-2):63-80. [31] Peng H, Cheng HY, Chen C, et al. A NAC transcription factor gene of chickpea(Cicer arietinum), CarNAC3, is involved in drought stress response and various developmental processes[J]. Journal of Plant Physiology, 2009, 166(17):1934-1945. [32] Tian DQ, Pan XY, Yu YM, et al. De novo characterization of the Anthurium transcriptome and analysis of its digital gene expression under cold stress[J]. BMC Genomics, 2013, 14:827. [33] Hu RB, Qi G, Kong YZ, et al. Comprehensive analysis of NAC domain transcription factor gene family in Populus trichocarpa[J]. BMC Plant Biology, 2010, 10:145. [34] Lacroix B, Citovsky V. A mutation in negative regulator of basal resistance WRKY17 of Arabidopsis increases susceptibility to Agrobacterium-mediated genetic transformation[J]. F1000Res, 2013, 2(33):doi:10. 12688/f1000. [35] Lu PL, Chen N, An R, et al. A novel drought-inducible gene, ATAF1, encodes a NAC family protein that negatively regulates the expression of stress-responsive genes in Arabidopsis[J]. Plant Molecular Biology, 2007, 663(2):289-305. [36] Paul P, Awasthi A, Rai AK, et al. Reduced tillering in Basmati rice T-DNA insertional mutant OsTEF1 associates with differential expression of stress related genes and transcription factors[J]. Functional & Integrative Genomics, 2012, 12(2):291-304. [37] Song SY, Chen Y, Chen J, et al. Physiological mechanisms underlying OsNAC5-dependent tolerance of rice plants to abiotic stress[J]. Planta, 2011, 234(2):331-345. [38] Bouaziz D, Pirrello J, Charfeddine M, et al. Overexpression of StDREB1 transcription factor increases tolerance to salt in transgenic potato plants[J]. Molecular Biotechnology, 2013, 54(3):803-817. [39] Takasaki H, Maruyama K, Kidokoro S, et al. The abiotic stress-responsive NAC-type transcription factor OsNAC5 regulates stress-inducible genes and stress tolerance in rice[J]. Mol Genet Genomics, 2010, 284(3):173-183. [40] Xiong H, Li J, Liu P, et al. Overexpression of OsMYB48-1, a novel MYB-related transcription factor, enhances drought and salinity tolerance in rice[J]. PLoS One, 2014, 9(3):e92913. [41] Yu XW, Peng H, Liu YM, et al. CarNAC2, a novel NAC transcrip-tion factor in chickpea(Cicer arietinum L. ), is associated with drought-response and various developmental processes in trans-genic Arabidopsis[J]. Plant Biol, 2014, 57(1):55-66. [42] Zhu JY, Sun Y, Wang ZY. Genome-wide identification of transcription factor-binding sites in plants using chromatin immunoprecipi-tation followed by microarray(ChIP-chip)or sequencing(ChIP-seq)[J]. Plant Signalling Networks, 2012, 876(1):173-188. [43] Xiao DC, Zhang ZJ, Xu YW, et al. Cloning and functional analysis of Phyllostachys edulis MYB transcription factor PeMYB2[J]. Yi Chuan, 2013, 35(10):1217-1215. |