[1]Hong M J. Wheat F-box protein recruits proteins and regulates their abundance during wheat spike development. Mol Biol Rep, 2012, 39: 9681–9696
[2]Hua Z H, Zou C, Shiu S H, Vierstra R D. Phylogenetic comparison of F-box (FBX) gene superfamily within the plant kingdom reveals divergent evolutionary histories indicative of genomic drift. PLoS One, 6: e16219
[3]Kuroda H, Shimada H, Shinozaki K. Classification and expression analysis of Arabidopsis F-box-containing protein genes. Plant Cell Physiol, 2002, 43: 1073–1085
[4]Jain M, Nijhawan A, Arora R, Agarwal P, Ray S, Sharma P, Kapoor S, Tyagi A K, Khurana J P. F-box proteins in rice. Genome-wide analysis, classification, temporal and spatial gene expression during panicle and seed development, and regulation by light and abiotic stress. Plant Physiol, 2007, 143: 1467–1483
[5]Lechner E, Vansiri A, Genschik P. F-box proteins everywhere. Curr Opin Plant Biol, 2006, 9: 631–638
[6]Somers D E, Kim W Y. The F-box protein ZEITLUPE confers dosage-dependent control on the circadian clock, photomor phogenesis, and flowering time. Plant Cell, 2004, 16: 769–782
[7]Imaizumi T, Schultz T F, Ho L A. FKF1F-BOX protein mediates cyclic degradation of a repressor of CONSTANS in Arabidopsis. Science, 2005, 309: 293–297
[8]Marrocco K, Zhou Y C, Bury E, Dieterle M, Funk M, Genschik P, Krenz M, Stolpe T, Kretsch T. Functional analysis of EID1, an F-box protein involved in phytochrome A-dependent light signal transduction. Plant J, 2006, 45: 423–438
[9]Chae E, Tan Q K, Hill T A. An Arabidopsis F-box protein acts as a transcriptional co-factor to regulate floral development. Development, 2008, 135: 1235–1245
[10]Wang X, Feng S, Nakayama N. The COP9 signalosome interacts with SCF UFO and participates in Arabidopsis flower development. Plant Cell, 2003, 15: 1071–1082
[11]Durfee T, Roe J L, Sessions R A. The F-box-containing protein UFO and AGAMOUS participate in antagonistic pathways governing early petal development in Arabidopsis. Proc Natl Acad Sci USA, 2003, 100: 8571–8576
[12]Eckardt N A. DOT/UFO emerges as a key factor in inflorescence patterning. Plant Cell, 2008, 20: 2003–2005
[13]Ebel M, Schaeffer A. Cyanide phytoremediation by water hyacinths (Eichhornia crassipes). Chemosphere, 2007, 66: 816–823
[14]Lata C, Gupta S, Prasad M. Foxtail millet: a model crop for genetic and genomic studies in bioenergy grasses. Crit Rev Biotechnol, 2013, 33: 328–343
[15]崔润丽, 智慧, 王永芳, 李伟, 李海权, 黄占景, 刁现民. 谷子DnaJ蛋白基因的克隆. 华北农学报. 2007, 22(4): 9–13
Cui R L, Zhi H, Wang Y F, Li W, Li H Q, Huang Z J, Diao X M. Cloning of DnaJ-like protein gene from foxtail millet. Acta Agric Boreali-Sin, 2007, 22(4): 9–13 (in Chinese with English abstract)
[16]杨希文, 胡银岗. 谷子DREB转录因子基因的克隆及其在干旱胁迫下的表达模式分析. 干旱地区农业研究. 2011, 29(5): 69–74
Yang X W, Hu Y G. Cloning of a DREB gene from foxtail millet (Setaria italica L.) and its expression during drought stress. Agric Res Arid Areas, 2011, 29(5): 69–74 (in Chinese with English abstract)
[17]Zhang J P, Liu T S, Zheng J, Jin Z, Zhu Y, Guo J F, Wang G Y. Cloning and characterization of a putative 12-oxophytodienoic acid reductase cDNA induced by osmotic stress in roots of foxtail millet. DNA Seq, 2007, 18: 138–144
[18]崔润丽, 智慧, 王永芳, 李伟, 李海权, 黄占景, 刁现民. 谷子3-磷酸甘油醛脱氢酶基因的克隆与结构分析. 华北农学报. 2009, 24(3): 10–14
Cui R L, Zhi H, Wang Y F, Li W, Li H Q, Huang Z J, Diao X M. Cloning and structure analysis of Foxtail Millet APDH gene. Acta Agric Boreali-Sin, 2009, 24(3): 10–14 (in Chinese with English abstract)
[19]Peng Y L, Zhang J P, Cao G Y. Overexpression of a PLD alpha 1 gene from Setaria italica enhances the sensitivity of Arabidopsis to abscisic acid and improves its drought tolerance. Plant Cell Rep, 2010, 29: 793–802
[20]赵晋锋, 余爱丽, 田岗, 杜艳伟, 郭二虎, 刁现民. 谷子CBL基因鉴定及其在干旱、高盐胁迫下的表达分析. 作物学报, 2013, 39: 360–367
Zhao J F, Yu A L, Tian G, Du Y W, Guo E H, Diao X M. Identification of CBL genes from foxtail millet (Setaria italica [L.] Beauv. ) and its expression under drought and salt stresses. Acta Agron Sin, 2013, 39: 360–367 (in Chinese with English abstract)
[21]张雁明, 王莉, 张彬, 王海岗, 彭锁堂, 李萍, 韩渊怀. 谷子ABF3基因对PEG胁迫的响应. 山西农业大学学报(自然科学版), 2013, 33(3): 191–196
Zhang Y M, Wang L, Zhang L, Wang H G, Peng S T, Li P, Han Y H. The response of ABF3 gene to PEG stress in Foxtail millet L. J Shanxi Agric Univ (Nat Sci Edn), 2013, 33(3): 191–196 (in Chinese with English abstract)
[22]Xu G, Ma H, Nei M, Kong H. Evolution of F-box genes in plants: different modes of sequence divergence and their relationships with functional diversification. Proc Natl Acad Sci USA, 2009, 106: 835–840
[23]Lescot M, Dehais P, Thijs G, Marchal K, Moreau Y, Van de Peer Y, Rouze P, Rombauts S. PlantCARE, a database of plant cis-acting regulatory elements and a portal to tools for in silico analysis of promoter sequences. Nucl Acids Res, 2002, 30: 325–327
[24]Bai C, Richman R. Human cyclin-F. EMBO J, 1994, 13: 6087–6098
[25]Buche C, Schafer E. eid1: A new arabidopsis mutant hypersensitive in phytochrome A-dependent high-irradiance responses. Plant Cell, 2000, 12: 547–558
[26]Koops P, Pelser S, Ignatz M. EDL3 is an F-box protein involved in the regulation of abscisic acid signalling in Arabidopsis thaliana. J Exp Bot, 2011, 62: 5547–5560
[27]Asada S, Ikeda A, Nagao R, Hama H, Sudo T, Fukamizu A, Kasuya Y, Kishi T. Oxidative stress-induced ubiquitination of RCAN1 mediated by SCF beta-TrCP ubiquitin ligase. Intl J Mol Med, 2008, 22: 95–104
[28]Ding Z H, Li S M, An X L, Liu X J, Qin H M, Wang D. Transgenic expression of MYB15 confers enhanced sensitivity to abscisic acid and improved drought tolerance in Arabidopsis thaliana. J Genet Genomic, 2009, 36: 17–29
[29]Jin J, Li C, Lv B, Ming F, Zhang W. New gene Oryza sativa MYB84 useful for improving rice plant varieties and high salt resistance in plants. Chinese, CN102676544-A, 2012-9-19
[30]Chen T, Liu J, Lei G, Liu Y F, Li Z G, Tao J J, Hao Y J, Cao Y R, Lin Q, Zhang W K, Ma B, Chen S Y, Zhang J S. Effects of tobacco ethylene receptor mutations on receptor kinase activity, plant growth and stress responses. Plant Cell Physiol, 2009, 50: 1636–1650
[31]Ye H Y, Du H, Tang N, Li X H, Xiong L Z. Identification and expression profiling analysis of TIFY family genes involved in stress and phytohormone responses in rice. Plant Mol Biol, 2009, 71: 291–305 |