作物学报 ›› 2009, Vol. 35 ›› Issue (6): 1156-1160.doi: 10.3724/SP.J.1006.2009.01156
程立宝1,李淑艳3,景新明2,何光源1,*
CHENG Li-Bao1,LI Shu-Yan2,HE Guang-Yuan1*
摘要:
低温是种子萌发过程中常见的自然灾害,在我国北方经常发生,导致种子萌发率较差、降低植株活力等后果。利用cDNA-AFLP技术从低温(4℃)吸胀24 h的抗低温吸胀大豆品种中黄22 (低温吸胀24 h对萌发率无影响的品种)中分离出一个基因片段,命名为GMCHI (GenBank No. EU699765),通过RACE方法得到全长为387 bp的cDNA序列。在NCBI数据库中的查询表明, GMCHI基因和数据库记录的基因序列同源性较低,因此可以断定GMCHI是在大豆中被发现的新基因。半定量RT-PCR显示GMCHI受ABA和PEG诱导。该基因与PET30A连接后转入原核细胞,经过IPTG诱导,6% SDS-PAGE电泳条带说明,GMCHI在大肠杆菌中能够表达。把诱导表达和非诱导表达的菌落在–20℃下2 h后,移至37℃培养20 d,发现对照的菌落完全死亡,而诱导表达GMCHI的菌落只有部分死亡,并长出新菌落。RT-PCR检测表明新菌落携带GMCHI基因,证明GMCHI基因在大肠杆菌中的表达提高了低温耐性。
[1] Morris L L. Chilling Injury of Horticultural Crops. Hort Sci, 1982, 2: 161–171 [2] Thomashow M F. Plant cold acclimation: freezing tolerance genes and regulatory mechanisms. Annu Rev Plant Physiol Plant Mol Biol, 1999, 50: 571–599 [3] Rohde P, Hincha D K, Heyer A G. Heterosis in the freezing tolerance of crosses between two Arabidopsis thaliana accessions (Columbia-0 and C24) that show differences in non-acclimated and acclimated freezing tolerance. Plant J, 2004, 38: 790–799 [4] Knight H, Veale E L, Warren G J, Knight M R. The sfr6 mutant of Arabidopsis is defective in transcriptional activation via CBF/DREB1 and DREB2 and shows sensitivity to osmotic stress. Plant J, 1999, 34: 395–406 [5] Kim J C, Lee S H, Cheong Y H, Yoo C M, Lee S I, Chun H J, Yun D J, Hong J C, Lee S Y, Lim C O, Cho M J. A novel cold-inducible zinc finger protein from soybean, SCOF-1, enhances cold tolerance in transgenic plants. Plant J, 2001, 25: 247–259 [6] Riera M, Valon C, Fenzi F, Giraudat J, Leung J. The genetics of adaptive responses to drought stress: Abscisic acid dependent and abscisic acid-independent signaling components. Physiol Plant, 2005, 123: 111–119 [7] Bramlage W J, Leopold A C, Parrish D T. Chilling stress to soybeans during imbibition. Plant Physiol, 1978, 61: 525–529 [8] Leopold A C. Temperature effect on soybean imbibition and leakage. Plant Physiol, 1980, 65: 1096–1098 [9] Julia B, Jean J L, Isabelle G, Benoit L V, Sylvie W M, Guillaume L, Alice L B N. Transcriptome profiling uncomers metabolic and regulatory processes occurring during the transition from desiccation-sensitive to desiccation –tolerant stages in medicago truncatula seeds. Plant J, 2006, 47: 735–750 [10] Umezawa T, Mizuno K, Fujimura T. Discrimination of genes expressed in response to the ionic or osmotic effect of salt stress in soybean with cDNA-AFLP. Plant Cell Environ, 2002, 25: 1617–1625 [11] Liang P, Zhang C K, Robert C E, Fenny D, William A D. Identification of cold acclimated genes in leaves of Citrus unshiu by mRNA differential display. Gene, 2005, 395: 111–118 [12] Kasuga M, Miura S, Shinozaki K, Yamaguchi-Shinozaki K. A combination of the Arabidopsis DREB1A gene and stress-inducible rd29A promoter improved drought- and low-temperature stress tolerance in tobacco by gene transfer. Plant Cell Physiol, 2004, 45: 346–350 [13] Kirsten R, Jangle O, Sarah J G, Dainel G Z, Oliver S, Michael F T. Arabidopsis CBF1 overexpression induces COR genes and enhances freezing tolerance. Science, 1998, 280: 104–106 [14] Henriksson K N, Trewavas A J. The effect of short-term low-temperature treatment on gene expression in Arabidopsis correlates with change in intracellular Ca2+ levels. Plant Cell Environ, 2003, 26: 485–496 [15] Jonathan T, Vaniel G Z, Heather A, Van B, Sarah F, Michael F T. Roles of the CBF2 and ZAT12 transcription factors in configuring the low temperature transcription of Arabidopsis. Plant J, 2005, 41: 195–211 |
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