期刊文献+

番茄NAC转录因子SlNAC80的克隆及表达分析 被引量:7

Cloning and Expression Analysis of a NAC Transcription Factor Sl NAC80 in Tomato
下载PDF
导出
摘要 为进一步明确该基因的分子特征及表达特性,通过RT-PCR从番茄中克隆了低温响应NAC转录因子SlNAC80,该基因开放阅读框1 023 bp,编码340个氨基酸。Sl NAC80蛋白相对分子量为38.19 k Da,等电点为5.27,N-端具有典型的NAC保守结构域,包含A、B、C、D、E 5个亚结构域。实时荧光定量PCR(q PCR)分析表明,Sl NAC80在番茄各组织中均有表达,以在绿果和衰老叶中的表达量最高,在红熟果中的表达量最低。对启动子区序列进行预测分析发现,Sl NAC80启动子区含有许多响应激素(ABA、GA、SA及ETH)和逆境(低温、脱水及盐胁迫)的顺式作用元件,如ERELEE4、GARE1OSREP1、LTRE1HVBLT49、GT1GMSCAM4、MYB1AT、MYCATERD1、MYCATRD22、WBOXNTERF3及WRKY71OS等。q PCR分析结果也证实该基因的表达受低温、干旱、高盐、甲基紫精、ABA及乙烯处理诱导。这些结果表明,Sl NAC80可能在番茄非生物逆境应答中发挥重要调控作用。 To further understand the molecular characterization and expression patterns of SlNAC80,we cloned this gene from tomato SlNAC80 contains an open reading frame of 1 023 bp encoding a protein of 340 amino acids . The molecular weight and isoelectric point of SlNAC 80 protein was 38.19 kDa and 5.27,respectively.SlNAC80 contains a typical NAC domain in the N-terminal,which consists of five subdomains (A to E).Quantitative Real-time PCR (qPCR) analysis showed that SlNAC80 was expressed in all tested tomato tissues ,with the highest in green fruits and old leaves ,and the lowest in red ripe fruits .Promoter sequence analysis indicated that there were many cis-acting regulatory elements involved in response to hormones (ABA,GA,SA and ETH) and abiotic stresses (cold, dehydration and salt stresses ), such as ERELEE4, GARE1OSREP1, LTRE1HVBLT49, GT1GMSCAM4, MYB1AT,MYCATERD1,MYCATRD22,WBOXNTERF3,WRKY71OS,and etc.The qPCR analysis also demonstra-ted that the expression of SlNAC80 was induced by cold,drought,salt,methyl viologen,ABA and ethephon treat-ments .These results suggest that SlNAC80 may play important roles in regulating abiotic stress responses in tomato .
出处 《华北农学报》 CSCD 北大核心 2015年第1期77-83,共7页 Acta Agriculturae Boreali-Sinica
基金 国家自然科学基金项目(31301789) 国家高技术研究发展计划(“863”计划)项目(2012AA100104)
关键词 番茄 NAC转录因子 基因克隆 表达分析 非生物胁迫 Tomato NAC transcription factor Gene cloning Expression analysis Abiotic stress
  • 相关文献

参考文献24

  • 1Puranik S, Sahu P P, Srivastava P S. NAC proteins: regu- lation and role in stress tolerance [ J ]. Trends in Plant Sci- ence ,2012,17 ( 6 ) :369 - 381.
  • 2Dung T L, Nishiyama R, Watanabe Y, et al. Genome-wide survey and expression analysis of the plant-specific NAC transcription factor family in soybean during development and dehydration stress [ J ]. D NA Research,2011,18 ( 4 ) : 263 - 276.
  • 3Nuruzzaman M, Manimekalai R, Sharoni A M, et al. Ge- nome-wide analysis of NAC transcription factor family in rice [ J ]. Gene, 2010,465 ( 1 - 2 ) : 30 - 44.
  • 4Hu R B, Qi G, Kong Y Z,et al. Comprehensive analysis of NAC domain transcription factor gene family in populus trichocarpa [ J ]. B M C Plant Biology, 201 0, 10 : 145.
  • 5Cenci A, Guignon V, Roux N, et al. Genomic analysis of NAC transcription factors in banana (Musa acuminata) and definition of NAC orthologous groups for monocots and di- cots [ J ]. Plant Molecular Biology,2014,85 ( 1 - 2) :63 - 80.
  • 6杨晓娜,田云,卢向阳.NAC转录因子在植物生长发育中的调控作用[J].化学与生物工程,2014,31(1):1-5. 被引量:10
  • 7Li W,Huang G Q,Zhou W,et al. A cotton (Gossypium hir- sutum) gene encoding a NAC transcription factor is involved in negative regulation of plant xylem development[J]. Plant Physiology and Biochemistry,2014,83C :134- 141.
  • 8Xu Z Y,Kim S Y,Hyeon D Y,et al. The Arabidopsis NAC transcription factor ANAC096 cooperates with bZIP-Type transcription factors in dehydration and osmotic stress re- sponses [ J ]. Plant Cell, 2013,25 ( 11 ) : 4708 - 4724.
  • 9Liu G Z,Li X E,Jin S X,et al. Overexpression of rice NAC gene SNAC1 improves drought and salt tolerance by enhan- cing root development and reducing transpiration rate in transgenic cotton[ J]. PLoS ONE ,2014,9 ( 1 ) : e86895.
  • 10Chen X, Wang Y F, Lv B, et al. The NAC family tran- scription factor OsNAP confers abiotic stress response through the ABA pathway [ J ]. Plant and Cell Physiolo- gy.2014.55(3) .604 - 619.

二级参考文献112

  • 1赵世杰.植物生理学实验指导[M].北京:中国农业科技出版社,1999..
  • 2武斌,李新海,肖木辑,谢传晓,郝转芳,李明顺,张世煌.53份玉米自交系的苗期耐旱性分析[J].中国农业科学,2007,40(4):665-676. 被引量:75
  • 3Riechmann J L,Heard J,Martin G,et al. Arabidopsis transcription factors: genome-wide comparative analysis among eukaryotes [J]. Science, 2000,290(5499) :2105-2110.
  • 4Aida M,Ishida T,Fukaki H,et al. Genes involved in organ separation in A rob idops is : an analysis of the cup-shaped cotyledon mutant [J]. The Plant Cell, 1997,9(6): 841-857.
  • 5Souer E, van Houwelingen A, Kloos D, et al. The no apical meristem gene of petunia is required for pattern formation in embryos and flowers and is expressed at meristem and primordia boundaries [J]. Cell, 1996, 85( 2): 159-170.
  • 6Aida M, Ishida T, Tasaka M. Shoot apical meristem and cotyledon formation during Arabidopsis embryogenesis: interaction among the cup-shaped cotyledon and shoot meristemless genes [J]. Development, 1999,126(8): 1563-1570.
  • 7Ooka H , Satoh K, Doi K, et al. Comprehensive analysis of NAC family genes in Oryza sativa and Arabidopsis thaliana [J]. DNA Research,2003, 10(6) :239-247.
  • 8Olsen A N ,Ernst H A,Leggio L L,et al. NAC transcription factors: structurally distinct, functionally diverse [J]. Trends in Plant Science,2005 ,10(2): 79-87.
  • 9Ko E, Kim K H, Kim S H, et al. The relationship among country of origin, brand equity and brand loyalty: comparison among USA, China and Korea [J]. Journal of Global Academy of Marketing, 2009, 19( 1) :47-58.
  • 10Weir I,Lu J,Cook H,et al. Cupuliformis establishes lateral organ boundaries in A ntirrhinum [J]. Development, 2004, 131 (4): 915-922.

共引文献78

同被引文献118

引证文献7

二级引证文献40

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部