期刊文献+

巴西橡胶树膜结合NAC转录因子HbNTL1的克隆及生物信息学分析 被引量:4

Cloning and Bioinformatics Analysis of a Membrane-bound NAC Transcription Factor Gene HbNTL1 from Hevea brasiliensis
在线阅读 下载PDF
导出
摘要 根据巴西橡胶树胶乳cDNA文库中筛选到的NAC EST序列,克隆了橡胶树膜结合NAC转录因子,HbNTL1的cDNA和基因组DNA序列。生物信息学分析显示HbNTL1基因包含6个外显子和5个内含子,开放阅读框(ORF)为1704bp,编码了567个氨基酸。HbNTL1编码蛋白的相对分子量为62.52kDa,理论等电点PI为4.62,N-端具有保守的NAC结构域,高度变异的C-端有一个跨膜结构域(TM)。序列比对和系统进化分析表明,HbNTL1蛋白属于NAC转录因子家族中的NAC2亚族,推测其可能与橡胶树生长发育和胁迫应答有关。 The NAC(NAM,ATAF1,-2,and CUC2) gene family encodes a large family of plant-specific transcription factors that play diverse roles in plant development and stress regulation.Membrane-bound NAC transcription factors are a group of NAC transcription factors with transmembrane domain.In this study,the sequence of a membrane-bound NAC transcription factor,HbNTL1 was cloned from cDNA and genomic DNA based on the EST sequence of NAC isolated from the cDNA libraries of Hevea brasiliensis latex.Bioinformatics analysis showed that HbNTL1 contained 6 exons and 5 introns within the genomic DNA sequence and had an open reading frame of 1704 bp encoding a protein with 567 amino acids.The estimated molecular mass isoelectric point of HbNTL1 was 62.52 kDa and 4.62 respectively.There was a conserved NAC domain in the N-terminus and transmembrane domain(TM) in the highly divergent C-terminus.Sequence alignment and phylogenetic analysis revealed that HbNTL1 was a member of NAC transcription factor family which belonged to NAC2 subgroup and probably played key roles in the development and stress responses in rubber tree.
出处 《中国农学通报》 CSCD 2012年第31期7-14,共8页 Chinese Agricultural Science Bulletin
基金 中国热带农业科学院橡胶研究所基本科研业务费专项资金"橡胶树胶乳表达植物特异转录因子的研究"(1630022011024)
关键词 巴西橡胶树 膜结合NAC转录因子 基因克隆 生物信息学分析 Hevea brasiliensis membrane-bound NAC gene clone bioinformatics analysis
  • 相关文献

参考文献25

  • 1Nuruzzaman M,Manimekalai R,Sharoni AM et al.Genome-wide analysis of NAC transcription factor family in rice[J] .Gene,2010,465:30-44.
  • 2Rushton PJ,Bokowiec MT,Han SC et al.Tobacco transcription factors: novel insights into transcriptional regulation in the Solanaceae[J] .Plant Physiol,2008,147:280-295.
  • 3Hu R,Qi G,Kong Y et al.Comprehensive analysis of NAC domain transcription factor gene family in Populus Trichocarpa[J] .BMC Plant Biol,2010,10:145-178.
  • 4Le DT,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] .DNA Res,2011,18:263-276.
  • 5Nakashima K,Takasaki H,Mizoi J et al.NAC Transcription Factors in Plant Abiotic Stress Responses[J] .BBA-Gene Regul Mech,2012,1819:97-103.
  • 6Seo PJ,Kim SG,Park CM,2008.Membrane-bound transcription factors in plants[J] .Trends Plant Sci,2008,13:550-556.
  • 7Kim SG,Lee S,Seo PJ et al.Genome-scale screening and molecular characterization of membrane-bound transcription factors in Arabidopsis and rice[J] .Genomics,2010,95:56-65.
  • 8Tran L,Nishiyama R,Yamaguchi-Shinozaki K et al.Potential utilization of NAC transcription factors to enhance abiotic stress tolerance in plants by biotechnological approach[J] .GM crops,2010,1:32-39.
  • 9Kim SY,Kim SG,Kim YS et al.Exploring membrane-associated NAC transcription factors in Arabidopsis: implications for membrane biology in genome regulation[J] .Nucleic Acids Res,2006,35:203-213.
  • 10Kim YS,Kim SG,Park JE et al.A membrane-bound NAC transcription factor regulates cell division in Arabidopsis[J] .Plant Cell,2006,18:3132-3144.

二级参考文献35

  • 1张勇,张守攻,齐力旺,陈小强,陈瑞阳,宋文芹.杨树——林木基因组学研究的模式物种[J].植物学通报,2006,23(3):286-293. 被引量:60
  • 2段翠芳,聂智毅,曾日中.橡胶粒子膜蛋白双向电泳体系的建立和质谱初步分析[J].热带作物学报,2006,27(3):22-29. 被引量:17
  • 3Koyama T, Steinbuchel A. Biopolymers. Volume 2//Polyisoprenoids. Munster: WILEY-VCH Verlag GmbH & Co. KGaA, 2004: 73-81.
  • 4Cornish K, Wood D F, Windle J J. Rubber particles from four different species examined by transmission electron microscopy and electron paramagnetic resonance spin labeling, are found to consist of a homogeneous rubber core enclosed by a contiguous, monolayer biomembrane. Planta, 1999, 210(1): 85-96.
  • 5Sando T, Takaoka C, Mukai Y, Yamashita A, Hattori M, Ogasawara N, Fukusaki E, Kobayashi A. Cloning and characterization of mevalonate pathway genes in a natural rubber producing plant, Hevea brasiliensis. Bioscience, BiotechnologyandBiochemistry, 2008, 72(8): 2049-2060.
  • 6Chye M L, Tan C T, Chua N H. Three genes encode 3-hydroxy-3- methylglutaryl-coenzyme A reductase in Hevea brasiliensis: hmgl and hmg3 are differentially expressed. Plant Molecular Biology, 1992,19(3): 473-484.
  • 7Adiwilaga K, Kush A. Cloning and characterization of cDNA encoding farnesyl diphosphate synthase from rubber tree (Hevea brasiliensis). Plant Molecular Biology, 1996, 30(5): 935-946.
  • 8Dennis M S, Light D R, Rubber elongation factor from Hevea brasiliensis: Identification, characterization, and role in rubber biosynthesis. Journal of Biological Chemistry, 1989, 264(31): 18608-18617.
  • 9Dennis M S, Henzel W J, Bell J, Kohr W, Light D R. Amino acid sequence of rubber elongation factor protein associated with rubber particles in Hevea latex. Journal of Biological Chemistry, 1989, 264(31): 18618-18626.
  • 10Oh S K, Kang H, Shin D H, Yang J, Chow K S, Yeang H Y, Wagner B,Breiteneder H, Han K H. Isolation, characterization, and functional analysis of a novel cDNA clone encoding a small rubber particle protein from Hevea brasiliensis. Journal of Biological Chemistry, 1999, 274(24): 17132-17138.

共引文献122

同被引文献106

  • 1AI Abdallat M.A., Ayad J.Y., Abu Elenein J.M., A1 Ajlouni Z., and Harwood W.A., 2014, Overexpression of the transcrip- tion factor HvSNA C1 improves drought tolerance in barley (Hordeum vulgare L.), Mol. Breeding, 33(2): 401-414.
  • 2Cenci A., Guignon V., Roux N., and Rouard M., 2014, Genomic analysis of NAC transcription factors in banana (Musa acuminata) and definition of NAC orthologous groups for monocots and dicots, Plant Mol. Biol., 85(1-2): 63-80.
  • 3Chen X., Wang Y.F., Lv B., Li J., Luo L.Q., Lu S.C., Zhang X., Ma H., and Ming F., 2014, The NAC family transcription factor OsNAP confers abiotic stress response through the A- BA pathway, Plant Cell Physiol., 55 (3): 604-619.
  • 4Hao B.Z., and Wu J.L., 2000, Laticifer differentiation in Hevea brasiensis: Induction by exogenous jasmonic acid and linolenic acid, Ann. Bot., 85(1): 37-43.
  • 5Jiang X.Q., Zhang C.Q., Lti P.T., Jiang G.M., Liu X.W., Dai F. W., and Gao J., 2014, RhNAC3, a stress-associated NAC transcription factor, has a role in dehydration tolerance through regulating osmotic stress-related genes in rose petals, Plant Biotechnol. J., 12(1): 38-48.
  • 6Kim H.J., Hong S.H., Kim Y.W., Lee I.H., Jun J.H., Phee B.K., Rupak T., Jeong H., Lee Y., Hong B.S., Nam H.G., Woo H. R., and Lim P.O., 2014, Gene regulatory cascade of senes- cence-associated NAC transcription factors activated by ETHYLENE-INSENSITIVE2-mediated leaf senescence signalling in Arabidopsis, J. Exp. Bot., 65(14): 4023-4036.
  • 7Kim S.G., and Park C.M., 2007, Membrane-mediated salt stress signaling in flowering time control, Plant Signal. Behave., 2 (6): 517-518.
  • 8Li X,L., Yang X., Hu Y.X., Yu X.D., and Li Q.L., 2014, A novel NAC transcription factor from Suaeda liaotungensis K. en- hanced transgenic Arabidopsis drought, salt, and cold stress tolerance, Plant Cell Rep., 33(5): 767-778.
  • 9Li P., Zhou H., Shi X.L., Yu B., Zhou Y., Chen S.L., Wang Y.F., Peng Y., Meyer R.C., Smeekens S.C., and Teng S., 2014, The ABI4-induced Arabidopsis ANAC060 transcription factor attenuates ABA signaling and renders seedlings sugar insensitive when present in the nucleus, PLoS genet., 10(3): e1004213.
  • 10Liu G.Z., Li X.L., Jin S.X., Liu X.Y., Zhu L.F., Nie Y.C., and Zhang X.L., 2014, Overexpression of rice NAC gene SNAC1 improves drought and salt tolerance by enhancing root development and reducing transpiration rate in trans- genic cotton, PloS One, 9(1): e86895.

引证文献4

二级引证文献20

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