• 中国中文核心期刊
  • 中国科学引文数据库(CSCD)核心库来源期刊
  • 中国科技论文统计源期刊(CJCR)
  • 第二届国家期刊奖提名奖

留言板

尊敬的读者、作者、审稿人, 关于本刊的投稿、审稿、编辑和出版的任何问题, 您可以本页添加留言。我们将尽快给您答复。谢谢您的支持!

姓名
邮箱
手机号码
标题
留言内容
验证码

刚毛柽柳富含甘氨酸RNA结合蛋白ThGRP1基因克隆与表达分析

姜波 高彩球 王玉成 于丽丽 杨传平

引用本文:
Citation:

刚毛柽柳富含甘氨酸RNA结合蛋白ThGRP1基因克隆与表达分析

  • 基金项目:

    国家自然科学基金面上项目(30972386);东北林业大学研究生科技创新项目(000-41110710)

  • 中图分类号: S793.5

Cloning and Expression Analysis of A Glycine-rich RNA-binding Protein Gene from Tamarix hispida

  • CLC number: S793.5

  • [1]

    Kwak K J, Kim Y O, Kang H. Characterization of transgenic Arabidopsis plants overexpressing GR-RBP4 under high salinity, dehydration, or cold stress [J]. J Exp Bot, 2005, 56(421): 3007-3016
    [2]

    Gómez J, Sánchez-Martínez D, Stiefel V, et al. A gene induced by the plant hormone abscisic acid in response to water stress encodes a glycine-rich protein [J]. Nature, 1988, 334(6179): 262-264
    [3]

    Van Nocker S, Vierstra R D. Two cDNAs from Arabidopsis thaliana encode putative RNA binding proteins containing glycine-rich domains[J]. Plant Molecular Biology, 1993, 21(4): 695-699
    [4]

    Carpenter C D, Kreps J A, Simon A E. Genes encoding glycine-rich Arabidopsis thaliana proteins with RNA-binding motifs are influenced by cold treatment and an endogenous circadian rhythm[J]. Plant Physiology, 1994, 104(3): 1015-1025
    [5]

    Hirose T, Sugita M, Sugiura M. cDNA structure, expression and nucleic-acid binding properties of three RNA-binding proteins in tobacco: occurrence of tissue alternative splicing[J]. Nucleic Acids Research, 1993, 21(17): 3981-3987
    [6]

    Moriguchi K, Sugita M, Sugiura M. Structure and subcellular localization of a small RNA-binding protein from tabacco[J]. The Plant Journal, 1997, 12(1): 215-212
    [7]

    Dunn M A, Brown K, Lightowlers R, et al. A lowtemperature-responsive gene from barley encodes a protein with single-stranded nucleic acid-binding activity which is phosphorylatedin vitro[J]. Plant Molecular Biology, 1996, 30(5): 947-959
    [8]

    Molina A, Mena M, Carbonero P, et al. Differential expression of pathogen-responsive genes encoding two types of glycine-rich proteins in barley[J]. Plant Molecular Biology, 1997, 33(5): 803-810
    [9]

    Bergeron D, Beauseigle D, Bellemare G. Sequence and expression of a gene encoding a protein with RNA-binding and glycine-rich domains in Brassica napus[J]. Biochimica et Biophysca Acta, 1993, 1216(1):123-125
    [10]

    Horvath D P, Olson P A. Cloning and characterization of coldregulated glycine-rich RNA-binding protein genes from leafy spurge (Euphorbia esula L.) and comparison to heterologous genomic clones[J]. Plant Molecular Biology, 1998, 38(4):531-538
    [11]

    Richard S, Drevet C, Jouanin L, et al. Isolation and characterization of a cDNA clone encoding a putative white spruce glycine-rich RNA binding protein[J]. Gene, 1999, 240(2): 379-388
    [12]

    Stephen J R, Dent K C, Finch-Savage W E. A cDNA encoding a cold-induced glycine-rich RNA binding protein from Prunus avium expressed in embryonic axes[J]. Gene, 2003, 320(27): 177-183
    [13]

    Ferullo J M, Ve'zina L P, Rail J, et al.. Differential accumulation of two glycinerich proteins during cold-acclimation alfalfa[J]. Plant Molecular Biology, 1997, 33(4): 625-633
    [14] 冯 缨, 尹林克. 柽柳属植物镜下器官特征描述及分类学意义[J]. 干旱区研究, 2000, 17(3): 40-45

    [15] 高彩球. NaHCO3胁迫下刚毛柽柳基因表达谱的建立及相关基因的克隆 .哈尔滨:东北林业大学,2007

    [16] 王玉成, 杨传平, 姜 静. 紫丁香、糖槭总RNA的快速提取方法[J]. 东北林业大学学报, 2003, 29(6): 90-91

    [17]

    Livak K J, Schmittgen T D. Analysis of relative gene expression data using real-time quantitative PCR and the 2(-Delta Delta C(T)) Method [J]. Methods, 2001, 25(4): 402-408
    [18] 陈万利, 刘宗旨, 李文华. 植物富含甘氨酸蛋白质(GRP)及其基因研究进展[J]. 东北农业大学学报, 2005, 36(4): 512-519

    [19]

    Ringli C, Keller B, Ryser U. Glycine-richu proteins as structural components of plant cell walls[J]. Cell Mol Life Sci, 2001, 58(10): 1430-1441
    [20]

    Lorkovic Z J. Role of plant RNA-binding proteins in development, stress response and genome organization Trends [J]. Plant Sci, 2009, 14(4): 229-236
    [21]

    Kim J Y, Park S J, Jang B, et al. Functional characterization of a glycine-rich RNA-binding protein 2 in Arabidopsis thaliana under abiotic stress conditions[J]. Plant J, 2007, 50(3): 439-451
    [22]

    Kim J S, Jung H J, Lee H J, et al. Glycine-rich RNA-binding protein 7 affects abiotic stress responses by regulating stomata opening and closing in Arabidopsis thaliana[J]. Plant J, 2008, 55(3): 455-466
    [23]

    Kim Y O, Kim J S, Kang H. Cold-inducible zinc finger-containing glycine-rich RNA-binding protein contributes to the enhancement of freezing tolerance in Arabidopsis thaliana[J]. Plant J, 2005, 42(6): 890-900
    [24]

    Aneeta, Sanan-Mishra N, Tuteja N, et al. Salinity- and ABA-induced up-regulation and light-mediated modulation of mRNA encoding glycine-rich RNA-binding protein from Sorghum bicolor[J]. Biochem Biophys Res Commun, 2002, 296(5): 1063-1068
    [25]

    Nomata T, Kabeya Y, Cloning S N. characterization of glycine-rich RNA-binding protein cDNAs in the moss Physcomitrella patens[J]. Plant Cell Physiol, 2004, 45(1): 48-56
    [26]

    Shinozuka H, Hisano H, Yoneyama S, et al. Gene expression and genetic mapping analyses of a perennial ryegrass glycine-rich RNA-binding protein gene suggest a role in cold adaptation[J]. Mol Genet Genomics, 2006, 275(4): 399-408
  • [1] 赵震杨桂燕张凤娇高彩球 . 刚毛柽柳 TheIF1A 基因的互作蛋白及其表达模式分析. 林业科学研究, 2015, 28(1): 17-22.
    [2] 林琳李健李慧玉穆怀志姜静 . 逆境胁迫下柽柳脂质转运蛋白基因 (ThLTP)的克隆与功能初步分析. 林业科学研究, 2012, 25(4): 492-499.
    [3] 邹全程唐绯绯刘中原高彩球 . 瞬时过表达ThCBL4基因提高刚毛柽柳耐盐能力. 林业科学研究, 2018, 31(3): 60-67. doi: 10.13275/j.cnki.lykxyj.2018.03.009
    [4] 宣磊王芝权殷云龙华建峰 . 中山杉406ThSHR3基因的克隆、表达及蛋白互作研究. 林业科学研究, 2021, 34(4): 32-39. doi: 10.13275/j.cnki.lykxyj.2021.04.004
    [5] 及晓宇李子义卢惠君聂显光王玉成 . 刚毛柽柳ThbHLH1转录因子识别的顺式作用元件的鉴定. 林业科学研究, 2018, 31(5): 42-49. doi: 10.13275/j.cnki.lykxyj.2018.05.006
    [6] 单雪萌王思宁朱成磊高志民 . 毛竹 PeCPD 基因克隆与表达分析. 林业科学研究, 2019, 32(5): 58-66. doi: 10.13275/j.cnki.lykxyj.2019.05.008
    [7] 余义勋张俊卫孙振元包满珠 . 香石竹ACC氧化酶基因的克隆与植物表达载体构建. 林业科学研究, 2002, 15(3): 256-260.
    [8] 史倩倩周琳李奎王雁 . 云南野生黄牡丹PlbHLH3转录因子基因的克隆与表达. 林业科学研究, 2015, 28(4): 488-496.
    [9] 王江英范正琪殷恒福李辛雷吴斌李纪元 . 杜鹃红山茶CaAPX基因的克隆、表达及功能分析. 林业科学研究, 2016, 29(4): 471-479.
    [10] 安静万友名马宏刘雄芳张秀姣曹毓蓉李正红 . 地涌金莲MlCYP734A6基因的克隆与表达分析. 林业科学研究, 2021, 34(3): 37-45. doi: 10.13275/j.cnki.lykxyj.2021.03.004
    [11] 易敏张守攻谢允慧孙晓梅 . 日本落叶松咖啡酸-O-甲基转移酶基因 LkCOMT的克隆及单核苷酸多态性分析. 林业科学研究, 2013, 26(S1): 52-59.
    [12] 刘英冠吴庆珂何关顺汪阳东杨素素陈益存高暝 . 山鸡椒1-脱氧木酮糖-5-磷酸还原异构酶 DXR基因的克隆和SNP分析. 林业科学研究, 2015, 28(1): 93-100.
    [13] 易敏张守攻谢允慧孙晓梅 . 日本落叶松纤维素合酶基因片段的克隆及单核苷酸多态性分析. 林业科学研究, 2015, 28(3): 303-310.
    [14] 汪政科彭镇华 . 观赏植物基因工程研究进展. 林业科学研究, 2000, 13(1): 97-102.
    [15] 范艳如兰倩韩素英齐力旺张立峰 . 日本落叶松LaSPL2LaSPL3在体细胞胚发育中的表达分析. 林业科学研究, 2021, 34(5): 79-87. doi: 10.13275/j.cnki.lykxyj.2021.005.009
    [16] 吴涛李万峰张俊红韩素英杨文华齐力旺 . 落叶松实时定量PCR内参基因的筛选. 林业科学研究, 2013, 26(S1): 1-8.
    [17] 周成城荣俊冬谢德金杨德明何天友郑郁善 . 福建柏实时荧光定量PCR内参基因的选择. 林业科学研究, 2021, 34(1): 137-145. doi: 10.13275/j.cnki.lykxyj.2021.01.017
    [18] 华雅洁岳远征杨秀莲何卿 . 海州常山叶片实时荧光定量PCR的内参基因选择. 林业科学研究, 2022, 35(2): 194-202. doi: 10.13275/j.cnki.lykxyj.2022.02.023
    [19] 张颖陈婉婷陈冉红帅鹏李明 . 杉木实时荧光定量PCR分析中内参基因的选择. 林业科学研究, 2019, 32(2): 65-72. doi: 10.13275/j.cnki.lykxyj.2019.02.010
    [20] 郭晓娟陈凌娜杨汉奇 . 巨龙竹秆形发育过程实时荧光定量PCR内参基因的筛选. 林业科学研究, 2018, 31(2): 120-125. doi: 10.13275/j.cnki.lykxyj.2018.02.017
  • 加载中
计量
  • 文章访问数:  3552
  • HTML全文浏览量:  156
  • PDF下载量:  1618
  • 被引次数: 0
出版历程
  • 收稿日期:  2010-07-29

刚毛柽柳富含甘氨酸RNA结合蛋白ThGRP1基因克隆与表达分析

  • 1. 东北林业大学林学院,林木遗传育种与生物技术教育部重点实验室,黑龙江 哈尔滨 150040
基金项目:  国家自然科学基金面上项目(30972386);东北林业大学研究生科技创新项目(000-41110710)

English Abstract

参考文献 (26)

目录

    /

    返回文章
    返回