水稻MAPKK基因家族表达模式分析及其功能初探
详细信息    本馆镜像全文|  推荐本文 |  |   获取CNKI官网全文
摘要
促分裂原活化蛋白激酶(Mitogen-activated protein kinase,MAPK)途径在植物生长发育和生物与非生物胁迫响应方面起到了重要的作用。在水稻中,促分裂原活化蛋白激酶激酶基因(MAPKKs)的抗逆功能依然不清楚。本研究通过表达序列标签(EST)和cDNA的数据比对的方法搜寻水稻数据库,得到了9个水稻促分裂原活化蛋白激酶激酶基因(OsMKKs)。本研究的主要内容如下:
     1、OsMKKs在不同器官下的特异表达研究:通过荧光定量PCR检测了OsMKKs在日本晴不同器官(叶,根和花)下的表达情况,发现其表达具有组织特异性。OsMKK1,OsMKK3,OsMKK4,OsMKK5,OsMKK6和OsMKK10-2在叶,根和花中都有表达,在根中表达有差异。而OsMKK8,OsMKK9和OsMKK10-1在不同器官中的表达丰度很低,主要在根和花中表达。
     2、OsMKKs在生物或非生物胁迫下的表达研究。分别用双氧水(H_2O_2),水杨酸(Sa]icylic acid,SA),脱落酸(abscisic acid,ABA),甲基茉莉酸(methyl jasmonic acid,Me-JA),甘露醇,氯化钠和低温(4℃)模拟各种不同的逆境,采用荧光定量PCR检测OsMKKs在不同逆境处理下的表达情况。发现不同OsMKKs的表达具有时空特异性。全基因组表达分析表明:
     OsMKK1在七种逆境信号处理下均有上升表达,且30分钟之前到达最高表达,具有早期表达特性。在H_2O_2,SA,Mannitiol,NaCl诱导下在根中启动表达要早,且表达量较高。而在ABA,Me-JA,低温诱导下则相反。
     OsMKK3在七种逆境信号处理下表达情况比较复杂,在Mannitiol,NaCl和低温诱导下表达量大幅度上升,在SA,ABA和Me-JA诱导下叶和根中表达模式不同,在SA诱导的早期,根中表达上升而叶中表达下降,ABA和Me-JA诱导下则相反。在H_2O_2处理下早期下降表达。
     OsMKK4在H_2O_2,MeJA和Mannitiol诱导下早期有上升表达,在ABA,NaCl和低温(4℃)诱导下早期在叶中有上升表达,在根中则相反。在SA诱导下早期下降表达。
     OsMKK5在H_2O_2,SA,ABA,Me-JA,Mannitiol和NaCl诱导下有上升表达。其中在H_2O_2诱导下晚期表达,NaCl和ABA诱导下早期表达;在SA,Mannitiol诱导下在根中早期表达,叶中晚期表达,而Me-JA诱导下则相反。低温(4℃)诱导下在叶中有上升表达,在根中下降表达。
     OsMKK6在H_2O_2、SA、ABA、Me-JA、Mannitiol、NaCl和低温诱导下均有上升表达。其中SA,NaCl和低温诱导下早期表达,在H_2O_2诱导下晚期表达;在ABA,Mannitiol诱导下在根中早期表达,叶中晚期表达,而Me-JA诱导下则相反。
     OsMKK8,OsMKK9在不同处理下均没有检测到表达。
     OsMKK10-1在H_2O_2,SA,NaCl和低温诱导下均有上升表达。其中在H_2O_2诱导下晚期表达,SA,NaCl和低温诱导下早期表达。
     OsMKK10-2在H_2O_2诱导下有上升表达,其中在H_2O_2诱导下根中早期表达,叶中晚期表达。在低温诱导的早期下降表达,在SA,ABA,Me-JA,Mannitiol和NaCl诱导的早期在叶和根中的表达情况不同,其中在ABA,Me-JA诱导下叶中上升表达,在根中下降表达;其他则相反。
     3、克隆了OsMKK3,构建了超表达和抑制表达载体,并分别被用于转化水稻、烟草和拟南芥。
Mitogen-activated protein kinase(MAPK) cascades play a crucial role in plant growth and development as well as biotic and abiotic stress responses.In rice(Oryza sativa),a monocot model and economically important cereal crop,only two MAPKKs were characterized.In this study.We have identified 9 members of the rice MAPKKs family through an EST and cDNA hitting search of rice genome databases.Results of the experiment is as following.
     1.Upon real time PCR,we analyze the difference of expression of OsMKKs under different organ(leaf,root and flower).The result indicate that OsMKKI,OsMKK3, OsMKK4,OsMKK5,OsMKK6 or OsMKK10-2 confer expression in shoot root and flower, and the expression is varied in root.OsMKK8,OsMKK9 or OsMKK10-1 confer low expression in diferent organ,they expressed mainly in root and flower.
     2.Upon elicitor inducing with the different signal molecules such as H_2O_2,salicylic acid(SA),abscisic acid(ABA),methyl jasmonic acid(MeJA),Mannitiol,NaCl and cold(4℃) treatment.8 of 90sMKKs genes were found to be induced at the mRNA level during either early,late,or both stages of treatment.The genome-wide expression analysis suggests that:
     OsMKK1 confers strong expression under the induction of H_2O_2,SA,ABA,MeJA, Mannitiol,NaCl or Cold(4℃)and early expression before 30 minutes.When treated with H_2O_2,SA,Mannitiol,NaCl,the expression of OsMKK1 in the root was earlier and higher than in the shoot.But the expression of OsMKK1 under the induction of ABA,Me-JA is on the contray.
     OsMKK3 confers complex expression under the induction of H_2O_2,SA,ABA, MeJA,Mannitiol,NaCl or Cold(4℃).OsMKK3 confers strong expression under the induction of Mannitiol,NaCl or Cold(4℃).OsMKK3 confers different expression under the induction of SA,ABA and Me-JA between leaves and roots of,in the early time when treated with SA,the expression rised in the root but declined in the shoot,the expression of ABA and Me-JA in on the contrary.OsMKK3 confers fall expression when treated with H_2O_2.
     OsMKK4 confers early strong expression under the induction of H_2O_2,MeJA and Mannitiol.The early expression of OsMKK4 treated with ABA,NaC1 and low temperature(4℃) is different between shoot and root,it rised in the root and declined in the shoot OsMKK4 confers early fall expression when treated with SA.
     OsMKK5 confers early strong expression under the induction of H_2O_2,SA,ABA, Me-JA,Mannitiol and NaCl.It expressed late when treated with H202,and early when treated with ABA and NaCl.When treated with SA and Mannitiol,it expressed early in the root and late in the shoot,it expressed on the contray when treated with Me-JA.When treated with low temperature(4℃),it confers rise expression in the shoot and fall expression in the root.
     OsMKK6 confers strong expression under the induction of H_2O_2,SA,ABA,MeJA, Mannitiol,NaCl or Cold(4℃).It expressed late when treated with H_2O_2 and early when treated with SA,NaCl or Cold(4℃).It expressed different between shoot and root when treated with the ABA or Mannitiol.
     OsMKK8 and OsMKK9 confers no expression under the different induction
     OsMKK10-1 confers strong expression under the induction of H_2O_2,SA,NaCl and low temperature,It expressed late when treated with H_2O_2 and early when treated with SA, NaCl or low temperature(4℃).
     OsMKK10-2 confers strong expression under the induction of H_2O_2,it expressed early in the root and late in the shoot.It confers decline expression under the induction of low temperature(4℃).It expressed different between shoot and root when early treated with SA,ABA,Me-JA,Mannitiol and NaCl,its expression rised in the shoot and falled in the root when treated with ABA or Me-JA,its expression rised in the root and failed in the shoot when treated with SA,Mannitiol and NaCl.
     3.One of rice MAPKKs which known as OsMKK3 was cloned and analyzed by gene overexpression and silencing ways.
引文
1. Agrawal G K, Agrawal S K, Shibato J, Iwahashi H, Rakwal R.. Novel rice MAP kinases 0sMSRMK3 and OsWJUMKl involved in encountering diverse environmental stresses and developmental regulation. Biochem Biophys Res Commun, 2003, 300: 775-783
    
    2. Ahlquist P. RNA-dependent RNA polymerases, viruses, and RNA silencing. Science, 2002, 296:1270-1273
    
    3. Asai T, Tena G, Plotnikova J, Willmann MR, Chiu WL, Gomez-Gomez L, Boiler T, Ausubel F M, Sheen J. MAP kinase signaling cascade in Arabidopsis innate immunity. Nature, 2002, 415: 977-983
    
    4. Aufsatz W, Mette MF, van der Winden J, et al. RNA-directed DNA methylation in Arabidopsis. Proc Natl Acad Sci USA, 2002, 99 Suppl 4: 16499-16506
    
    5. Baulcombe D. RNA silencing in plants. Nature, 2004,431: 356-363
    
    6. Beclin C, Boutet S, Waterhouse P, et al. A branched pathway for iransgene-induced RNA silencing in plane. Curr Biol, 2002, 12: 684-688
    
    7. Bergmann DC, Lukowitz W, Somerville CR. Stomatal development and pattern controlled by a MAPKK kinase. Science, 2004 Jun 4;304(5676): 1494-7.
    
    8. Brader G, Djamei A, Teige M, Palva ET, Hirt H. The MAP kinase kinase MKK2 affects disease resistance in Arabidopsis. Mol Plant Microbe Interact, 2007 May;20(5):589-96.
    
    9. Brummelkamp TR, Bernards R, Agami R. A system for stable expression of short interfering RNAs in mammalian cells. Science, 2002, 296: 550-553
    
    10. Celotto AM, Graveley BR. Exon-specific RNAi: a tool for dissecting the functional relevance of alternative splicing. RNA, 2002, 8: 718-724
    
    11. Chan MT, Chang HH, Ho SL et al. Agrobacterium-mediated production of transgenic rice plants expressing a chimeric α -amylase promoter/ β -glucuronidase gene. Plant Mol Biol, 1993,22:491-506
    
    12. Chang L, Karin M. Mammalian MAP kinase signalling cascades. Nature, 2001,410: 37-40
    
    13. Chen C, Chen Z. Isolation and characterization of two pathogen- and salicylic acid-induced genes encoding WRKY DNA-binding proteins from tobacco. Plant Mol Biol ,2000,42: 387-396
    14. Chen S, Jin W, Wang M, et al. Distribution and characterization of over 1000 T DNA tags in rice genome. Plant J,2003, 36: 105-113
    
    15. Chuang CF, Meyerowitz EM. Specific and heritable genetic interference by double-stranded RNA in Arabidopsis thaliana. Proc Natl Acad Sci USA, 2000, 97: 4985-4990
    
    16. Dai Y, Wang H, Li B, Huang J, Liu X, Zhou Y, Mou Z, Li J. Increased expression of MAP KINASE KINASE7 causes deficiency in polar auxin transport and leads to plant architectural abnormality in Arabidopsis. Plant Cell, 2006 Feb;18(2):308-20. Epub 2005 Dec 23.
    
    17. Davis R. Signal transduction by the JNK group of MAP kinases. Cell, 2000, 103: 239-252
    
    18. Dheda K, Huggett JF, Bustin SA, Johnson MA, Rook G, Zumla A. Validation of housekeeping genes for normalizing RNA expression in real-time PCR. Biotechniques, 2004, 37: 112-114,116, 118-119
    
    19. Doczi R, Brader G, Pettko-Szandtner A, Rajh I, Djamei A, Pitzschke A, Teige M, Hirt H. The Arabidopsis mitogen-activated protein kinase kinase MKK3 is upstream of group C mitogen-activated protein kinases and participates in pathogen signaling. Plant Cell, 2007 Oct; 19(10): 3266-79
    
    20. Fire A, Xu S, Montgomery MK, et al. Potent and specific genetic interference by double-stranded RNA in Caenorhabditis elegans. Nature, 1998,391: 806-811
    
    21. Foster TM, Lough TJ, Emerson SJ, et al. A surveillance system regulates selective entry of RNA into the shoot apex. Plant Cell, 2002,14: 1497-1508
    
    22. Freeman WM, Walker SJ, Vrana KE. Quantitative RT-PCR: pitfalls and potential. Biotechniques ,1999, 26:112-122, 124-125
    
    23. Grishok A, Tabara H, Mello C. Genetic requirements for inheritance of RNAi in C. elegans. Science, 2000. 287: 2494-2497
    
    24. Guo HS, Fei JF, Xie Q, et al. A chemical-regulated inducible RNAi system in plants. Plant J, 2003,34: 383-392
    
    25. Haywood VB, Caughman WF, Frazier KB, et al. Plasmodesmata: pathways for protein and ribonucleoprotein signaling. Plant Cell, 2002, 14: 5303-325
    
    26. He C, Fong SH, Yang D, Wang GL. BWMK1, a novel MAP kinase induced by fungal infection and mechanical wounding in rice. Mol Plant Microbe Interact, 1999, 12 : 1064-1073
    
    27. Hooykaas PJJ , Schilperoort RA. Agrobacterium and plant genetic engineering. Plant Mol Biol, 1992,19:15-18.
    28. Horiguchi G. RNA silencing in plants: a shortcut to functional analysis. Differentiation, 2004, 72: 65-73
    
    29. Ichimura K, Tena G, Henry Y, Zhang Z, Hirt H, Wilson C, Morris P, Mundy J, Innes R, Ecker J, Scheel D, Klessig D F, Machida Y, Mundy J, Ohashi J, Walker J C. Mitogen-activated protein kinase cascades in plants: a new nomenclature. Trends Plant Sci, 2002, 7: 301-308
    
    30. Ishida Y, Saito h, Ohta S et al. High efficiency transformation of maize (Zea mays L.)mediated by Agrobacterium tumefaciens. Nature Biotechnol, 1996,14:745-750.
    
    31. Izawa T, Shimamoto K. Becoming a model plant: the importance of rice to plant science. Trends Plant Sci, 1996,1: 95-99.
    
    32. Jonak C, Okresz L, Bogre L, Hirt H. Complexity, cross talk and integration of plant MAP kinase signaling. Curr Opin Plant Biol, 2002, 5: 415-424
    
    33. Jorgensen RA. RNA traffics information systemically in plants. Proc Natl Acad Sci USA, 2002, 99: 11561-11563
    
    34. Kennerdell JR, Carthew RW. Use of dsRNA-mediated genetic interference to demonstrate that frizzled 2 act in the wingless pathway. Cell, 1998, 95: 1017-1026
    
    35. Kerschen A, Napoli CA, Jorgensen RA, et al. Effectiveness of RNA interference in transgenic plants. FEBS Lett, 2004, 566: 223-228
    
    36. Kiegerl S, Cardinale E Siligan C, Gross A, Baudouin E, Liwosz A, Eklof S, Till S, Bogre L, Hirt H, Meskiene I. SIMKK, a mitogen-activated protein kinase(MAPK) kinase, is a specific activator of the salt stress-included MAPK, SIMK. Plant Cell, 2000,12: 2247-2258
    
    37. Kusaba M, Miyahara K, lida S, et al. Low glutelin contend:a dominant mutation that suppresses the glutelin multigene family via RNA silencing in rice. Plant Cell, 2003, 15: 1455-1467
    
    38. Lawrence RJ, Pikaard CS. Transgene-induced RNA interference: a strategy for overcoming gene redundancy in polyploids to generate loss-of-function mutations. Plant J, 2003, 36: 114-121
    
    39. Li J, Wang XQ, Watson MB, Assmann SM. Regulation of abscisic acid-induced stomatal closure and anion channels by guard cell AAPK kinase. Science, 2000,287:300-303
    
    40. Lu R, Martin-Hernandez AM, Peart JR, et al. Virus-induced gene silencing in plants. Methods, 2003, 30: 296-303
    
    41. Lu S, Shi R, Tsao CC, et al. RNA silencing in plants by the expression of siRNA duplexes. Nucleic Acids Res, 2004, 32: a 171
    42. Masclaux F, Charpenteau M, Takahashi T, et al. Gene silencing using a heat-inducible RNAi system in Arabidopsis. Biochem Biophys Res Commun, 2004, 321:364-369
    
    43. Matsuoka. Activation of AtMEKl, an Arabidopsis mitogen-activated protein kinase kinase, in vitro and in vivo: analysis of active mutants expressed in E. coli and generation of the active form in stress response in seedlings. Plant J, 2002,29, 637-647
    
    44. Matthew L. RNAi for plant functional genomics. Comp Funct Genom, 2004, 5: 240-244
    45. McGinnis K, Chandler V, Cone K, et al. Transgene-induced RNA interference as a tool for plant functional genomics. Methods Enrymol, 2005, 392: 1-24
    46. Melikant B, Giuliani C, Halbmayer-Watzina S, Limmongkon A, Heberle-Bors E, Wilson C. The Arabidopsis thaliana MEK AtMKK6 activates the MAP kinase AtMPK13. FEBS Lett. 2004 Oct 8;576(1-2):5-8.
    47. Meszaros T, Heifer A, Hatzimasoura E, Magyar Z, Serazetdinova L, Rios G, Bardoczy V, Teige M, Koncz C, Peck S, Bogre L. The Arabidopsis MAP kinase kinase MKK1 participates in defence responses to the bacterial elicitor flagellin. Plant J. 2006 Nov;48(4):485-98. Epub 2006 Oct 20.
    48. Miki D, Shimamoto K. Simple RNAi vectors for stable and transient suppression of gene function in rice. Plant Cell Physiol, 2004,45: 490-495
    49. Mikolajzyk M, Awotunde OS, Muszynska G, Klessig DF, Dobrowolska G. Osmotic stress induces rapid activation of a salicylic acid-induced protein kinase and a homolog of protein kinase ASK1 in tobacco cells. Plant Cell, 2000,12: 165-178
    50. Miyagishi M, Taira K. U6 promoter driven siRNAs with four uridine 3' overhangs efficiently suppress targeted gene expression in mammalian cells. Nat Biotechnol, 2002,20: 497-500
    51. Mizoguchi T, lrie K,Hirayama T, Hayashida N, Yamaguchi-Shinozaki K, Matsumoto K, Shinozaki K A gene encoding a mitogen-activated protein kinase kinase kinase is induced simultaneously with gene for a mitogen-activated protein kinase and an S6 ribosomal protein kinase by touch, cold, and water stress in Arabidopsis thaliana. Proc Natl Acad Sci USA, 1996,93: 765-769.
    52. Mlotshwa S, Voinnet O, Mette MF, et al. RNA silencing and mobile silencing signal. Plant Cell, 2002,14:5289-301
    53. Muda M, Worby CA. Use of double-stranded RNA mediated interference to determine the substrates of protein tyrosine kinases and phosphatases. Biochem J, 2002, 366:73-77
    54. Napoli C, Lemieux C, Jorgensen R. Introduction of a chimeric chalcone synthase gene into petunia results in reversible co-suppression of homoloeous gene in traps. Plant Cell. 1990.2:279-289
    
    55. Paddison PJ, Caudy AA, Hannon GJ. Stable suppression of gene expression by RNAi in mammalian cells. Proc Natl Acad Sci USA, 2002, 99: 1443-1448
    
    56. Paddison PJ, Hannon GJ. RNA interference: the new somatic cell genetics? Cancer Cell, 2002,2: 17-23
    
    57. Pattanayak D, Agarwal S, Sumathi S, et al. Small but mighty RNA-mediated interference in plants. Indian J Exp Biol, 2005, 43: 7-24
    
    58. Paul CP, Good PD, Winer I, et al. Effective expression of small interfering RNA in human cells. Nat Biotechnol, 2002, 20: 505-508
    
    59. Petersen M, Btodersen P, Naested H, Andreasson E, Lindhart U, Johansen B, Nielsen HB, Lacy M, Austin MJ, Park JE, Sharma SB, Klessig DF, Martienssen R, Mattsson O, Jensen AB, Mundy 1. Arabidopsis MAP kinase 4 negatively regulates systemic acquired resistance. Cell, 2000,103: 1111-1120.
    
    60. Prasad K, Vijayraghavan U. Double-stranded RNA interference of a rice paralog, OsMADS2, uncovers its second-whorl-specific function in floral organ patterning. Genetics, 2003, 165: 2301-2305
    
    61. Rao MV, Davis KR. The physiology of ozone induced cell death. Planta, 2001,213: 682-690
    
    62. Ren, D Cell death mediated by MAPK is associated with hydrogen peroxide production in Arabidopsis. J. Biol. Chem, 2002 277, 559-565
    
    63. Romeis T, Piedras P, Zhang S, Klessig DF, Hirt H, Jones JDG. Rapid Avr-9 and Cf-9-dependent activation of MAP kinases in tobacco cell cultures and leaves: convergence ofresistance gene, elicitor, wound and salicylate responses. Plant Cell, 1999,11:73-287.
    
    64. Rose AF. Systemic acquired resistance induced by localized virus infections in plants. Virology, 1961, 14:340-358
    
    65. Ryals J, Uknes S, Ward E. Systemic acquired resistance.Plant Physiol, 1994,104: 1109-1112
    
    66. Ryals JA, Neuenschwander UH, Willits MG, Molina A, Steiner HY, Hunt MD. Systemic acquired resistance.Pant Cell, 1996, 8:1809-1819
    
    67. Ryals JA. Coordinate induction of gene expression in response to biological and chemical agents that induce systemic acquired resistance.Pant Cell, 1991,3:1085-1094.
    68. Savenkov EI, Valkonen JP. Silencing of a viral RNA silencing suppressor in transgenic plants. J Gen Virol, 2002, 83: 2325-2335
    
    69. Seo S, Okamoto M, Seto H, Ishizuka K, Sano H, Ohashi Y. Tobacco MAP kinase: a possible mediator in wound signal transduction pathways. Science, 1995, 270: 1988-1992.
    
    70. Seo S, Sano H, Ohashi Y. Jasmonate based wound signal transduction requires activation of WIPK, a tobacco mitogen-activated protein kinase. Plant Cell, 1999,11: 289-298
    
    71. Sijen T, Fleenor J, Simmer F, et al. On the role of RNA amplification in dsRNA-triggered gene silencing. Cell, 2001, 107: 465-476
    
    72. Soyano T. NQK1/NtMEK1 is a MAPKK that acts in the NPK1 MAPKKK-mediated MAPK cascade and is required for plant cytokinesis. Genes Dev, 2003,17, 1055-1067
    
    73. Sui q Soohoo C, Affarel B, et al. A DNA vector-based RNAi technology to suppress gene expression in mammalian cells. Proc Natl Acad Sci USA, 2002, 99: 5515-5520
    
    74. Takahashi F, Yoshida R, Ichimura K, Mizoguchi T, Seo S, Yonezawa M, Maruyama K, Yamaguchi-Shinozaki K, Shinozaki K. The mitogen-activated protein kinase cascade MKK3-MPK6 is an important part of the jasmonate signal transduction pathway in Arabidopsis. Plant Cell. 2007 Mar;19(3):805-18. Epub 2007 Mar 16.
    
    75. Teige M, Scheikl E, Eulgem T, Doczi R, Ichimura K, Shinozaki K, Dangl JL, Hirt H. The MKK2 pathway mediates cold and salt stress signaling in Arabidopsis. Mol Cell, 2004, 15:141-152
    
    76. Vijayan P, Shockey J, Levesque CA, Cook RJ, Browse J. A role for jasmonate in pathogen defense of AraBidopsis.Proc Natl Acad Sci USA, 1998,95: 7209-7214
    
    77. Wang A, Xia Q, Xie W, et al. The classical Ubisch bodies cant' a sporophytically produced structural protein (RAFTIN) that is essential for pollen development. Proc Natl Acad Sci USA, 2003, 100: 14487-14492
    
    78. Wang H, Ngwenyama N, Liu Y, Walker JC, Zhang S. Stomatal development and patterning are regulated by environmentally responsive mitogen-activated protein kinases in Arabidopsis. Plant Cell. Jan;19(1):63-73. Epub 2007 Jan 26.
    
    79. Waterhouse PM, Helliwell CA. Exploring plant genomes by RNA-induced gene silencing. Nat Rev Genet, 2003, 4: 29-38 .
    
    80. Waterhouse PM, Wang MB, Lough T. Gene silencing as an adaptive defense against viruses. Nature, 2001, 41 1:834-842
    
    81. Wen, J.Q Two novel mitogen-activated protein signaling components, OsMEKl and OsMAPl, are involved in a moderate lowtemperature signaling pathway in rice. Plant Physiol, 2002,129,1880-1891
    
    82. Wesley SV, Helliwell C, Wang MB, et al. Posttranscriptional gene silencing in plants. Methods Moi Biol, 2004, 265: 117-129
    
    83. Wesley SV, Helliwell CA, Smith NA, et al. Construct design for effcient, effective and high-throughput gene silencing in Plants. Plant J, 2001,27: 581-590
    
    84. Winston WM, Molodowitch C, Hunter CP Systemic RNAi in C. elegans requires the putative transmembrane protein SID-1 .Science, 2002, 295: 2456-2459
    
    85. Xiao H, Wang Y, Liu D, et al. Functional analysis of the rice AP3 homologue OsMADS16 by RNA interference. Plant Mol Biol, 2003, 52: 957-966
    
    86. Xiong L, Yang Y Disease resistance and abiotic stress tolerance in rice are inversely modulated by an abscisic acid-inducible mitogen-activated protein kinase. Plant Cell, 2003,15: 745-759
    
    87. Xiong L, Yang Y. Disease resistance and abiotic stress tolerance in rice are inversely modulated by an abscisic acid-inducible mitogen-activated protein kinase. Plant Cell, 2003,15:745-759.
    
    88. Xu LH,Liu FQ, Huang RF, Wang ZL, Peng W, Huang RF, Huang DF, Xie DX. An Arabidopsis mutant cexl exhibits accumulation of jasmonate-regulated AtVSP Thi2.1 and PDF1.2. FEBS Lett, 2001,494: 161-64
    
    89. Yang D, Buchholz F, Huang Z, et al. Short RNA duplexes produced by hydrolysis with Escherichia coli RNase III mediate effective RNA interference in mammalian cells. Proc Natl Acad Sci USA,
    
    90. You MK, Oh SI, Ok SH, Cho SK, Shin HY, Jeung JU, Shin JS. Identification of putative MAPK kinases in Oryza minuta and O. sativa responsive to biotic stresses. Mol Cells. 2007 Feb 28;23(1):108-14.
    
    91. Yu J, Hu S, Wang J, Wong GK, Li S, Liu B, Deng Y,Dai L, Zhou Y, ZhanQ X, Cao M, Liu J. Sun J., Liu Z, Li L, Liu J, Qi Q, Liu J, et al. A Draft Sequence of the Rice Genome (Oryza sativa L. ssp. indica). Science , 2002,296: 79-92.
    
    92. Yu JY, DeRuiter SL, Turner DL. RNA interference expression of short-interfering RNAs and hairpin RNAs in mammalian cells. Proc Natl Acad Sci USA, 2002, 99: 6047-6052
    93. Yu S, Tang KX. MAP kinase cascades responding to environmental stress in plants. Acta Bot Sinica, 2004,46: 127-136
    94. Zamore PD. Ancient pathways programmed by small RNAs. Science, 2002, 296: 1265-1269
    95. Zhang S, Du H, Klessing DF. Activation of the tobacco SIP kinase by Both a cell wall-derived carbohydrate elicitor and purified proteinaceous elicitins from Phytopathora spp. Plant Cell, 1998,10:435-450.
    96. Zhang S, Klessig DF. Salicylic acid activates a 48-kD kinase in tobacco. Plant Cell, 1997,9:809-824.
    97. Zhang S, Klessig DF. The tobacco wounding activated mitogen-activated protein kinase is encoding by SIPK. Proc Natl Acad Sci USA, 1998b, 95: 7225-7230.
    98. Zhang S, Klessing DF. Resistance gene N-mediated de novo synthesis and activation of a tobacco mitogen-activated protein kinase by tobacco mosaic virus infection. Proc Natl Acad Sci USA, 1998a, 95:7433-7438.
    99. Zupan JR, Zambryski P. Transfer of T-DNA from Agrobacterium to the plant cell. Plant Physiol, 1995,107:1041-104

© 2004-2018 中国地质图书馆版权所有 京ICP备05064691号 京公网安备11010802017129号

地址:北京市海淀区学院路29号 邮编:100083

电话:办公室:(+86 10)66554848;文献借阅、咨询服务、科技查新:66554700