作物学报 ›› 2012, Vol. 38 ›› Issue (09): 1625-1630.doi: 10.3724/SP.J.1006.2012.01625
李万昌1,2,**,余娇娇1,2,**,段灿星1,*,朱振东1,王晓鸣1
LI Wan-Chang1,2,**,YU Jiao-Jiao1,2,**,DUAN Can-Xing1,*,ZHU Zhen-Dong1,WANG Xiao-Ming1
摘要: 灰飞虱是我国水稻生产上的一种重要害虫。运用荧光定量PCR方法及特异性引物,对不同时间(12、24、36、48和72 h)灰飞虱胁迫下抗虫和感虫水稻品种中主要防卫途径的相关基因进行转录水平上定量分析。灰飞虱取食后,与水杨酸合成途径相关的基因PAL、NPR1、EDS1和PAD4在抗灰飞虱品种Mudgo中的表达水平均高于在感虫水稻Kittake中。接虫12 h后,PAL基因表达量达到未接虫时的6.914倍;在Mudgo中,PAL基因相对表达量上升更快,在24、48和72 h分别是Kittake中的42.848、70.743和69.193倍。NPR1基因在灰飞虱为害12、36和72 h后,在Mudgo中的表达量分别是Kittake中的4.690、6.231和4.112倍。与茉莉酸合成相关的基因LOX和AOS2,在灰飞虱为害36 h后,在Kittake中的表达水平显著高于Mudgo中。乙烯信号途径中的受体基因EIN2在Kittake中的表达量也高于Mudgo中。结果表明,灰飞虱取食激活了抗虫水稻Mudgo中依赖水杨酸介导的抗性途径,同时诱导感虫水稻Kittake产生了依赖茉莉酸/乙烯途径的防卫反应,PAL和NPR1基因的表达在调节Mudgo抗灰飞虱中具有重要作用。
| [1]Normile D. Reinventing rice to feed the world. Science, 2008, 321: 330–333[2]Duan C X, Wan J M, Zhai H Q, Chen Q, Wang J K, Su N, Lei C L. Quantitative trait loci mapping of resistance to Laodelphax striatellus (Homoptera: Delphacidae) in rice using recombinant inbred lines. J Econ Entomol, 2007, 100: 1450–1455[3]Duan C X, Su N, Cheng Z J, Lei C L, Wang J L, Zhai H Q, Wan J M. QTL Analysis for the resistance to small brown planthopper (Laodelphax striatellus Fallén) in rice using backcross inbred lines. Plant Breed, 2010, 129: 63–67[4]Tanaka K, Endo S, Kazano H. Toxicity of insecticides to predators of rice planthoppers: Spiders, the mirid bug and the dryinid wasp. Appl Entomol Zool, 2000, 35: 177–187[5]Duan C-X(段灿星), Cheng Z-J(程治军), Lei C-L(雷才林), Zhai H-Q(翟虎渠), Wan J-M(万建民). Analysis of QTLs for resistance to small brown planthopper in rice using an F2 population from a cross between Mudgo and Wuyujing 3. Acta Agron Sin (作物学报), 2009, 35(3): 388–394 (in Chinese with English abstract)[6]Zhu Y-P(朱彦鹏), Chi D-F(迟德富), Li X-C(李晓灿), Wang G-L(王广利). Excitation and signal conduction pathway of plant indirect defense reaction induced by herbivore. Entomol J East Chin (华东昆虫学报), 2008, 17(2): 143–148 (in Chinese with English abstract)[7]Alborn H T, Turlings T C J, Jones T H, Stenhagen G, Loughrin J H, Tumlinson J H. An elicitor of plant volatiles from beet armyworm oral secretion. Science, 1997, 276: 945–949[8]Alborn H T, Hansen T V, Jones T H, Benntt D C, Tumlinson J H, Schmelz E A, Teal P E. Disulfooxy fatty acids from the American bird grasshopper Schistocerca americana, elicitors of plant volatiles. Proc Natl Acad Sci USA, 2007, 104: 12976–12981[9]Li Q, Xie Q G, Smith-Becker J, Navarre D A, Kaloshian I. Mi-1-mediated aphid resistance involves salicylic acid and mitogen-activated protein kinase signaling cascades. Mol Plant Microbe Interact, 2006, 19: 655–664[10]Zarate S I, Kempema L A, Walling L L. Silverleaf whitefly induced salicylic acid defenses and suppresses effectual jasmonic acid defenses. Plant Physiol, 2007, 143: 866–875[11]Livak K J, Schmittgen T D. Analysis of relative gene expression data using real-time quantitative PCR and the 2–ΔΔCT method. Methods, 2001, 25: 402–408[12]Chen J B, Wang S M, Jing R L, Mao X G. Cloning of PvP5CS gene from common bean (Phaseolus vulgaris) and its response to abiotic stresses. J Plant Physiol, 2009, 166: 12–16[13]Du B, Zhang W L, Liu B F, Hu J, Wei Z, Shi Z Y, He R F, Zhu L L, Chen R Z, Han B, He G C. Identification and characterization of Bph14, a gene conferring resistance to brown planthopper in rice. Proc Natl Acad Sci USA, 2009, 106: 22163–22168[14]Meng W(孟威), Wen J-Z(文景芝), Wu M-S(吴茂森), He C-Y(何晨阳). Comparative analysis of nitric oxide generation and induction of defense gene expression by Xanthomonas campestris pv. vesicatoria and X. oryzae pv. oryzae of rice suspension-cultured cells. Sci Agric Sin (中国农业科学), 2007, 40(6): 1159–1165 (in Chinese with English abstract)[15]Walling L L. The myriad plant responses to herbivores. J Plant Growth Regul, 2000, 19: 195–216[16]Qiu D Y, Xiao J, Ding X H, Xiong M, Cai M, Cao Y L, Li X H, Xu C G, Wang S P. OsWRKY13 mediated rice disease resistance by regulating defense related genes in salicylate- and jasmonate-dependent signaling. Mol Plant Microbe Interact, 2007, 20: 492–499[17]Ryan C A. Protease inhibitors in plants: genes for improving defenses against insects and pathogens. Annu Rev Phytopathol, 1990, 28: 425–449[18]Peng J-Y(彭金英), Huang Y-P(黄勇平). The signaling pathways of plant defense response and their interaction. J Plant Physiol Mol Biol (植物生理与分子生物学学报), 2005, 31(4): 347–353 (in Chinese with English abstract)[19]Wang Y C, Wang Y C, Tang M, Hao P Y, Yang Z F, Zhu L L, He G C. Penetration into rice tissue by brown planthopper and fine structure of the salivary sheaths. Entomol Exp Appl, 2008, 129: 295–307[20]Jones J D G, Dangl J L. The plant immune system. Nature, 2006, 444: 323–328[21]Cai D G, Kleine M, Kifle S, Harloff H J, Sandal N N, Kjeld A, Marcker K A, Klein-Lankhorst R M, Salentijn E M J, Lange W, Stiekema W J, Wyss U, Grundler F M W, Jung C. Positional cloning of a gene for nematode resistance in sugar beet. Sciences, 1997, 275: 832–834[22]Wang Y Y, Wang X L, Yuan H Y, Chen R Z, Zhu L L, He R F, He G C. Responses of two contrasting genotypes of rice to brown planthopper. Mol Plant Microbe Interact, 2008, 21: 122–132[23]Zhu-Salzman K, Salzman R A, Ahn J E, Koiwa H. Transcriptional regulation of sorghum defense determinants against a phloem-feeding aphid. Plant Physiol, 2004, 134: 420–431[24]Peng J Y, Deng X J, Huang J H, Jia S H, Miao X X, Huang Y P. Role of salicylic acid in tomato (Lycopersicon esculentum) plant defense against cotton bollworm, Helicoverpa armigera Hubner. Z Naturforsch C, 2004, 59: 856–862[25]Li J, Brader G, Palva E T. The WRKY70 transcription factor: a node of convergence for jasmonate-mediated and salicylate-mediated signals in plant defense. Plant Cell, 2004, 16: 319–331[26]Dixon R A, Harrison M J, Lamb C J. Early events in the activation of plant defense responses. Annu Rev Phytopathol, 1994, 32: 479–501 |
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