Abstract:Barley stripe disease is caused by Pyrenophora graminea, and is a worldwide disease. To explore the interaction mechanism between Hordeum vulgare and Pyrenophora graminea, total protein of Ganpi 6 and Isotta leaves which were inoculated with Pyrenophora graminea (DWC) for 7 and 21 days were extracted to analyze proteomic changes. Twenty eight protein spots were found which showed a change of more than 1.4-fold between the inoculated and the mock-inoculated samples of Ganpi 6 and Isotta, of which 4 were up-regulated, 6 were down-regulated, 2 were induced and 2 were inhibited for Ganpi 6, and 3 were up-regulated, 4 were down-regulated, 4 were induced and 3 were inhibited for Isotta. The up-regulated proteins included ribulose-bisphosphate carboxylase activase A (No. 2 spot), actin (No. 9 spot), ribosome-recycling factor (RRF)(No. 10 spot), ATP synthase gamma chain(No. 11 and 27 spots), succinate dehydrogenase [ubiquinone] flavoprotein subunit (No. 15 spot) and predicted protein (No. 26 spot). The down-regulate protein spots included bas1 protein (No. 4 spot), ribulose-1,5-bisphosphate carboxylase/oxygenase large subunit (RuBisCo)(No. 3, 5, 12, 14, 16 and 18 spots), ATP synthase CF1 alpha subunit (No. 13 spot), Ycf3 (No. 17 spot) and alpha-1,4-glucan-protein synthase (UTPG)(No. 28 spot). The induced expression protein spots included predicted protein (No. 6 spot), lipoxygenase 2 (LOX2)(No. 7 spot), light harvesting chlorophyll a/b-binding protein (LHCP)(No. 19 spot), 3-phosphoglycerate kinase (PGK)(No. 20 spot), lectin (No. 21 spot) and ATP synthase gamma chain (No. 22 spot). The inhibited protein spots included RuBisCo (No. 1, 8, 24, 25 spots) and ribulose bisphosphate carboxylase small chain (RuBPCase)(No. 23 spot). These protein spots were identified by MALDI -TOF/ TOF MS and protein database searching by MASCOT program. The functions of the 28 protein were related to photosynthesis, protein synthesis, plant defense responses, cell signaling transduction, cellulose biosynthesis, and response to resist disease. These differentially expressed proteins might be related to the response to infection by Pyrenophora graminea. The results elucidate the proteomic basis of barley varieties with different resistance to Pyrenophora graminea.
[1] Walters D R, Avrova A, Bingham I J, Burnett F J, Fountaine J, Havis N D, Hoad S P, Hughes G, Looseley M, Oxley S J, Renwick A, Topp C F, Newton A C.Control of foliar diseases in barley: towards an integrated approach. European Journal of Plant Pathology, 2012. 133:33-73.[2] 王泉章, 梅爱中, 邰德良.大麦条纹病的重发原因分析及其防治对策. 植物医生, 2004, 17: 8-9[3]Wang Q Z, Mei A Z, Qiang D L.Analysis and Countermeasures of barley stripe disease occurrence. Plant doctor, 2004, 17: 8-9 (in Chinese with English abstract )[4] 张彩霞, 李壮, 陈莹, 田义, 张利益, 丛佩华.植物与病原菌互作的蛋白质组学研究进展. 西北植物学报, 2010, 30: 626-632[5]Zhang C X, Li Z, Ch Y, Tian Y, Zhang C Y, Cong P H.Advances in proteomic studies on the plant pathogen[6]interactions.Acta Bot. Boreal.-Occident. Sin., 2010, 30: 626-632 (in Chinese with English abstract)[7] Smith O, Clapham A, Rose P, Liu Y, Wang J, Allaby R G.A complete ancient RNA genome: identification, reconstruction and evolutionary history of archaeological Barley Stripe Mosaic Virus. Scientific reports, 2014, 4.[8] Kim S T, Kim S G, Hwang D H, Kang S Y, Kim H J, Lee B H, Lee J J, Kang K Y.Proteomic analysis of pathogen-responsive proteins from rice leaves induced by rice blast fungus, Magnaporthe grisea. Proteomics, 2004, 4:3569-3578[9] Kim S T, Kang Y H, Wang Y, Wu J, Park Z Y, Rakwal R, Agrawal G K, Lee S Y, Kang K Y.Secretome analysis of differentially induced proteins in rice suspension-cultured cells triggered by rice blast fungus and elicitor. Proteomics, 2009, 9: 1302-1313[10] Zhou W, Eudes F, Laroche A.Identification of differentially regulated proteins in response to a compatible interaction between the pathogen Fusarium graminearum and its host, Triticum aestivum. Proteomics, 2006, 6: 4599-4609[11] Marra R, Ambrosino P, Carbone V, Vinale F, Woo S L, Ruocco M, Ciliento R, Lanzuise S, Ferraioli S, Soriente I, Gigante S, Turrà D, Fogliano V, Scala F, Lorito M.Study of the three-way interaction between Trichoderma atroviride, plant and fungal pathogens by using a proteomic approach . Current genetics, 2006, 50: 307-321[12] Lee J, Bricker T M, Lefevre M, Pinson S R, Oard J H.Proteomic and genetic approaches to identifying defence-related proteins in rice challenged with the fungal pathogen Rhizoctonia solani. Molecular plant pathology, 2006, 7: 405-416[13] Houterman P M, Speijer D, Dekker H L, de Koster C G, Cornelissen B J, Rep M.The mixed xylem sap proteome of Fusarium oxysporum-infected tomato plants. Molecular plant pathology, 2007, 8: 215-221[14] Donnelly B E, Madden R D, Ayoubi P, Porter D R, Dillwith J W.The wheat (Triticum aestivum L.) leaf proteome. Proteomics, 2005, 5: 1624-1633[15] 孟亚雄, 李佳春, 汪军成, 张海娟, 赖勇, 司二静, 杨柯, 马小乐, 李葆春, 王化俊.条锈菌侵染后不同抗性小麦叶片蛋白差异表达研究. 核农学报, 2015, 29: 1649-1656[16]Meng Y X, Li J C, Wang J C, Zhang H J, Lai Y, Si E J, Yang K, Ma X L, Li B C, Wang H J.Analysis of differentially expressed proteins in leaf of different disease-resistance wheat varieties after infected with Puccinia striiformis. Journal of Nuclear Agricultural Sciences, 2015, 29: 1649-1656 (in Chinese with English abstract)[17]方献平, 陈文岳, 马华升, 余红, 王淑珍, 忻雅.植物应答病菌胁迫的抗性蛋白研究进展. 核农学报, 2014, 28: 825-832[18]Fang X P, Chen W Y, Ma H S, Yu H, Wang S Z, Xin Y.Research Progress in Plant-Pathogen Responsive Proteinse. Journal of Nuclear Agricultural Sciences, 2014, 28: 825-832 (in Chinese with English abstract)[19] Martin G B, Bogdanove A J, Sessa G.Understanding the functions of plant disease resistance proteins. Annual review of plant biology. 2003, 54: 23-61[20] Tripathi B N, Bhatt I, Dietz K J.Peroxiredoxins: a less studied component of hydrogen peroxide detoxification in photosynthetic organisms. Protoplasma, 2009, 235: 3-15[21] Muthuramalingam M, Seidel T, Laxa M, De Miranda S M N, G?rtner F, Str?her E, Kandlbinder A, Dietz K J.Multiple redox and non-redox interactions define 2-Cys peroxiredoxin as a regulatory hub in the chloroplast. Molecular Plant, 2009, 2: 1273-1288[22] 程雷, 王蕾蕾, 程备久, 范军.玉米过氧化物还原蛋白BAS1的原核表达及其功能研究. 中国生物工程杂志, 2010, 30: 24-29[23]Chen L, Wang L L, Chen B J, Fan J.Prokaryotic expression and function alanalysis of maize BAS1( 2-Cys peroxiredoxinA) . China Biotechnology, 2010, 30: 24-29 (in Chinese with English abstract)[24] Keppler L D; Novacky A.The initiation of membrane lipid peroxidation during bacteria-induced hypersensitive reaction . Physiological and Molecular Plant Pathology, 1987, 30: 233-245[25]Melan M A, Nemhauser J L, Peterman T K.Structure and sequence of the Arabidopsis thaliana lipoxygenase 1 gene[J].Biochimica et Biophysica Acta (BBA). Lipids and Lipid Metabolism, 1994, 1210(3):377-380[26] Feussner I, Wasternack C.The lipoxygenase pathway. Annual review of plant biology, 2002, 53: 275-297[27] Peng Y L, Shirano Y, Ohta H, Hibino T, Tanaka K, Shibata D.A novel lipoxygenase from rice. Primary structure and specific expression upon incompatible infection with rice blast fungus. Journal of Biological Chemistry, 1994, 269: 3755-3761[28] 崔兴国.植物凝集素在抗病虫害中的应用. 农业科技与装备, 2012, 12:8-9[29]Cui X G.Application of plant lectins on pest and disease resistance. Agricultural science&technology and equipment, 2012, 12: 8-9 (in Chinese with English abstract)[30] 潘科, 黄炳球.植物凝集素在病虫害防治中的研究进展. 植物保护, 2002, 28: 42-44[31]Pan K, Huang B Q.Progress of plant lectin in the control of diseases and insect pests. Plant protection, 2002, 28: 42-44 (in Chinese with English abstract)[32] 谢文凯, 凝集素.凝集素基因及其在植物防御中的作.世界科学, 1991, 8: 27-30[33]Xie W K.Lectin gene and its role in plant defense. World Science, 1991, 8: 27-30[34] 马成,徐世昌,徐琴.抗条锈病小麦品系 Taichuang29*6/Yr5 接种条锈菌CY32 后的蛋白质组学分析. 中国农业科学, 2009, 42:1616-1623[35]MA C, XU SC, XU Q.Proteomic Analysis of Stripe Rust Resistance Wheat Line Taichung29*6/Yr5 Inoculated with Stripe Rust Race CY32. Scientia Agricultura Sinica, 2009, 42: 1616-1623 (in Chinese with English abstract)[36] Huzisige H, Ke B.Dynamics of the history of photosynthesis research. Photosynthesis research, 1993, 38: 185-209[37] 王绍美,罗成刚,刘贯山.抗性不同的烤烟品种在胁迫条件下烟叶的差异蛋白质组学研究. 中国烟草科学, 2012,33:54-60[38]Wang S M, Luo C G, Liu G S.Establishment of two-dimensional electrophoresis protocol for tobacco Leaf. Chinese Tobacco Science, 2012, 33:54-60 (in Chinese with English abstract)[39] 理永霞, 吕全, 梁军.杨树接种溃疡病菌Botryosphaeria dothidea后蛋白质表达差异分析. 南京林业大学学报(自然科学版), 2011, 35:1-6[40]Li Y X, Lv Q, Liang J.Different analysis of two-dimensional gel electrophoresis profiles of protein in poplars after inoculation with Botryosphaeria dothidea. Journal of Nanjing Forestry University (Natural Sciences Edition), 2011, 35:1-6 (in Chinese with English abstract)[41] Naver H, Boudreau E, Rochaix J D.Functional studies of ycf3 its role in assembly of photosystem I and interactions with some of its subunits. The Plant Cell, 2001, 13: 2731-2745[42]夏家平, 郭会君, 谢永盾, 赵林姝, 古佳玉, 赵世荣, 李军辉, 刘录祥.小麦叶绿素缺失突变体的叶绿体基因差异表达分析[J].作物学报, 2012, 38(11):2122-2130[43]Xia J P, Guo H J, Xie Y D, Zhao L S, Gu J Y, Zhao S R, Li J H, Liu L X.Differential expression of chloroplast genes in chlorophyll-deficient wheat mutant Mt135 derived from space mutagenesis. Acta agronmica sinica, 2012, 38: 2122-2130. (in Chinese with English abstract)[44] Boudreau E, Takahashi Y, Lemieux C, et al.The chloroplast ycf3 and ycf4 open reading frames of Chlamydomonas reinhardtii are required for the accumulation of the photosystem I complex. The EMBO journal, 1997, 16: 6095-6104[45] 倪张林, 魏家绵.ATP合酶的结构与催化机理. 植物生理与分子生物学学报, 2008 : 367-374[46]Ni Z L, Wei JM.The structure and catalytic mechanism of ATP synthase. Journal of Plant Physiology and Molecular Biology, 2008: 367-374 (in Chinese with English abstract)[47] 薛磊.油菜(Brassica napus)气孔保卫细胞响应ABA磷酸化蛋白质组分析. 东北林业大学, 硕士学位论文, 2012, 24-25[48]Xue L.Phosphoproteomic analysis of guard cell from Brassica napus in response to ABA. Northeast Forestry University. Master Thesis, 2012, 24-25 (in Chinese with English abstract)[49]Ichikawa S, Kaji A.Molecular cloning and expression of ribosome releasing factor[J].Journal of Biological Chemistry, 1989, 264(33):20054-20059[50] Janosi L, Mottagui-Tabar S, Isaksson L A, Sekine Y, Ohtsubo E, Zhang S, Goon S, Nelken S, Shuda M, Kaji, A.Evidence for in vivo ribosome recycling, the fourth step in protein biosynthesis. The EMBO journal, 1998, 17: 1141-1151[51] 白宇杰.杂交水稻盐胁迫响应差异蛋白质组分析. 辽宁师范大学, 硕士学位论文, 2010[52]Bai Y J.Differential proteome analysis of hybrid rice in response to salt stress. Liaoning Normal University,Master Thesis, 2010, 35-36 (in Chinese with English abstract)[53] 刘曦, 张少斌, 汪澈.植物肌动蛋白功能的研究进展. 生物技术通报, 2010, 3: 13-16.[54]Liu X, Zhang S B, Wang C.Research progress of plant actin function. Biotechnology bulletin, 2010, 3: 13-16. (in Chinese with English abstract)[55] 吴德, 吴忠道, 余新炳.磷酸甘油酸激酶的研究进展.中国热带医学, 2005, 5: 385-387[56]Wu D, Wu Z D, Yu X B.Advance in the research of phosphoglycerate kinase. China tropical medicine, 2005, 5: 385-387 (in Chinese with English abstract)[57] 廖玉才, 张启发, 郑用琏.受白粉菌诱导大麦抗感等基因系蛋白质变化的双向电泳分析. 遗传学报, 1991, 18:431-437[58]Liao Y C, Zhang Q F, Zhen Y L.Two dimensional elctrophoresis of protein associated with powdery mildew infection in barley isogenic lines. Acta genetics sinica, 1991, 18:431-437 (in Chinese with English abstract)