journal article Jul 08, 2011

Cloning and characterization of a Verticillium wilt resistance gene from Gossypium barbadense and functional analysis in Arabidopsis thaliana

View at Publisher Save 10.1007/s00299-011-1115-x
Topics

No keywords indexed for this article. Browse by subject →

References
62
[1]
A new generation of information retrieval tools for biologists: the example of the ExPASy WWW server

Ron D. Appel, Amos Bairoch, Denis F. Hochstrasser

Trends in Biochemical Sciences 1994 10.1016/0968-0004(94)90153-8
[2]
Bae J, Halterman DA, Jansky SH (2008) Development of a molecular marker associated with Verticillium wilt resistance in diploid interspecific potato hybrids. Mol Breed 22:61–69 10.1007/s11032-008-9156-8
[3]
Belfanti E, Silfverberg-Dilworth E, Tartarini S, Patocchi A, Barbieri M, Zhu J, Vinatzer BA, Gianfranceschi L, Gessler C, Sansavini S (2004) The HcrVf2 gene from a wild apple confers scab resistance to a transgenic cultivated variety. Proc Natl Acad Sci USA 101:886–890 10.1073/pnas.0304808101
[4]
Botella MA, Parker JE, Frost LN, Bittner-Eddy PD, Beynon JL, Daniels MJ, Holub EB, Jones JDG (1998) Three genes of the Arabidopsis RPP1 complex resistance locus recognize distinct peronospora parasitica avirulence determinants. Plant Cell 10:1847–1860 10.1105/tpc.10.11.1847
[5]
Boudichevskaia A, Flachowsky H, Dunemann F (2009) Identification and molecular analysis of candidate genes homologous to HcrVf genes for scab resistance in apple. Plant breed 128:84–81 10.1111/j.1439-0523.2008.01537.x
[6]
Burch-Smith TM, Anderson JC, Martin GB, Dinesh-Kumar SP (2004) Applications and advantages of virus-induced gene silencing for gene function studies in plants. Plant J 39:734–746 10.1111/j.1365-313x.2004.02158.x
[7]
Burch-Smith TM, Schiff M, Liu YL, Dinesh-Kumar SP (2006) Efficient virus-induced gene silencing in Arabidopsis. Plant Physiol 142:21–27 10.1104/pp.106.084624
[8]
Chen JY, Dai XF (2010) Cloning and characterization of the Gossypium hirsutum major latex protein gene and functional analysis in Arabidopsis thaliana. Planta 231:861–873 10.1007/s00425-009-1092-2
[9]
Chern M, Fitzgerald HA, Canlas PE, Navarre DA, Ronald PC (2005) Overexpression of a rice NPR1 homolog leads to constitutive activation of defense response and hypersensitivity to light. Mol Plant Microbe Interact 6:511–520 10.1094/mpmi-18-0511
[10]
Clough SJ, Bent AF (1998) Floral dip: a simplified method for Agrobacterium-mediated transformation of Arabidopsis thaliana. Plant J 16:735–743 10.1046/j.1365-313x.1998.00343.x
[11]
Corsini D, Pavek JJ (1996) Agronomic performance of potato germplasm selected for high resistance to Verticillium wilt. Am J Potato Res 73:249–260 10.1007/bf02849275
[12]
Dangl JL, Jones JDG (2001) Plant pathogens and integrated defence responses to infection. Nature 411:826–833 10.1038/35081161
[13]
De Lorenzo G, Ferrari S (2002) Polygalacturonase-inhibiting proteins in defense against phytopathogenic fungi. Curr Opin Plant Biol 5:295–299 10.1016/s1369-5266(02)00271-6
[14]
DeYoung BJ, Innes RW (2006) Plant NBS-LRR proteins in pathogen sensing and host defense. Nat Immunol 7:1243–1249 10.1038/ni1410
[15]
Di CX, Li M, Long F, Bai MQ, Liu YJ, Zheng XL, Xu SJ, Xiang Y, Sun ZL, An LZ (2009) Molecular cloning, functional analysis and localization of a novel gene encoding polygalacturonase-inhibiting protein in Chorispora bungeana. Planta 231:169–178 10.1007/s00425-009-1039-7
[16]
Dixon MS, Jones DA, Keddie JS, Thomas CM, Harrison K, Jones JDG (1996) The tomato Cf-2 disease resistance locus comprises two functional genes encoding leucine-lich lepeat proteins. Cell 84:451–459 10.1016/s0092-8674(00)81290-8
[17]
Eitas TK, Nimchuk ZL, Dangl JL (2008) Arabidopsis TAO1 is a TIR-NB-LRR protein that contributes to disease resistance induced by the Pseudomonas syringae effector AvrB. Proc Natl Acad Sci USA 105:6475–6480 10.1073/pnas.0802157105
[18]
Ellendorff U, Fradin EF, de Jonge R, Thomma BPHJ (2009) RNA silencing is required for Arabidopsis defence against Verticillium wilt disease. J Exp Bot 60:591–602 10.1093/jxb/ern306
[19]
El-Zik KM, Thaxton PM (1989) Genetic improvement for resistance to pests and stresses in cotton. In: Frisbie RE, El-Zik KM, Wilson LT (eds) Integrated Pest Management System and Cotton Production. Wiley, New York, pp 191–224
[20]
El-Zik KM, Thaxton PM (2001) Improving insect and disease resistance utilizing the multi adversity resistance (MAR) system. In: Jenkins JN, Saha S (eds) Genetic improvement of cotton: emerging technologies. Science Publishers, Inc., Enfield, NH, pp 17–41
[21]
Fei J, Chai YR, Wang J, Lin J, Sun XF, Sun C, Zuo KJ, Tang KX (2004) cDNA Cloning and characterization of the Ve homologue gene StVe from Solanum torvum Swartz. Mitochondrial DNA 15:88–95
[22]
Fradin EF, Thomma BPHJ (2006) Physiology and molecular aspects of Verticillium wilt diseases caused by V. dahliae and V. albo-atrum. Mol Plant Pathol 7:71–86 10.1111/j.1364-3703.2006.00323.x
[23]
Fradin EF, Zhang Z, Juarez Ayala JC, Castroverde CDM, Nazar RN, Robb J, Liu CM, Thomma BPHJ (2009) Genetic dissection of Verticillium wilt resistance mediated by tomato Ve. Plant Physiol 150:320–333 10.1104/pp.109.136762
[24]
Fritz-Laylin LK, Krishnamurthy N, Tör MT, Sjölander KV, Jones JDG (2005) Phylogenomic analysis of the receptor-like proteins of rice and Arabidopsis. Plant Physiol 138:611–623 10.1104/pp.104.054452
[25]
Gao F, Shu XM, Ali MB, Howard S, Li N, Winterhagen P, Qiu WP, Gassmann W (2010) A functional EDS1 ortholog is differentially regulated in powdery mildew resistant and susceptible grapevines and complements an Arabidopsis eds1 mutant. Planta 231:1037–1047 10.1007/s00425-010-1107-z
[26]
Grant MR, Godiard L, Straube E, Ashfield T, Lewald J, Sattler A, Innes RW, Dangl JL (1995) Structure of the Arabidopsis RPM1 gene enabling dual specificity disease resistance. Science 269:843–846 10.1126/science.7638602
[27]
Hepworth SR, Zhang YL, McKim S, Li X, Haughn GW (2005) Blade-on-petiole-dependent signaling controls leaf and floral patterning in Arabidopsis. Plant Cell 17:1434–1448 10.1105/tpc.104.030536
[28]
Horton P, Nakai K (1997) Better prediction of protein cellular localization sites with the k nearest neighbors classifier. Proc Int Conf Intell Syst Mol Biol 5:147–152
[29]
Huang B, Liu JY (2006) A cotton dehydration responsive element binding protein functions as a transcriptional repressor of DRE-mediated gene expression. Biochem Biophys Res Commun 343:1023–1031 10.1016/j.bbrc.2006.03.016
[30]
Jian GL, Ma C, Zhang CL (2003) Advance in cotton breeding for resistance to Fusarium and Verticillium wilt in the last fifty years in China. Agric Sci China 2:280–288
[31]
Jones JD (2001) Putting knowledge of plant disease resistance genes to work. Curr Opin Plant Biol 4:281–287 10.1016/s1369-5266(00)00174-6
[32]
Jones DA, Thomas CM, Hammond-Kosack KE, Balint-Kurti PJ, Jones JDG (1994) Isolation of the tomato Cf-9 gene for resistance to Cladosporium fulvum by transposon tagging. Science 266:789–793 10.1126/science.7973631
[33]
Kawchuk L, Hachey J, Lynch DR, Klcsar F, van Rooijen G, Waterer DR, Robertson A, Kokko E, Byers R, Howard RJ, Fischer R, Prüfer D (2001) Tomato Ve disease resistance genes encode cell surface-like receptors. Proc Natl Acad Sci USA 98:6511–6515 10.1073/pnas.091114198
[34]
Kobe B, Deisenhofer J (1994) The leucine-rich repeat: a versatile binding motif. Trends Biochem Sci 19:415–421 10.1016/0968-0004(94)90090-6
[35]
Analysis of Relative Gene Expression Data Using Real-Time Quantitative PCR and the 2−ΔΔCT Method

Kenneth J. Livak, Thomas D. Schmittgen

Methods 2001 10.1006/meth.2001.1262
[36]
Lynch DR, Kawchuck LM, Hachey J (1997) Identification of a gene conferring high levels of resistance to Verticillium wilt in Solanum chacoense. Plant Dis 81:1001–1014 10.1094/pdis.1997.81.9.1011
[37]
Ma ZY, Wang XF, Zhang GY, Liu SQ, Liu JL, Sun JZ (2000) Genetic studies of Verticillium wilt resistance among different types of Sea Island cottons. Acta Agronomica Sinica 26:315–321
[38]
Malnoy M, Xu M, Borejsza-Wysocka E, Korban SS, Aldwinckle HS (2008) Two receptor-like genes, Vfa1 and Vfa2, confer resistance to the fungal pathogen Venturia inaequalis inciting apple scab disease. Mol Plant Microbe Interact 21:448–458 10.1094/mpmi-21-4-0448
[39]
Meyers BC, Kozik A, Griego A, Kuang H, Michelmore RW (2003) Genome-wide analysis of NBS-LRR-encoding genes in Arabidopsis. Plant Cell 15:809–834 10.1105/tpc.009308
[40]
Murashige T, Skoog F (1962) A revised medium for rapid growth and bioassays with tobacco tissue cultures. Physiol Plant 15:473–479 10.1111/j.1399-3054.1962.tb08052.x
[41]
Identification of prokaryotic and eukaryotic signal peptides and prediction of their cleavage sites

H. Nielsen, J. Engelbrecht, S. Brunak et al.

"Protein Engineering, Design and Selection" 1997 10.1093/protein/10.1.1
[42]
Okie WR, Gardner RG (1982) Screening tomato seedlings for resistance to Verticillium dahliae races 1 and 2. Plant Dis 66:34–37 10.1094/pd-66-34
[43]
Pan Q, Liu YS, Budai-Hadrian O, Sela M, Carmel-Goren L, Zamir D, Fluhr R (2000) Comparative genetics of nucleotide binding site-leucine rich repeat resistance gene homologues in the genomes of two dicotyledons: tomato and Arabidopsis. Genetics 155:309–322 10.1093/genetics/155.1.309
[44]
Peart JR, Mestrel P, Lu R, Malcuit I, Baulcombe DC (2005) NRG1, a CC-NB-LRR protein, together with N, a TIR-NB-LRR protein, mediates resistance against tobacco mosaic virus. Curr Biol 15:968–973 10.1016/j.cub.2005.04.053
[45]
Rommens CM, Kishore GM (2000) Exploiting the full potential of disease-resistance genes for agricultural use. Curr Opin Plant Biol 11:120–125
[46]
Ron M, Avni A (2004) The receptor for the fungal elicitor ethylene inducing xylanase is a member of a resistance-like gene family in tomato. Plant Cell 16:1604–1615 10.1105/tpc.022475
[47]
Rowe RC, Davis JR, Powelson ML, Rouse DI (1987) Potato early dying: causal agents and management strategies. Plant Dis 71:482–489 10.1094/pd-71-0482
[48]
Schaible L, Cannon OS, Waddoups V (1951) Inheritance of resistance to Verticillium wilt in a tomato cross. Phytopathology 41:986–990
[49]
Scott A, Wyatt S, Tsou PL, Robertson D, Allen NS (1999) Model system for plant cell biology: GFP imaging in living onion epidermal cells. Biotechnology 26:1125–1132 10.2144/99266st04
[50]
Shanmugam V (2005) Role of extracytoplasmic leucine rich repeat proteins in plant defence mechanisms. Microbiol Res 160:83–94 10.1016/j.micres.2004.09.014

Showing 50 of 62 references

Metrics
89
Citations
62
References
Details
Published
Jul 08, 2011
Vol/Issue
30(11)
Pages
2085-2096
License
View
Cite This Article
Yu-Zhong Zhang, Xingfen Wang, Shuo Yang, et al. (2011). Cloning and characterization of a Verticillium wilt resistance gene from Gossypium barbadense and functional analysis in Arabidopsis thaliana. Plant Cell Reports, 30(11), 2085-2096. https://doi.org/10.1007/s00299-011-1115-x