The HLP mutation confers enhanced resistance to leafrust in different wheat genetic backgrounds
Cristina Andrea Kamlofski, Alberto Acevedo
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DOI: 10.4236/as.2010.12008   PDF    HTML     7,268 Downloads   11,315 Views   Citations

Abstract

In several plant species, lesionmimic mutants simulate the diseaseresistance response in the absence of pathogens. Interestingly, some of these mutants confer broadspectrum resistance to diverse pathogens. We previously demonstrated that the HLP (hypersensitivelike phenotype) mutant of bread wheat (Triticum aestivum L.) exhibited spontaneous hypersensitive response (HR) in the absence of any pathogen input. However, when HLP plants showing HR phenotype were challenged with leafrust (Puccinia triticina) they were more resistant than plants of the motherline of comparable developmental stage that did not show spontaneous HR, suggesting that the HLP mutation may confer enhanced resistance to the fungus. In this paper we validate the aforementioned finding in several wheat genetic backgrounds. Two way crosses were performed among the HLP mutant and eight wheat commercial stocks, and third backcross progenies with and without spontaneous HR were challenged with leafrust to investigate the response to the fungus. Backcrosses to cv. Sinvalocho M.A., the mother line, and cv. Purplestraw, highly susceptible to leafrust attack, were used as controls. Third backcross progenies of cvs. Sinvalocho M.A., Purplestraw, Buck Guaraní and Pro INTA Imperial bearing spontaneous HR phenotype were more resistant to the fungal pathogen than third backcross progenies that did not carry the HLP mutation. Other four wheat stocks were as healthy as the HLP mutant. As expected, backcross to the motherline demonstrated that the HLP mutation conferred an additional resistance to the already healthy performance displayed by the motherline at adult plant stage. The introgression of the HLP mutation conferred heigh tened leafrust resistance and caused no kernel weight reduction on the backcrossed progenies. Taken together, these data validate the direct use of this type of mutations in diseaseresis tance breeding.

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Kamlofski, C. and Acevedo, A. (2010) The HLP mutation confers enhanced resistance to leafrust in different wheat genetic backgrounds. Agricultural Sciences, 1, 56-61. doi: 10.4236/as.2010.12008.

Conflicts of Interest

The authors declare no conflicts of interest.

References

[1] Dangl, J.L., Dietrich, R.A. and Richberg, M.H. (1996) Death don’t have no mercy: Cell death programs in plant microbe interactions. The Plant Cell, 8(10), 17931807.
[2] Greenberg, J.T. and Ausubel, F.M. (1993) Arabidopsis mutants compromised for the control of cellular damage during pathogenesis and aging. The Plant Journal, 4(2), 327342.
[3] Rate, D.N., Cuenca, J.V., Bowman, G.R., Guttman, D.S. and Greenberg, J.T. (1999) The gainoffunction Arabidopsis acd 6 mutant reveals novel regulation and function of the salicylic acid signaling pathway in controlling cell death, defenses, and cell growth. The Plant Cell, 11(2), 191206.
[4] Yao, N. and Greenberg, J.T. (2006) Arabidopsis accelerated cell death 2 modulates programmed cell death. Plant Cell, 18(2), 397411.
[5] Pilloff, R.K., Devadas, S.K., Enyedi, A. and Raina, R. (2002) The Arabidopsis gainoffunction mutant dll1 spontaneously develops lesions mimicking cell death associated with disease. The Plant Journal, 30(1), 6170.
[6] Balagué, C., Lin, B., Alcon, C., Flottes, G., Malmstrom, S., Kohler, C., Neuhaus, G., Pelletier, G., Gaymard, F. and Roby, D. (2003) HLM1, an essential signaling component in the hypersensitive response, is a member of the cyclic nucleotidegated channel ion channel family. Plant Cell, 15(2), 365379.
[7] Ishikawa, A., Tanaka, H., Nakai, M. and Asahi, T. (2003) Deletion of a chaperonin 60 gene leads to cell death in the Arabidopsis lesion initiation 1 mutant. Plant and Cell Physiology, 44(3), 255261.
[8] Dietrich, R.A., Delaney, T.P., Uknes, S.J., Ward, E.R., Ryals, J.A. and Dangl, J.L. (1994) Arabidopsis mutants simulating disease resistance response. Cell, 77(4), 565 577.
[9] Shah, J., Kachroo, P. and Klessig, D.F. (1999) The Arabidopsis ssi1 mutation restores pathogenesisrelated gene expression in npr1 plants and renders defensin gene expression salicylic acid dependent. The Plant Cell, 11(2), 191206.
[10] Kachroo, P., Shanklin, J., Shah, J., Whittle, E.J. and Klessig, D.F. (2001) A fatty acid desaturase modulates the activation of defense signaling pathways in plants. Proceedings of the National Academy of Sciences, 98(16), 94489453.
[11] Dietrich, R.A., Richberg, M.H., Schmidt, R., Dean, C. and Dangl, J.L. (1997) A novel zinc finger protein is encoded by the arabidopsis LDS1 gene and functions as a negative regulator of plant cell death. Cell, 88(5), 685694.
[12] Jarosch, B., Kogel, K. and Schaffrath, U. (1999) The ambivalence of the barley mlo locus: Mutations conferring resistance against powdery mildew (Blumeria graminis f.sp. hordei) enhance susceptibility to the rice blast fungus Magnaporthe grisea. Molecular Plant Microbe Interactions, 12, 508514.
[13] Kj?r, B., Jensen, H.P., Jensen, J. and Helms, J.J. (1990) Associations between three mlo powdery mildew resistance genes and agronomic traits in barley. Euphytica, 46(3), 185193.
[14] Takahashi, A., Kawasaki, T., Henmi, K., Shi, I.K., Kodama, O., Satoh, H. and Shimamoto, K. (1999) Lesion mimic mutants of rice with alterations in early signaling events of defense. The Plant Journal, 17(5), 535545.
[15] Yin, Z., Chen, J., Zeng, L., Goh, M., Leung, H., Khush, G.S. and Wang, G.L. (2000) Characterizing rice lesion mimic mutants and identifying a mutant with broad spectrum resistance to rice blast and bacterial blight. Mol Plant Microbe Interact, 13(8), 869876.
[16] Mizobuchi, R. and Hirabayashi, H. (2002) Isolation and characterization of rice lesion mimic mutants with enhanced resistance to rice blast and bacterial blight. Plant Science, 163(2), 345353.
[17] Campbell, M.A. and Ronald, P.C. (2005) Characterization of four rice mutants with alterations in the defence response pathway. Molecular Plant Pathology, 6(1), 1112.
[18] Wu, C., Bordeos, A., Madamba, M.R., Baraoidan, M., Ramos, M., Wang, G.L., Leach, J.E. and Leung, H. (2008) Rice lesionmimic mutants with enhanced resistance to diseases. Molecular Genetics and Genomics, 279, 605 619.
[19] Kinane, J.T. and Jones, P.W. (2001) Isolation of wheat mutants with increased resistance to powdery mildew from small induced variant populations. Euphytica, 117(3), 251260.
[20] Boyd, L.A. and Minchin, P.N. (2001) Wheat mutants showing altered adult plant disease resistance. Euphytica, 122(2), 361368.
[21] Boyd, L.A., Smith, P.H., Wilson, A.H. and Minchin, P.N. (2002) Mutations in wheat showing altered field resistance to yellow and brown rust. Genome, 45(6), 1035 1040.
[22] Kamlofski, C.A., Antonelli, E., Bender, C., Jaskelioff, M., Danna, C.H., Ugalde, R. and Acevedo, A. (2007) A lesionmimic mutant of wheat with enhanced resistance to leaf rust. Plant Pathol, 56(1), 4654.
[23] Sacco, F., Suárez, E.Y. and Naranjo, T. (1998) Mapping of the leaf rust resistance gene Lr3 on chromosome 6B of Sinvalocho M.A. Genome, 41(5), 686690.
[24] Campos, P. (2004) Diferencias en la población patógena de Puccinia triticina que afecta a los cultivos de trigo pan (Triticum aestivum) y trigo candeal (Triticum turgidum var: durum). Actas VI Congreso Nacional de Trigo, Bahía Blanca, Buenos Aires.
[25] Ingala, L.R., Saione, H.A., Nisi, J., Helguera, M. and Sacco, F. (2004) Identificación de genes para resistencia a roya de la hoja y de marcadores de ADN asociados a los mismos en un cultivar de trigo con resistencia durable. Actas XXXIII Congreso Argentino de Genética, Sociedad Argentina de Genética, Mendoza, 112.
[26] Manifesto, M.M., Schlatter, A.R., Hopp, H.E., Suarez, E.Y. and Dubcovsky, J. (2001) Quantitative evaluation of genetic diversity in wheat germplasm using molecular markers. Crop Science, 41(3), 682690.
[27] Mains, E.B. and Jackson, H.S. (1926) Physiological specialization in the leaf rust of wheat Puccinia triticina Erikss. Phytopathology, 16, 89120.
[28] Roelfs, A.P., Singh, R.P. and Saari, E.E. (1992) Rust diseases of wheat: concepts and methods of disease management. CIMMYT, Mexico, 80.
[29] Weymann, K., Hunt, M., Uknes, S., Neuenschwander, U., Lawton, K., Steiner, H.Y. and Ryals, J. (1995) Suppression and restoration of lesion formation in Arabidopsis lsd mutants. The Plant Cell, 7(12), 20132022.

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