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Evaluation of Advanced Bread Wheat Lines for Field and Seedling Resistance to Stem Rust (Puccinia graminis f. sp. tritici)

Received: 2 May 2018    Accepted: 23 July 2018    Published: 28 August 2018
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Abstract

Field-based adult plant resistance assessment at multi-location rust hot spot sites is a crucial job for those plant pathologists screening several wheat lines at a time against the rusts. Rust resistant bread wheat genotypes that have been extracted from previous studies have sustained wheat production in Ethiopia. The objective of this study was to evaluate advanced bread wheat lines extracted from wheat breeding trials against stem rust at adult plat stage under stem rust hot spot sites and at seedling stages in the greenhouse. Eighty three lines were further re-evaluated in consecutive two years. Check varieties were included for comparison. High disease pressure was developed on adult plant in the trial as it has been revealed by high severity on susceptible check varieties. Over years average final rust severity, co-efficient of infection and field reaction have used for differentiating Adult plant resistances. Based on ACI, the 843 genotypes evaluated in initial trial in 2013 were categorized into 10 resistance levels, of which 188 genotypes were in high level resistance category, revealing that various level of adult plant resistance is operating in these test materials. Most of 83 genotypes r-evaluated in consecutive two years after initial stage have sustained low final stem rust severity and coefficient of infection as compared with check varieties. Genotypes were varied by adult plant reaction to stem rust, however, lines ETBW7818, ETBW7819, ETBW7258, ETBW 8008, ETBW 8009, ETBW 8017, ETBW 8027, ETBW 8052, ETBW 8054 and ETBW 8055 concisely showed a reaction of R to R-MR invariably with environments. Of the 83 lines tested at seedling stages against four races, 21 lines exhibited resistance to three races JRCQC, TKTTF, TTKSK and TRTTF whereas 24 lines showed susceptibility to the latter three races. Based on adult reaction, final disease severity and coefficient of infection data, Sixty six bread wheat lines and two cultivars Shorima and Huluka sustained final rust severity <30% and low ACI are acceptable for rust resistance breeding in wheat, However, 52 lines showed comparable resistance to Shorima or Hulluka are the priority materials to be used for developing resistant cultivars potentially combining non-race specific and race specific genes which is more durable than cultivars with major resistance gene effect and more efficient than sole adult plant resistance. Inherent resistance genes of these lines are unknown and warrant further description.

Published in American Journal of Biological and Environmental Statistics (Volume 4, Issue 2)
DOI 10.11648/j.ajbes.20180402.14
Page(s) 74-82
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This is an Open Access article, distributed under the terms of the Creative Commons Attribution 4.0 International License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted use, distribution and reproduction in any medium or format, provided the original work is properly cited.

Copyright

Copyright © The Author(s), 2024. Published by Science Publishing Group

Keywords

Bread Wheat, Puccinia graminis, Adult Plant Resistance, Partial Resistance, Seedling Resistance, All Stage Resistance

References
[1] Hailu Gebre-Mariam. 1991. Wheat production and research in Ethiopia. In: Hailu Gebre-Mariam, Tanner, D. G. and Mengistu Hulluka (eds.). Wheat research in Ethiopia: A historical perspective. Addis Ababa, IAR/CIMMYT. pp. 1-15.
[2] CSA. 2017. Central Statistical Agency. The Federal Democratic Republic of Ethiopia, Central Statistical gency, Agricultural Sample Survey 2016/17 (2009 E. C.), Volume I, Report on Area and Production of Major Crops (Private Peasant Holdings, Meher Season), Statistical Bulletin 584, April 2017, Addis Ababa, Ethiopia.
[3] Admassu B, Lind V, Friedt W, Ordon F. 2009. Virulence analysis of Puccinia graminis f. sp. Tritici populations in Ethiopia with special consideration of Ug99. Plant Pathology 58, 362-369.
[4] Ayele Badebo, Eshetu Bekele, Berhanu Bekele, Bekele Hundie, Melaku Degefa, Asnakech Tekalign, Melkamu Ayalew, Amare Ayalew Kiros Meles and Fekede Abebe, 2008, Review of two decades of Research on diseases of small cereal crops. Pp 375-429. In Abraham Tadesse (eds). Increasing crop production through improved plant protection, volume 1 proceedings of the 14th Annual conference of the plant protection society of Ethiopia (PPSE), 19-22 December 2006. Addis Ababa, Ethiopia. PPSE and EIAR, Adiss Ababa, Ethiopa. 598pp.
[5] Eshetu Bekele, 1986. Review of research on diseases of barley, tef and wheat in Ethiopia. Pp. 79-108. In: Tsedeke Abate (ed). A review of crop protection research in Ethiopia. Proceedings of the first crop protection symposium, IAR, Addis Ababa, Ethiopia.
[6] Mengistu Huluka, Getaneh Woldeab, Yeshi Andnew, Rebka Desta and Ayele Badebo. 1991. Wheat pathology research in Ethiopia. In: Hailu Gebre-Mriam, Tanner, D. G. and Mengistu Huluka (eds.). Wheat research in Ethiopia: A historical perspective. Addis Ababa; IAR/CIMMYT.
[7] Wafa Khoury, Keith Cressman and Amor Yahyaoui, 2008. Special Session:Ug99 Status, Management and Prevention. FAO, Rome 9 April 2008.
[8] Bekele Hundie. 2003. Short report on yellow rust and stem rust. In: Bedada Girma (ed). Bale Agricultural development enterprise. Proceedings of the Agronomy workshop, Addis Ababa, Ethiopia.
[9] McIntosh, RA, CR Wellings and RF Park. 1995. Wheat Rusts: An atlas of resistance genes. Plant Breeding Institute, The University of Sydney, CSIRO Australia 1995.
[10] Worku Denbel., Zerihun Tadasse, Daniel Kassa, Habte Zegaye, Dawit Asnake and Wamyera. R. 2016. Development of wheat germplasm for stem rust resistance in Eastern Africa. African Crop Science Journal, Vol. 24, Issue Supplement s1, pp. 25–33.
[11] Endale Hailu and Getaneh. Woldeab. 2015. Survey of Rust and Septoria Leaf Blotch Diseases of Wheat in Central Ethiopia and Virulence Diversity of Stem Rust Puccinia graminis f. sp. tritici. Adv Crop Sci Tech 3: 166. doi:10.4172/2329-8863.1000166.
[12] Endale Hailu, Getaneh Woldaeb, Worku Denbel, Wubishet Alemu, Tekelay Abebe, Agengehu Mekonnen..2015. Distribution of stem Rust (Puccinia graminis f. sp. tritici) Races in Ethiopia. Plant. Vol. 3, No. 2, 2015, pp. 15-19. doi: 10.11648/j.plant.20150302.11.
[13] Olivera, P., Newcomb, M., Szabo, L. J., Rouse, M. N., Johnson, J. L., Hodson, D., Luster, D. G., Cox, J., Burgin, L., Gilligan, C., Patpour, M., Hovmoller, M., Woldeab, G., Hailu, E., Hundie, B., Tadesse, K., Pumphrey, M., Singh, R., Jin, Y. 2015. Phenotypic and genotypic characterization of race TKTTF of Puccinia graminis f. sp. tritici that caused a wheat stem rust epidemic in southern Ethiopia in 2013-2014. Phytopathology. 105 (7):917-928.
[14] Johnson R. 1983. Genetic background of durable resistance. In: Lamberti F, Waller JM, Van der Graaff NA, ed. Durable Resistance in Crops. New York: Plenum, 5-24.
[15] Semenov MA, Halford NG (2009). Identifying target traits and molecular mechanisms for wheat breeding under a changing climate. J. Exper. Bot. 60 (10):2791 -2804.
[16] Burdon J. J (1993). Genetic variation in pathogen populations and its implications for adaptation to host resistance. Durability of disease resistance. Th. Jacobs and J. E. Parlevliet (Eds). Kluwer Academic Publishers, Norwell, MA. pp. 41 -56.
[17] Singh R. P, Hodson D. P, Huerta-Espino J, Jin Y, Njau P, Wanyera R, Herrera-Foessel SA, Ward RW (2008). Will Stem Rust Destroy the World’s Wheat Crop? Adv. Agron. 98:271 -309.
[18] Sing R. P., Hadson, D. P., Huerta-Epino, T., Jin, Y., Bhavani, s., Njau, P., Herreta-Foessel, S, A., Sing, P. K., Sing, S., and Govindan, V. 2011. The emergence of ug99 races of stem rust is a threat to world wheat production. Annu. Rev. phytopathol. 49:465-481.
[19] Jin Y, Singh RP, Ward RW, Wanyera R, Kinyua M, Njau P, Fetch T, Pretorius ZA, Yahyaoui A. 2007. Characterization of seedlinginfection types and adult plant infection responses of monogenic Srgene lines to race TTKS of Puccinia graminis f. sp. tr. tici. Plant Dis. 91:1096-1099.
[20] Peterson R. F, Campbell A. B, Hannah A. E, (1948) A diagrammatic scale for estimating rust intensity on leaves and stems of cereals. Can J Res 26: 496-500.
[21] Roelfs AP, Singh RP, Saari EE (1992). Rust Diseases of Wheat: Concepts and Methods of Disease Management. CIMMIYT, Mexico, DF. ISBN: 968-6127-70-4 p. 81.
[22] Duncan Cheruiyot, Pascal P. Okwiri Ojwang, Peter N. Njau, Peter F. Arama, Sridhar Bhavani. 2015. Evaluation of advanced wheat (Triticum aestivum L.) lines for stem rust (Puccinia graminis f. sp. tritici) resistance and yield. IJAAR, Vol. 6, No. 3, p. 57-70.
[23] Stakman EC, Stewart DM, Loegering WQ (1962). Identification of physiologic races of Puccinia graminis var. tritici. U.S, Agric. Res. Serv. ARS E617:1-53.
[24] ALI, S, S. J. A. Shah and K. Maqbool. 2008. Field-based assessment of partial resistance to yellow rust in wheat Germplasm. J Agric Rural Dev 6 (1&2), 99-106.
[25] Parlevliet, J. E., Van-Ommeren, A. 1975. Partial resistance of barley to leaf rust, Puccinia hordei. II. Relationship between field trials, micro plot tests and latent period. Euphytica 24, 293-303.
[26] Herrera-Foessel, S. A., Singh, R. P., Huerta-Espino, J., Crossa, J., Djurle, A., Yuen, J. 2007. Evaluation of slow rusting resistance components to leaf rust in CIMMYT durum wheats. Euphytica 155, 361-369.
[27] Parlevliet, J. E. 1988. Resistance of the Non-Race-Specific Type. In “The Cereal Rusts”, Vol. II. Diseases, Distribution, Epidemiology and Control, Academic Press, Orelando.
[28] Mulugeta N. 1986. Estimates of phenotypic diversity and breeding potential of Ethiopian wheats. Hereditas 104: 41-48.
[29] Masresha Aklilu. 1996. Wheat rust races identified in virulence surveys in Ethiopia. The Ninth Regional Wheat Workshop for Eastern, Central and Southern Africa. Addis Ababa, Ethiopia: CIMMYT.
[30] Alemayehu Hailu, Getaneh Woldeab, Woubit Dawit and Endale Hailu. 2015. Evaluation of bread wheat varieties to dominant races of stem rust (Puccinia graminis f. sp. tritici) Pathogen. Science Innovation 3 (6): 121-126.
[31] Netsanet Hei, Hussein Ali Shimelis, Mark Laing and Belayneh Admassu. 2015. Assessment of Ethiopian wheat lines for slow rusting resistance to stem rust of wheat caused by Puccinia graminis f.sp.tritici. J.Phytopathol 163, 353-363.
[32] Tolessa Taye, Chemada Fininsa and Getaneh Woldeab. 2014. Evaluation of wheat cultivars for slow rusting resistance in Guji zone Southern Oromia. African Journal of Agricultural Research. Vol. 9 (46), pp3388-3392.
[33] Lemma A, Woldeab G, Semahegn Y. 2015. Virulence Spectrum of Wheat Stem Rust (Puccinia graminis f.sp.tritici) in the Eastern Showa of Central Ethiopia. Adv Crop Sci Tech S1: 008. doi:10.4172/2329-8863.S1-008.
[34] Bhattacharya S. 2017. Deadly new wheat disease threatens Europe’s crops. Nature 542:145–146 DOI 10.1038/nature.2017.21424.
[35] Han JD, Cao YY, Sun ZG. 2010. 2007–2008 Race dynamics of Puccinia graminis f. sp. tritici in China and the virulence of CIMMYT wheat germplasm resistant to Ug99. Journal of Triticeae Crops 30:163–166.
[36] Jin, Y., Szabo, L. J., Pretorius, Z. A., Singh, R. P., Ward, R., and Fetch, T., Jr. 2008. Detection of virulence to resistance gene Sr24 within race TTKS of Puccinia graminis f. sp. tritici. Plant Dis. 92:923-926.
[37] Jin, Y., Szabo, L. J., Rouse, M. N., Fetch T. Jr, Pretorious, Z. A., Wanyera, R. and Njau, P. 2009. Detection of virulence to resistance gene Sr36 within the TTKS race lineage of Puccinia graminis f.sp. tritici. Plant Disease 93: 367-370.
[38] Newcomb, M., Olivera, P. D., Rouse, M. N., Szabo, L. J., Johnson, J., Gale, S., Luster, D. G., Wanyera, R., Macharia, G., Bhavani, S., Hodson, D., Patpour, M., Hovmøller, M. S., Fetch, T. G., Jr., and Jin, Y. 2016. Kenyan isolates of Puccinia graminis f. sp. tritici from 2008 to 2014: Virulence to SrTmp in the Ug99 race group and implications for breeding programs. Phytopathol. 106:729-736.
[39] Ellis JG, Lagudah ES, Spielmeyer W, Dodds PN. 2014. The past, present and future of breeding rust resistant wheat. Front Plant Sci. 5:641. https://doi.org/10.3389/fpls.201 4.00641 PMID: 2550547.
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    Bekele Hundie, Fikirte Yirga, Daniel Kassa, Endale Hailu, Tamirat Negash, et al. (2018). Evaluation of Advanced Bread Wheat Lines for Field and Seedling Resistance to Stem Rust (Puccinia graminis f. sp. tritici). American Journal of Biological and Environmental Statistics, 4(2), 74-82. https://doi.org/10.11648/j.ajbes.20180402.14

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    Bekele Hundie; Fikirte Yirga; Daniel Kassa; Endale Hailu; Tamirat Negash, et al. Evaluation of Advanced Bread Wheat Lines for Field and Seedling Resistance to Stem Rust (Puccinia graminis f. sp. tritici). Am. J. Biol. Environ. Stat. 2018, 4(2), 74-82. doi: 10.11648/j.ajbes.20180402.14

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    AMA Style

    Bekele Hundie, Fikirte Yirga, Daniel Kassa, Endale Hailu, Tamirat Negash, et al. Evaluation of Advanced Bread Wheat Lines for Field and Seedling Resistance to Stem Rust (Puccinia graminis f. sp. tritici). Am J Biol Environ Stat. 2018;4(2):74-82. doi: 10.11648/j.ajbes.20180402.14

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  • @article{10.11648/j.ajbes.20180402.14,
      author = {Bekele Hundie and Fikirte Yirga and Daniel Kassa and Endale Hailu and Tamirat Negash and Tsegaab Tesfaye and Netsanet Bacha and Yewubdar Shewaye and Getaneh Woldeab and Habte Zegaye and Zerihun Tadesse and Bedada Girma},
      title = {Evaluation of Advanced Bread Wheat Lines for Field and Seedling Resistance to Stem Rust (Puccinia graminis f. sp. tritici)},
      journal = {American Journal of Biological and Environmental Statistics},
      volume = {4},
      number = {2},
      pages = {74-82},
      doi = {10.11648/j.ajbes.20180402.14},
      url = {https://doi.org/10.11648/j.ajbes.20180402.14},
      eprint = {https://article.sciencepublishinggroup.com/pdf/10.11648.j.ajbes.20180402.14},
      abstract = {Field-based adult plant resistance assessment at multi-location rust hot spot sites is a crucial job for those plant pathologists screening several wheat lines at a time against the rusts. Rust resistant bread wheat genotypes that have been extracted from previous studies have sustained wheat production in Ethiopia. The objective of this study was to evaluate advanced bread wheat lines extracted from wheat breeding trials against stem rust at adult plat stage under stem rust hot spot sites and at seedling stages in the greenhouse. Eighty three lines were further re-evaluated in consecutive two years. Check varieties were included for comparison. High disease pressure was developed on adult plant in the trial as it has been revealed by high severity on susceptible check varieties. Over years average final rust severity, co-efficient of infection and field reaction have used for differentiating Adult plant resistances. Based on ACI, the 843 genotypes evaluated in initial trial in 2013 were categorized into 10 resistance levels, of which 188 genotypes were in high level resistance category, revealing that various level of adult plant resistance is operating in these test materials. Most of 83 genotypes r-evaluated in consecutive two years after initial stage have sustained low final stem rust severity and coefficient of infection as compared with check varieties. Genotypes were varied by adult plant reaction to stem rust, however, lines ETBW7818, ETBW7819, ETBW7258, ETBW 8008, ETBW 8009, ETBW 8017, ETBW 8027, ETBW 8052, ETBW 8054 and ETBW 8055 concisely showed a reaction of R to R-MR invariably with environments. Of the 83 lines tested at seedling stages against four races, 21 lines exhibited resistance to three races JRCQC, TKTTF, TTKSK and TRTTF whereas 24 lines showed susceptibility to the latter three races. Based on adult reaction, final disease severity and coefficient of infection data, Sixty six bread wheat lines and two cultivars Shorima and Huluka sustained final rust severity <30% and low ACI are acceptable for rust resistance breeding in wheat, However, 52 lines showed comparable resistance to Shorima or Hulluka are the priority materials to be used for developing resistant cultivars potentially combining non-race specific and race specific genes which is more durable than cultivars with major resistance gene effect and more efficient than sole adult plant resistance. Inherent resistance genes of these lines are unknown and warrant further description.},
     year = {2018}
    }
    

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  • TY  - JOUR
    T1  - Evaluation of Advanced Bread Wheat Lines for Field and Seedling Resistance to Stem Rust (Puccinia graminis f. sp. tritici)
    AU  - Bekele Hundie
    AU  - Fikirte Yirga
    AU  - Daniel Kassa
    AU  - Endale Hailu
    AU  - Tamirat Negash
    AU  - Tsegaab Tesfaye
    AU  - Netsanet Bacha
    AU  - Yewubdar Shewaye
    AU  - Getaneh Woldeab
    AU  - Habte Zegaye
    AU  - Zerihun Tadesse
    AU  - Bedada Girma
    Y1  - 2018/08/28
    PY  - 2018
    N1  - https://doi.org/10.11648/j.ajbes.20180402.14
    DO  - 10.11648/j.ajbes.20180402.14
    T2  - American Journal of Biological and Environmental Statistics
    JF  - American Journal of Biological and Environmental Statistics
    JO  - American Journal of Biological and Environmental Statistics
    SP  - 74
    EP  - 82
    PB  - Science Publishing Group
    SN  - 2471-979X
    UR  - https://doi.org/10.11648/j.ajbes.20180402.14
    AB  - Field-based adult plant resistance assessment at multi-location rust hot spot sites is a crucial job for those plant pathologists screening several wheat lines at a time against the rusts. Rust resistant bread wheat genotypes that have been extracted from previous studies have sustained wheat production in Ethiopia. The objective of this study was to evaluate advanced bread wheat lines extracted from wheat breeding trials against stem rust at adult plat stage under stem rust hot spot sites and at seedling stages in the greenhouse. Eighty three lines were further re-evaluated in consecutive two years. Check varieties were included for comparison. High disease pressure was developed on adult plant in the trial as it has been revealed by high severity on susceptible check varieties. Over years average final rust severity, co-efficient of infection and field reaction have used for differentiating Adult plant resistances. Based on ACI, the 843 genotypes evaluated in initial trial in 2013 were categorized into 10 resistance levels, of which 188 genotypes were in high level resistance category, revealing that various level of adult plant resistance is operating in these test materials. Most of 83 genotypes r-evaluated in consecutive two years after initial stage have sustained low final stem rust severity and coefficient of infection as compared with check varieties. Genotypes were varied by adult plant reaction to stem rust, however, lines ETBW7818, ETBW7819, ETBW7258, ETBW 8008, ETBW 8009, ETBW 8017, ETBW 8027, ETBW 8052, ETBW 8054 and ETBW 8055 concisely showed a reaction of R to R-MR invariably with environments. Of the 83 lines tested at seedling stages against four races, 21 lines exhibited resistance to three races JRCQC, TKTTF, TTKSK and TRTTF whereas 24 lines showed susceptibility to the latter three races. Based on adult reaction, final disease severity and coefficient of infection data, Sixty six bread wheat lines and two cultivars Shorima and Huluka sustained final rust severity <30% and low ACI are acceptable for rust resistance breeding in wheat, However, 52 lines showed comparable resistance to Shorima or Hulluka are the priority materials to be used for developing resistant cultivars potentially combining non-race specific and race specific genes which is more durable than cultivars with major resistance gene effect and more efficient than sole adult plant resistance. Inherent resistance genes of these lines are unknown and warrant further description.
    VL  - 4
    IS  - 2
    ER  - 

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Author Information
  • Ethiopian Institute of Agricultural Research (EIAR), Kulumsa Agricultural Research Center, Asella, Ethiopia

  • Ethiopian Institute of Agricultural Research (EIAR), Kulumsa Agricultural Research Center, Asella, Ethiopia

  • Ethiopian Institute of Agricultural Research (EIAR), Kulumsa Agricultural Research Center, Asella, Ethiopia

  • Ambo Plant Protection Research Center, Ambo, Ethiopia

  • Ethiopian Institute of Agricultural Research (EIAR), Kulumsa Agricultural Research Center, Asella, Ethiopia

  • Ambo Plant Protection Research Center, Ambo, Ethiopia

  • Ambo Plant Protection Research Center, Ambo, Ethiopia

  • Ethiopian Institute of Agricultural Research (EIAR), Kulumsa Agricultural Research Center, Asella, Ethiopia

  • Ambo Plant Protection Research Center, Ambo, Ethiopia

  • Ethiopian Institute of Agricultural Research (EIAR), Kulumsa Agricultural Research Center, Asella, Ethiopia

  • Ethiopian Institute of Agricultural Research (EIAR), Kulumsa Agricultural Research Center, Asella, Ethiopia

  • Ethiopian Institute of Agricultural Research (EIAR), Kulumsa Agricultural Research Center, Asella, Ethiopia

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