
Molecular and Agro-physiological Study Associated with Net Blotch Resistance at Seedling and Adult Plant Stages in Some Egyptian Barley Genotypes
Journal of Global Ecology and Environment,
Page 13-28
DOI:
10.56557/jogee/2023/v17i28118
Abstract
Net blotch infection is the most widespread and harmful disease for barley that caused substantial losses grain yield and quality, in this study Greenhouse and field experiments were carried out to recorded the net blotch reaction at seedling and adult stage of twenty barley genotypes during two growing seasons 2020/2021 and 2021/2022 .Start Codon Targeted (SCoT) markers were used to study the genetic variances and relationships among barley genotypes against net blotch reaction. The expression of severity to net blotch infection based on agro- physiological traits and net blotch reaction studied showed that Line 3 and Giza 2000 genotypes appeared the highest net blotch infection response that had lowest phenol content, chlorophyll fluorescence (FV/FM ratio) and total chlorophyll content SPAD were (42.52 mg/100g 0.510, 39. 53 SPAD reading and 43.76 mg/100g, 0.543 and 40.50 SPAD reading) respectively. However Giza 132, Giza 134, Giza 137, Giza 136, Line 4, line 5 and line 7 were proved to be the most resistant genotypes for net blotch that showed high average mean performance values for all studied agro- physiological traits over all the tested barley genotypes and scrod one under greenhouse at seedling stage with lowest net blotch infection that they were related to type R. Genetic changeability and associations among 20 barley genotypes based on using ten SCoT markers showed 77 amplified fragments, out of them 61 (77.92%) were polymorphic. The primer (SCoT -9) was highly informative marker which had higher values of total number of bands, number of polymorphic bands, polymorphism percentage, Polymorphism information content, diversity index, marker index and discriminating power DP were ( 10 ,9, 90.0, 0.389, 0.489, 0.499 and 0.692 ) respectively, so we could consider that useful primer to confirm the genetic differences among barley genotypes for net blotch reaction. The dendrogram based on SCoT showed clear pattern of clustering among the twenty barley genotypes with the resistant and susceptible for net blotch. These results could be useful for barley improvement in terms of biodiversity protection and design of new crosses for disease resistance to net blotch resistance in Egypt.
Keywords:
- Barley
- agro-physiological traits
- net blotch (Pyrenophora teres)
- SCoT markers
How to Cite
References
Novakazi F, Göransson M, Stefánsson TS, Hokka M, Jalli M, Hallson JH. Virulence of Icelandic Pyrenophora teres f. teres populations and resistance of Icelandic spring barley lines. J. Plant Pathol. 2022;104:205–213.
Francesco Tini, Lorenzo Covarelli, Giacomo Ricci, Emilio Balducci, Maurizio Orfei, Giovanni Beccari. Management of Pyrenophora teres f. teres, the Causal Agent of Net Form Net Blotch of Barley, in A Two-Year Field Experiment in Central Italy. Pathogens. 2022;11:2912
Liu Z, Ellwood SR, Oliver RP, Friesen TL. Pyrenophora teres: Profile of an increasingly damaging barley pathogen. Mol. Plant Pathol. 2011;12:1–19.
Mathre DE. (Ed.) Compendium of barley diseases, 2nd ed.; American Phytopathological Society Press: St. Paul, MN, USA; 1997., ISBN 089054218X.
Novakazi F, Afanasenko O, Anisimova A, Platz J,•Snowdon R, Kovaleva O, Zubkovich A, Ordon F. Genetic analysis of a worldwide barley collection for resistance to net form of net blotch disease (Pyrenophora teres f. teres). Theor. Appl. Genet. 2019;132:2633–2650.
El-Nawawy MA, Nabila A. Mosustafa, Sherin Ph. Ibrahim. Efficacy of some ecofriendly inducers in controlling barley net blotch. J. Agric. Chem. and Biotechn., Mansoura Univ. 2016;7:153 – 161.
Dora SA, Mansour M, Aziza A. Aboulila, Abdelwahab E. Genetic diversity and relationships among some barley genotypes for net blotch disease resistance using rapd, SCOT and SSR markers. Egypt. J. Genet. Cytol. 2017;46:139-165.
Khatab A Ismael, Samah, A. Mariey, Mona A. Farid. Molecular and morphological screening for net blotch resistance in some Egyptian barley cultivars 4th International Conference on Biotechnology Applications In Agriculture (ICBAA), Moshtohor and Hurghada 4 - 7 APRIL Egypt; 2018.
Mariey A. Samah, Sherin Ph. Mikhail, Sabah Morsy, Mohamed Bosily, Toshihiro Kumamaru, Ismael A. Khatab. Genetic diversity and identification of molecular markers associated with leaf rust resistance in barley genotypes. J. Fac. Agr., Kyushu Univ. 2023;68(1).
Afanasenko O, Rozanova I, Gofman A, Lashina N, Novakazi F, Mironenko N, Baranova O, Zubkovich A. Validation of molecular markers of barley net blotch resistance loci on chromosome 3H for marker-assisted selection. Agriculture. 2022;12:439.
Amezrou Reda, Ramesh Pal Singh Verma, Shiaoman Chao, Robert S. Brueggeman ,Loubna Belqadi, Mustapha Arbaoui, Sajid Rehman, Sanjaya Gyawali. Genome-wide association studies of net form of net blotchresistance at seedling and adult plant stages in spring barley collection. Mol Breeding. 2018;38:58.
Sanjaya Gyawali, Reda Amezrou, Ramesh Pal Singh Verma, Robert Brueggeman, Sajid Rehman, Loubna Belqadi, Mustapha Arbaoui, rabin Tamang, Murari Singh. Seedling and adult stage resistance to spot form of net blotch (SFNB) in spring barley and stability of adult stage resistance to SFNB in Morocco. Eur J Plant Pathol. 2019;153:475–487.
Daniela H, Gordana Š, Georg D, Alojzije L, Tatjana L, Marijana T, Hrvoje P, Luka A, Zvonimir Z. Phenolic acid profiles and antioxidant activity of major cereal crops. Antioxidants (Basel). 2020; 9:527.
Mariey A, Samah Hamza AA, Mahmued EN, Khatab IA. Molecular evaluation and phenol application effects on barley infestation by Rhyzopertha dominica (f.) Journal of Global Agriculture and Ecology. 2022;13:36-51.
Tomasz W, Edyta S, Tadeusz A, Maria S, Zygmunt K. and Agnieszka S. Chlorophyll a fluorescence parameters of hulled and hull-less barley (Hordeum vulgare L.) DH Lines Inoculated with Fusarium culmorum. Plant Pathol. J. 2019;112-124.
Collard BC, Mackill DJ. Start codon targeted (SCoT) polymorphism: a simple, novel DNA marker technique for generating gene-targeted markers in plants. Plant Mol Biol Rep. 2009; 363:557–572.
Singh AK, Rana MK, Singh S. CAAT box-derived polymorphism (CBDP): a novel promoter-targeted molecular marker for plants. J Plant Biochem Biotechnol. 2014;23:175–183.
Rai MK. Start codon targeted (SCoT) polymorphism marker in plant genome analysis: current status and prospects. Planta. 2023;257:34
Ahmed DA, Tahir N.Ar, Salih SH. Genome diversity and population structure analysis of Iranian landrace and improved barley (Hordeum vulgare L.) genotypes using arbitrary functional gene-based molecular markers. Genet Resour Crop Evol. 2021;68:1045–1060.
Habiba, Rehab M, Jamila Bashasha, Soad H. Haffez, Abo Leilah AAA. Assessment of genetic diversity using SCoT markers and some morphological traits in ten lines of barley (Hordeum vulgare L.) Assiut J. Agric. Sci. 2021;52:53-65.
Nourhane O. Abaza, Sawsan S. Yousief, Reda EA. Moghaieb. The efficiency of SCoT, ISSR, and SRAP markers for detecting genetic polymorphism among Egyptian barley genotypes. Journal of Pharmaceutical Negative Results. 2022;1851–1863.
Adawy Sami S, Ayman A. Diab, Abdel-Hadi. Sayed, Shafik D. Ibrahim, Shafik. El-Morsy, Mahmod M. Saker. Construction of genetic linkage map and OTL analysis of net blotch resistance in barley International Journal of Advanced Biotechnology and Research. 2013;4: 348-363.
Tekauz A. A numerical scale to classify reactions of barley to Pyrenophor teres. Canadian Journal of Plant Pathology-Revue Canadienne De Phytopathologie. 1985;7:181-183
Gupta S, loughman GJ, Platz.. RCM lance. Aust. J. Agr. Res. 2003;54:1379- 1386.
Eyal Z, AL- Scharen JM, Prescott, Van Cinkel M. The septoria disease of wheat; concepts and methods of diease management. Mexico D.F.,CIMMYT. 1987;46.
Mong and Bugble .Inherent limitation of nondestructive chlorophyll meter-A comparison of type meter .Hort. Sci., 1992; 27:69-71
Force L, Critchley C, van, Rensen JJS. New fluorescence parameters for monitoring photosynthesis in plants. Photosynth Res. 2003;78:17–33.
Duis M, Hamilton G, Robers JK, PA, Smith F. Colorimetric method for determination of sugar and related substances. Analytical Chemistry. 1956;28:350-35.
Steel RGD, Torrie JH, Deekey DT. Principles and procedures of statistics: A biometrical approach. 3rd ed., McGraw Hill Book Co., Inc. New York; 1997.
Nei M, Li WH. Mathematical model for studying genetic variation in terms of restriction endonucleases. Proc. Natl. Acad. Sci. 1979;76:5269–5273.
Anderson JA, Churchill GA, Autrique, Tanksley JE, SD, ME. Optimizing parental selection for genetic linkage maps. Genome. 1993;36:181–186.
Backes A, Guerriero G, Ait Barka E, Jacquard C. Pyrenophora teres: Taxonomy, morphology, interaction with barley, and mode of control. Front. Plant Sci. 2021;12:614951.
Kortbeek RWJ, van der Gragt M, Bleeker PM. Endogenous plant metabolites against insects. Eur. J. Plant Pathol. 2019;154:67–90.
Gajger TI, Dar SA. Plant Allelochemicals as Sources of Insecticides. Insects. 2021;12:189.
Hendawey MH, Gharib MM, Thanaa A. Marei, Asmaa S. Mohammed. Implication of phenolic compounds and amino acids in tolerance against net blotch disease in barley (Hordeum vulgare L.). Global Journal of Biotechnology & Biochemistry. 2014;9:105-129.
Wonneberger R, Andrea F, Morten L. Identification of quantitative trait loci associated with resistance to net form net blotch in a collection of Nordic barley germplasm. Theor Appl Genet. 2017; 130:2025–2043.
McLean MS, Martin A, Gupta S, Sutherland MW, Hollaway GJ, Platz GJ. Validation of a new spot form of net blotch differential set and evidence for hybridization between the spot and net forms of net blotch in Australia. Australasian Plant Pathol. 2014;43:223-233.
Khatab A. Ismael, Mareiy, Samah A, Eid AA, Noman MM. Efficiency of RAPD and ISSR markers in assessing barley genotypes resistance to net blotch. World Research Journal of Agricultural Biotechnology. 2013;2:21-24.
-
Abstract View: 19 times
PDF Download: 4 times