Volume 9, Issue 22 (9-2017)                   jcb 2017, 9(22): 41-52 | Back to browse issues page


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Gorgan University of Agricultural Sciences and Natural Resources
Abstract:   (3536 Views)
Barleys one of the important four major crops in the world after wheat, corn and rice. About 2.16 million hectare of arable land was cultivated by barely in 2011-2012. In order to investigate heritability and gene action was used barely half-diallel of 7 × 7 in some barley-related yield traits. For this purpose were used in 6 barley genotypes with Sahra variety (the native desert). Tests carried out in a randomized complete block design with three replications at the Agricultural Research Station of gorgan (Iraqi Research Station neighborhood) 2011-2012 and 2012-2013 years. The traits were of grains per spike, grain weight per spike, spike weight, grain weight, 1000 grain weight, spikelet number, plant height, spike length, peduncle length and days to maturity. The results showed significant mean square of parents and crosses for all traits. Therefore, performed genetic analysis for traits In most of the traits was estimated to be non-additive variance greater than additive, also, calculation of average degree of dominance indicated for all traits except spike lengthover dominance genes effect, graphical analysis that confirmed it. Broad sense heritability not so high for traits, So phenotypic selection is not an appropriate method and the results will not be consolidated in next generations. So, hybridization will be more effective method of selection for traits in order to achieve the objectives of the reform. 166/352 genotypes for temperate regions has the highest average seed number and weight of grains per spike and the highest average seed number and weight of grains per spike and 166/352×283/352 crosses have become the highest average grain yield related traits.
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Type of Study: Research | Subject: اصلاح نباتات، بیومتری
Received: 2017/10/9 | Revised: 2019/04/15 | Accepted: 2017/10/9 | Published: 2017/10/9

References
1. AL-Tabbal, J.A. and A.H. AL-Fraihat. 2012. Genetic variation, heritability, phenotypic and genotypic correlation studies for yield and yield components in promising barley genotypes. Journal of Agricultural Science, 4: 193-210. [DOI:10.5539/jas.v4n3p193]
2. Azhar, F.M. and T. Mcneilly. 1988. The genetic basis of variation for salt tolerance in Sorghum bicolor L. Moench seedlings. Plant Breeding, 10: 114-121. [DOI:10.1111/j.1439-0523.1988.tb00275.x]
3. Baghizadeh, A., E. Talei, M.R. Naghavi and H. Zeinali Khanghah. 2005. Assesmet Inheritance ability quantitativeof treats in barley (Hordeum vulgare) by analysis mean generation. Journal Agriculture Scientific Iran, 35: 851-851 (In Persian).
4. Baghizadeh, A., E. Talei, M.R. Naghavi and H. Zeinali Khanghah. 2005. Genetic analysis of grain yield related treats in barley (Hordeum vulgare L.), Afzal/Cwb cross. Journal Plant & Seed, 20: 235-243 (In Persian).
5. Bayat, F. and B.Vaezi. 2017. Evaluation of grain ield components in some barley (Hordeum vulgare L.) genotypes. Journal of Crop Breeding, 20: 220-227 (In Persian).
6. Badooei Delfard, R., K.H. Mostafavi and A. Mohammadi. 2017. Genotype-invironment interaction and yield stability of winter barley varieties (Hordeum vulgare L.), Journal of Crop Breeding, 20: 99-106 (In Persian).
7. Centre for Information and Communication Technology Ministry of Agricultural. 2013. The first volume of agricultural crops in the agricultural Statistics letters 2010-2012. Ministry of Agricultural Department of Planning and Economic Program, Center for Information and Communication Technology.
8. Drought tolerance in breed wheat using generation mean analysis. Journal of Plant Production, 19: 43-65 (In Persian).
9. Chowdhry, M.A., A. Ambreen and I. Khalig. 2002. Genetic control of some polygenic traits in vulgare Species. Plant Science, 1: 235-237. [DOI:10.3923/ajps.2002.235.237]
10. Dehghani, H., M. Torabi, M. Moghadam and M.R. Ghanadha. 2006. Cross-plot analysis of bi plot-type allele of yellow rust of wheat. Journal Plant & Seed, 21: 123-138 (In Persian).
11. Eraja, L., T.P.S. Chuhan, V. Thiagaraja, V. Lakshman and C.K. Kamble. 1997. Line×tester analysis of combining ability in new genotypes of biviltine silkworm. Ind. Journal Agriculture Science, 67: 287-290.
12. Eshghi, R. and E. Akhundova. 2010. Inheritance Pattern of β-glucan and Protein Countents in Hulless Barley. International Journal of Agriculture & Biology, 12: 68-72 (In Persian).
13. Fehr, W.R. 1993. Principles of cultivar development. Vol. 1. MacMillan Publish. Co. New York, USA. 342 pp.
14. Gougerdchi, V., S. Dezhsetan, M. Izadi Dogonchi, M.A. Aebrahimi, A. Asghari and B. Sadeghzadeh. 2017. Journal of Crop Breeding, 20: 60-69 (In Persian).
15. Hajmansoor, S.H., M.R. Bepanah, A.R. Nabipoor, A. Mohamadi, M. Pirseyedi and H.R. Nikkhah. 2010. Genetic diversity in barley genotypes: seed storage proteins (hordeins) and agronomic traits. Plant breeding & Seed, 4: 1-25 (In Persian).
16. Hanson, C.H. 1959. Heritability RRC Wshington DC. 125-129.
17. Heidari, B. 2010. Genetic variation and genetic ain from selection in bread wheat. Electronic Journal of crop production, 3: 239-246 (In Persian).
18. Jinks, J.L. and B.I. Hyman. 1953. The analysis of diallel crosses. Maize Genetic Crop News land, 27: 48-54.
19. Johnson, L.P.V. and R. Askel. 1964. The inheritance of malting quality and agronomic characters in diallel crosses of Barely. Canadian Journal Genetic Cytology, 6: 178-200. [DOI:10.1139/g64-024]
20. Kashif, M. and A. Salam Khan. 2008. Combining ability studies for some yield contributing traits of bread wheat under normal and late sowing conditions. Pakistan Journal Agricalture Science, 45: 44-49.
21. Kearsey, M.T. and H.S. Pooni. 1998. Genetical Analysis of Quantitative Traits. Chapman and Hall.
22. Kularia, R.K. and A.K. Sharma. 2005. Generation mean analysis for yield and its component traits in barley (Hordeum Vulgare L.). Indian Journal of Genetics and Plant Breeding, 65: 129-130.
23. Mann, M.S. and S.N. Sharma. 1995. Genetics of yield, harvest index and related components in durum wheat. Crop Improvement, 22: 38-44.
24. Mather, K.K. and J.L. Jinks. 1982. Introduction to biometrical Genetics. Chapman and Hall Ltd London 3rd, pp: 81-84 [DOI:10.1007/978-1-4899-3406-2]
25. Nakhjavan, Sh., F. Darvish, B. Sorkhi and M. Zahravi. 2009. Assesmet Inheritance ability quantitative of treats in barley (Hordeum vulgare) under irrigation and drought season using mean generation analysis. The New fond Agricultural, 3: 204-223 (In Persian).
26. Nakhjavan, S., M. Behamta, F. Darvish, B. Sorkhi and M. Zahravi. 2010. Study on gene action for some quantitative traits in barley under normal irrigation and terminal drought conditions on cross between EC84-12×1-BC-80455. The 11th Iranian Congress of Crop Sciences (In Persian).
27. Pal, D. and S. Kumar. 2009. Genetic analysis of forage yield and other traits in barley (Hordeum vulgare L.). Barley Genetics Newsletter, 39: 13-19.
28. Prakash, V., R.V. Singh and D.D. Saini. 2005. Gene action for grain yield and its related traits in barley (Hordeum Vulgare L.). Crop Improvement, 2005, 32: 40-43.
29. Pourkheirandish, M. and T. Komatsuda. 2007. The importance of barley genetics and domestication in a global perspectives Annals of Botany, 100: 999-1008. [DOI:10.1093/aob/mcm139]
30. Rahimi, M., F. Erahim pour and R. Eshgi. 2013. Determine heritability and mapping controlling genes agronomic traits on barley. Crop Biotechnology, 2: 35-48 (In Persian).
31. Rohman, M.M., R. Sultana, R. Podder, A.T.M. Tanjimul Islam, M. Kamrul Islam and M.S. Islam. 2006. Nature of gene action in barley (Hordeum vulgare L.). Asian Journal of Plant Sciences, 5: 170-173. [DOI:10.3923/ajps.2006.170.173]
32. Singh, R.K. and B.D. Chaudhry. 1985. Biometrical methods in quantitative genetic analysis. Kalyani, Pub. Ludhiana, New Delhi, Revised Ed., 102-118.
33. Singh, S.K., H.C. Singh and H.L. Singh. 2006. Inheritance of quality traits in barley (Hordeun vulgare L.). International Journal of Plant Sciences, 1: 304-305.
34. Sing, N. 2012. Study of heritability and genetic advance in barley (Hordeum vulgare L.) on affected soil. International Journal of Food, Agriculture and Veterinary Sciences, 2: 35-39.
35. Tahmasebi, S., M. Khodam Bashi, E.M. Rezai. 2008. Estimates of genetic parameters for grain yield and its related traits using optimum conditions and drought stress in diallel crosses. Science and Technolog of Agriculture and Natural Resources, 11: 229-240 (In Persian).
36. UR-Rehman, A., I. KHallq, M. Aslam Khan, R. Imran and K. Hushnood. 2002. Combining ability studies for polygenic characters in Aestivum species, International Journal Agriculture Biology, 4: 171-174.
37. Wali Muhammad, R., A. Qayyum, SH. Liaqat, A. Hamza, M. Muhammad Yousaf, B. Ahmad, J. Shah, M. Hussain, A. Naveed Ahsan, S. Hussain Qurashi and E. Noor. 2012. Variability, heritability and genetic advance for some yield and yield related traits in barley (Hordeum vulgare L.) genotypes in arid condirions. Journal of Food, Agriculture & Environment, 10: 626-629.
38. Wilson, N.D., D.E. Weible and R.W. Mcnew. 1978. Diallel analysis of grain yield, percent protein and protein yield in Sorghum. Crop Science, 18: 491-495. [DOI:10.2135/cropsci1978.0011183X001800030035x]

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