You are here

Genotype and seasonal conditions influence on the degree of phenotypic dominance of total bushiness during intraspecific hybridization of winter wheat (Triticum aestivum L.)

Wheat (Triticum aestivum L.) is an important grain crop in world agriculture. One of the main factors in increasing yield and stabilizing wheat grain production is the rational use of varietal resources that are competitive and suitable for the soil and climatic conditions of certain regions. In the experimental field conditions of the Scientific Research Center of the Bila Tserkva National Agrarian University in different meteorological conditions in 2018-2020 the highest average total bushiness among varieties (2.0 pcs. stems/plant) was formed in 2020. In 2018 and 2019, the total bushiness was slightly lower and amounted to 1.8 and 1.9 pcs. stems/plant respectively. During the research years, the total bushiness of the parental crossing components had a significant differentiation of 1.4-2.6 pcs. stems/plant. The total bushiness of the hybrids majority obtained in 2018-2020 (1.6-8.9 pcs. stems/plant) significantly exceeded the indicators of parental forms. The maximum average F1 indicator (6.1 pcs. stems/plant) was formed in 2019. The minimum total bushiness (3.7 pcs. stems/plant) was formed by hybrids in 2020. The research has established that the most common type of inheritance of total bushiness in 184 Агробіологія, 2024, № 2 agrobiologiya.btsau.edu.ua 2018-2020 was positive overdominance. Thus, when using early-ripening varieties as the maternal form, positive overdominance was established in 95.0% of hybrids. During the research years positive overdominance was determined in 17 out of 20 crossing combinations. In 2018 and 2019 all first-generation hybrids inherited total bushiness by positive overdominance. When hybridizing by maternal form of mediumearly, medium-ripening and medium-late varieties of soft winter wheat, the determined indicators of the degree of phenotypic dominance in 2018- 2020 indicate that the determination of total bushiness in 97.9% of hybrids occurred by positive overdominance – hp = 2.1-95.0. Intermediate inheritance was observed only in the hybrid «Antonivka/Vidrada» – 2020. According to the research data, it was established that the degree indicators of phenotypic dominance of total bushiness in hybrids depended on both crossbreeding components selection and the year conditions.

Key words: parental forms, hybrids, phenotypic dominance degree, total bushiness, soft winter wheat.

 

Reference: 
1. Zhang, Z., Li, Z., Chen, Y., Zhang, L., Tao, F. (2020). Improving regional wheat yields estimations by multi-step-assimilating of a crop model with multi-source data. Agricultural and Forest Meteorology. no. 290, 107993 р.
2. Shiferaw, B., Smale, M., Braun, H., Duveiller, E., Reynolds, M., Muricho, G. (2013). Crops that feed the world 10. Past successes and future challenges to the role played by wheat in global food security. Food Sci. no. 5, рр. 291–317. DOI: 10.1007/ s12571-013-0263-y
3. FAO (Food and Agriculture Organization of the United Nations). Crops and Livestock Products. Available at: http://www.fao.org/faostat/en/#-data/QCL
4. Juraev, D.T., Dilmurodov, S.D., Kayumov, N.S., Xujakulova, S.R., Karshiyeva, U.S. (2023). Evaluating Genetic Variability and Biometric Indicators in Bread Wheat Varieties: Implications for Modern Selection Methods. Asian Journal of Agricultural and Horticultural Research. no. 10(4), рр. 335–351.
5. Moore, G. (2015). Strategic pre-breeding for wheat improvement. Nature Plants. no. 1(3), рр. 1–3.
6. Dilmurodovich, D.S., Rustamovna, M.S., Usmanovna, H.S. (2022). Selection of early maturing and high yielding lines of durum wheat for irrigated areas. In Conference Zone. рp. 124–131.
7. Sarker, J.R., Singh, B.P., Cowie, A.L., Badgery, W., Dalal, R.C. (2018). Agricultural management practices impacted carbon and nutrient concentrations in soil aggregates, with minimal influence on aggregate stability and total carbon and nutrient stocks in contrasting soils. Soil and Tillage Research. no. 178, рр. 209–23.
8. Sankaran, S., Khot, L., Carter, A. (2015). Field-based crop phenotyping: Multispectral aerial imaging for evaluation of winter wheat emergence and spring stand. Computers and electronics in agriculture. no. 118, рр. 372–379.
9. Lykhochvor, V.V., Prots, R.R. (2006). Ozyma pshenytsia [Winter wheat]. Lviv, Ukrainian Technologies Research and Production Enterprise, 216 p.
10. Burdeniuk-Tarasevych, L.A., Lozinskyi, M.V., Dubova, O.A. (2013). Kushchystist pshenytsi miakoi ozymoi riznoho ekoloho-heohrafichnoho pokhodzhennia ta yii zviazok z elementamy produktyvnosti [Bushness of soft winter wheat of different ecological and geographical origin and its connection with the elements of productivity]. Ahrobiolohiia [Agrobiology]. no. 10, pp. 142–147.
11. Sadras, V.O., Slafer, G.A. (2012). Environmental modulation of yield components in cereals: Heritabilities reveal a hierarchy of phenotypic plasticities. Field Crops Res. no. 127, рр. 215–224.
12. Slafer, G., Kantolic, A., Appendino, M., Miralles, D., Savin, R. (2009). Crop development: Genetic control, environmental modulation and relevance for genetic improvement of crop yield. In Crop Physiology: Applications for Genetic Improvement and Agronomy. USA, Academic Press, San Diego, CA, рp. 277–308.
13. Lado, B., Battenfield, S., Guzmán, C., Quincke, M., Singh, R., Dreisigacker, S. (2017). Strategies for Selecting Crosses Using Genomic Prediction in Two Wheat Breeding Programs. The Plant Genome. no. 10(2).
14. Van Ginkel, M., Ortiz, R. (2018). Cross the Best with the Best, and Select the Best: HELP in Breeding Selfing Crops. Crop Science. no. 58, рр. 17–30.
15. Lozinskyi, M.V., Ustynova, H.L. Panchenko, T.V. (2021). Osoblyvosti proiavu stupenia fenotypovoho dominuvannia za dovzhynoiu stebla v F1 pshenytsi miakoi ozymoi [Features of the manifestation of the degree of phenotypic dominance by stem length in F1 soft winter wheat]. Ahrobiolohiia [Agrobiology]. no. 1, pp. 104–114.
16. Wingen, L.U., Orford, S., Goram, R., Leverington-Waite, M., Bilham, L., Patsiou, T.S., Griffiths, S. (2014). Establishing the AE Watkins landrace cultivar collection as a resource for systematic gene discovery in bread wheat. Theoretical and Applied Genetics. no. 127, рр. 1831–1842.
17. Lozinskyi, M.V., Ustynova, H.L. (2022). Vplyv henotypu ta umov roku na uspadkuvannia produktyvnoi kushchystosti za hibrydyzatsii riznykh za skorostyhlistiu sortiv pshenytsi miakoi ozymoi [The influence of genotype and seasonal conditions on the inheritance of productive bushiness in hybridization of soft winter wheat varieties of different maturity]. Ahrobiolohiia [Agrobiology]. no. 1, pp. 95–106.
18. Bazalii, V.V., Larchenko, O.V., Lavrynenko, Yu.O., Bazalii, H.H. (2009). Adaptyvnyi potentsial sortiv pshenytsi miakoi ozymoi zalezhno vid umov vyroshchuvannia [Adaptive potential of soft winter wheat varieties depending on growing conditions.] Faktory eksperymentalnoi evoliutsii orhanizmiv [Factors of experimental evolution of organisms]. Vol. 6, рр. 215–218.
19. Zhupyna, A., Bazalii, H., Usyk, L., Marchenko, T., Suchkova, V., Mishchenko, S., Lavrynenko, Yu. (2022). Uspadkuvannia masy zerna kolosa hibrydamy pshenytsi ozymoi riznoho ekoloho-henetychnoho pokhodzhennia v umovakh zroshennia [Inheritance of ear grain mass by winter wheat hybrids of different ecological and genetic origin under irrigation conditions]. Ahrarni innovatsii [Agrarian innovations]. no. 14, рр. 152–160.
20. Babushkina, T.V., Petrenkova, V.P., Holik, O.V. (2015). Uspadkuvannia stiikosti do tverdoi sazhky v F1 i F2 hibrydiv pshenytsi miakoi yaroi [Inheritance of resistance to hard smut in F1 and F2 hybrids of soft spring wheat.]. Visnyk Tsentru naukovoho zabezpechennia APV Kharkivskoi oblasti [Bulletin of the Center for Scientific Support of the Agricultural Research Service of the Kharkiv Region]. no. 19, рр. 13–21.
21. Kolomiiets, L.A., Humeniuk, O.V. (2019). Vykorystannia svitovoho henofondu pshenytsi miakoi ozymoi v novykh sortakh myronivskoi selektsii [Using the world gene pool of soft winter wheat in new varieties of Myronivka selection]. Myronivskyi visnyk [Myronivka Visnyk]. no. 8, рр. 6–17.
22. Kompanets, K.V., Kozachenko, M.R. (2017). Uspadkuvannia produktyvnosti ta yii strukturnykh elementiv u F1 hibrydiv yachmeniu yaroho [Inheritance of productivity and its structural elements in F1 hybrids of spring barley]. Henetychni resursy roslyn [Plant genetic resources]. no. 20, рр. 43–55.
23. Hoptsii, V.O. (2019). Minlyvist morfoanatomichnykh oznak kolektsiinykh zrazkiv pshenytsi miakoi ozymoi riznoho ekoloho-heohrafichnoho pokhodzhennia [Variability of morphoanatomical features of collection samples of soft winter wheat of different ecological and geographical origin]. Pershi naukovi kroky–2019: materialy XIII vseukrain. nauk.-prakt. konf. studentiv ta molodykh naukovtsiv [First scientific steps–2019: materials of the XIII All-Ukrainian scientific-practical conference of students and young scientists]. Kamianets-Podilskyi, 292 р.
24. Xu, X., Bai, G., Carver, B.F., Shaner, G.E., Hunger, R.M. (2005). Molecular characterization of slow leaf-rusting resistance in wheat. Crop Science. no. 45, рр. 758–765.
25. Ward, T.J., Clear, R.M., Rooney, A.P., O’Donnell, K., Gaba, D., Patrick, S., Nowicki, T.W. (2008). An adaptive evolutionary shift in Fusarium head blight pathogen populations is driving the rapid spread of more toxigenic Fusarium graminearum in North America. Fungal Genetics and Biology. no. 45, рр. 473–484.
26. Waqar, A., Khattak, S.H., Begum, S., Rehman, T., Shehzad, A., Ajmal, W., Ali, G.M. (2018). Stripe rust: A review of the disease, Yr genes and its molecular markers. Sarhad Journal of Agriculture. no. 34(1), рр. 188–201.
27. Zhu, Z., Hao, Y., Mergoum, M., Bai, G., Humphreys, G., Cloutier, S., He, Z. (2019). Breeding wheat for resistance to Fusarium head blight in the Global North: China, USA, and Canada. The Crop Journal. no. 7, рр. 730–738.
28. Wulff, B.B.H., Jones, J.D.G. (2020). Breeding a fungal gene into wheat. Science. no. 368(6493), рр. 822–823.
29. Volkodav, V.V. (2003). Metodyka derzhavnoho vyprobuvannia sortiv roslyn na prydatnist do poshyrennia v Ukraini [Methods of state testing of plant varieties for suitability for distribution in Ukraine]. Okhorona prav na sorty roslyn [Protection of plant variety rights]. Kyiv, Alefa, Issue 1, Part 3, 106 p.
30. Griffing, B. (1950). Analysis of quantitative gene-action by constant parent regression and related techniques. Genetics. no. 35, pp. 303–321.
31. Beil, G.M., Atkins, R.E. (1965). Inheritance of quantitative characters in grain sorghum. Iowa State Journal. no. 39, 3 p.
 
Download this article: 
AttachmentSize
PDF icon ustinova_2_2024.pdf919.7 KB