Vegetative and reproductive potential of some highbush blueberry varieties grown in the Troyan region
Diyan Georgiev

, Maria Georgieva

Abstract: The highbush blueberry is a fruit crop with specific requirements for agroclimatic conditions. Limiting factors for its distribution are its increased demands for atmospheric humidity and soil acidity. It thrives successfully in mountainous and semi-mountainous regions of the country, where there is a higher amount of precipitation, increased air humidity, and relatively favorable temperatures for realizing its biological potential.
The growth and development of five american varieties of highbush blueberries: Bluecrop, Bluegold, Patriot, Spartan, and Toro, were monitored in a demonstrative plantation at the RIMSA in Troyan, during the period 2020 - 2022. Under the agroclimatic conditions of the Pre-Balkans, fruit ripening of the studied highbush blueberry varieties begins from the second ten-day period of June, with no significant differences in timing between them. The quantity of plant pigments (chlorophyll a, chlorophyll b, and β-carotene) in leaf samples from the studied varieties was analyzed during the three-year experimental period. The highest levels of chlorophyll a and β-carotene in leaf samples were found in the second year of the experiment in the Patriot variety (1.31 mg/g and 0.83 mg/g, respectively).
The tallest average bush height was recorded in the Spartan varieties – 113.39 cm and Bluecrop – 110.11 cm during the experimental period.
The best results in terms of average yield were recorded in Toro (103.85 g/bush) and Bluecrop (99.94 g/bush).
The fruit weight had the highest average values in the Toro varieties – 1.69 g and Bluecrop – 1.45 g, while the fruits of the Spartan – 1.02 g and Patriot – 1.12 g varieties had the lowest weight.
Keywords: blueberry; chemical composition; size; Vaccinium corymbosum L.; vegetable pigment; yield
Citation: Georgiev, D. & Georgieva, M. (2025). Vegetative and reproductive potential of some highbush blueberry varieties grown in the Troyan region. Bulg. J. Agric. Sci., 31(4), 702–708.
References: (click to open/close) | Almutairi, K. F., Bryla, D. R., & Strik, B. C. (2017). Potential of deficit irrigation, irrigation cutoffs, and crop thinning to maintain yield and fruit quality with less water in northern highbush blueberry. Hort Science Horts, 52, 625. Atanasova, S. (2021). Behavior of in vitro raspberry plants grown in vivo condition. PhD Thesis, Stara Zagora, Trakia University, 48 – 56 (Bg). Strik, B. C., Vance, A. J. & Finn, C. E. (2017). Northern highbush blueberry cultivars differed in yield and fruit quality in two organic production systems from planting to maturity. HortScience horts, 52(6), 844 - 851. Celik, H. (2009). Yield and berry characteristics of some northern highbush blueberries grown at different altitudes in Turkey. Proceedings of the Workshop on Berry Production in Changing Climate Conditions and Cultivation Systems in the context of COST – Action 863, Geinsenheim (Germany). Acta Horticulturae, 838, 63 - 66. Cruz de Carvalho, M. H. (2008). Drought stress and reactive oxygen species: Production, scavenging and signaling. Plant Signal. Behav., 3, 156 - 165. Fan-Hsuan, Y., David, R. B., Scott, T. O., Bernadine, C. S. & Yanyun, Z. (2020). Thermal cooling with sprinklers or microsprinklers reduces heat damage and improves fruit quality in northern highbush blueberry. Hort Sci. Horts, 55, 1365 - 1371. FAOSTAT. Available online: https://www.fao.org/faostat/en/#data/QCL (accessed on 14 September 2022). Georgieva, V, Kazandjiev, V., Bozhanova, V., Mihova, G., Ivanova, D., Todorovska, E., Uhr, Z, Ilchovska M., Sotirov, D. & Malasheva, P. (2022). Climatic changes - a challenge for the Bulgarian farmers. Agriculture, 12(12), 2090. Golovinskaia, O. & Wang, C. K. (2021). Review of functional and pharmacological activities of berries. Molecules, 26, 3904. Hancock, J., Haghighi, K., Krebs, S., Flore, J. & Draper, A. (1992). Photosynthetic heat stability in highbush blueberries and the possibility of genetic improvement. Hort Science, 27, 1111 - 1112. Leposavic, А. (2014). Pomological properties of newly introduced highbush blueberry (Vaccinium corymbosum L.) cultivars. PhD Thesis, Novi Sad, University of Novi Sad, 91 - 98 (Sr). Leposavić, A., Jevremović, D., Vasić, T., Paunović, S. M. & Tomić, J. (2021). Berries in Serbia-current state and prospects. Journal of Mountain Agriculture on the Balkans, 24(4), 306 - 323. Lin, D., Xiao, M., Zhao, J., Li, Z., Xing, B., Li, X., Kong, M., Li, L., Zhang, Q., Liu, Y. & Chen, H. (2016). An overview of plant phenolic compounds and their importance in human nutrition and management of type 2 diabetes. Molecules, 21(10), 1374. Mingeau, M., Perrier, C. & Améglio, T. (2001). Evidence of drought-sensitive periods from flowering to maturity on highbush blueberry. Sci. Hortic., 89, 23 - 40. Molnar, S., Clapa, D. & Mitre, V. (2022). Response of the five highbush blueberry cultivars to in vitro induced drought stress by polyethylene glycol. Agronomy, 12, 732. Nedev, N., Grigorov, Y., Baev, Hr., Serafimov, S., Strandzhev, Al., Kavardzhikov, L., Lazarov, Kr., Nikolov, N., Dzhuvinov, V., Popova, L., Slavov, N., Iliev, P., Stoyanov, D., Kanev, Il., Krinkov, H., Vishanska, Yu., Topchiyska, M. & Petrova, L. (1979). Methods for Studying of Planting Resources of Fruit Crops. Plovdiv, Research Institute of Fruit Growing, 111 - 116 (Bg). Petridis, A., Kaay, J. V. D., Chrysanthou, E., McCallum, S., Graham J. & Hancock, R. D. (2018). Photosynthetic limitation as a factor influencing yield in highbush blueberries (Vaccinium corymbosum) grown in a northern European environment. Journal of Experimental Botany, 69(12), 3069 - 3080. Redpath, L. E., Gumpertz, M., Ballington, J. R., Bassil, N. & Ashrafi, H. (2021). Genotype, environment, year, and harvest effects on fruit quality traits of five blueberry (Vaccinium corymbosum L.) cultivars. Agronomy, 11, 1788. Retamales, J. B. & Hancock, J. F. (2012). Blueberries. Wallingford: CABI, 75 - 102. Smrke, T., Veberic, R., Hudina, M., Zitko, V., Ferlan, M. & Jakopic, J. (2021). Fruit quality and yield of three highbush blueberry (Vaccinium corymbosum L.) cultivars grown in two planting systems under different protected environments. Horticulturae, 7, 591. Strik, B. C. & Vance, A. J. (2017). Northern highbush blueberry cultivars differed in yield and fruit quality in two organic production systems from planting to maturity. Hortscience, 52(6), 844 - 851. Wach, D. (2008). Estimation of growth and yielding of highbush blueberry (Vaccinium corymbosum L.) cultivated on soil developed from weakly loamy sand. Folia Horticulturae, 20(2), 47 - 55. Yang, F. H., Bryla, D. R. & Strik, B. C. (2019). Critical temperatures and heating times for fruit damage in northern highbush blueberry. HortScience, 54, 2231–2239. Zhao, L. S., Su, H. N., Li, K., Xie, B. B., Liu, L. N., Zhang, X. Y., Chen, X. L., Huang, F., Zhou, B. C. & Zhang, Y. Z. (2016). Supramolecular architecture of photosynthetic membrane in red algae in response to nitrogen starvation. BBAbioenergetics, 1857(11), 1751 - 1758. |
|
| Date published: 2025-08-27
Download full text