Comparative analysis of BLUP and GCA for parental selection in marigold (Tagetes erecta L.) for hybrid development
DOI:
https://doi.org/10.24154/jhs.v18i2.2106Keywords:
BLUP, flower yield, GCA, Hybrid Seed Production, marigoldAbstract
The area under marigold cultivation is increasing over the years and so is the demand for marigold seeds. To meet the increasing demand, hybrid varieties are preferred as they produce higher yields, for which the right parental selection is of major concern. Male sterility being the prerequisite for economical hybrid seed production of marigold, we have attempted to strategize the selection of male sterile seed parent and fertile pollen parent for yield and yield-related traits. The study was undertaken across multiple forms of male sterile lines morphologically varying in apetaloid and petaloid types, therefore use of BLUP and GCA was evaluated as a criterion to select the parents for the hybridization program. Results suggested apetaloid male sterile lines as better seed parents for days to bud initiation, while, petaloid male sterile lines can be selected for the improvement of shelf life and flower diameter. Results from BLUP and GCA were in agreement with each other for the traits studied. However, BLUP-based comparison of different lines is less tedious as it eliminates the laborious procedure of developing multiple hybrids and evaluating them to study the combining ability effects.
References
Abu-Ellail, F.F.B., Ghareeb, Z.E., & Grad, W.E. (2018). Sugarcane family and individual clone selection based on best linear unbiased predictors (BLUPS) analysis at single stool stage. Journal of Sugarcane Research, 8, 155-168.
Acharya, J.P., Lopez, Y., Gouveia, B.T., de Bem Oliveira, I., Resende, M.F.R., Muñoz, P.R., & Rios, E.F. (2020). Breeding Alfalfa (Medicago sativa L.) adapted to subtropical agroecosystems. Agronomy, 10(5), 742. https://doi.org/10.3390/agronomy10050742
Alvardo, G., Rodriguez, F. M., Pacheco, A., Burgueño, J., Crossa, J., Vargas, M., Perez-Rodriguez, P., & Lopez-Cruz, M. A. (2020). META-R: A software to analyze data from multi-environment plant breeding trials. The Crop Journal, 8(5), 7450756.
Asfaw, A., Aderonmu, D.S., Darkwa, K., De Koeyer, D., Agre, P., Abe, A., Olasanmi, B., Adebola, P., & Asiedu, R. (2020). Genetic parameters, prediction, and selection in a white Guinea yam early‐generation breeding population using pedigree information. Crop Science, 61(2), 1038-1051. https://doi.org/10.1002/csc2.20382
Ashwini, K.V.R., Ramesh, S., & Sunitha, N.C. (2021). Comparative BLUP, YREM-based performance and AMMI model-based stability of horse gram [Macrotyloma uniflorum (Lam.) Verdc.] genotypes differing in growth habit. Genetic Resources and Crop Evolution, 68(2), 457–467. https://doi.org/10.1007/s10722-020-01089-x
El-Naggar, S. M. A., Abdel-Razek, A. S., & El-Naggar, M. A. A. (2017). Field evaluation of marigold (Tagetes erecta L.) as a trap crop to control the sweet potato whitefly, Bemisia tabaci (Gennadius) (Homoptera: Aleyrodidae) infesting tomato under plastic house condition. Plant Protection Science, 53(3), 178-186.
Gupta, Y.C., Raghava, S.P.S., & Misra, R.L. (1999). Inheritance of male sterile apetalous inflorescence in African Marigold. Journal of Ornamental Horticulture, 2(2), 65-66.
He, Y. H., Ning, G. G., Sun, Y. L., Qi, Y. C., & Bao, M. Z. (2009). Identification of a SCAR marker linked to a recessive male sterile gene (Tems) and its application in breeding of marigold (Tagetes erecta). Plant Breeding, 128(1), 92-96. https://doi.org/10.1111/j.1439-0523.2008.01536.x
Huang, J. Z., E, Z. G., Zhang, H. L., & Shu, Q. Y. (2014). Workable male sterility systems for hybrid rice: Genetics, biochemistry, molecular biology, and utilization. Rice, 7(1). https://doi.org/10.1186/s12284-014-0013-6
Levene, H. (1960). Contributions to probability and statistics: Essays in honor of Harold Hotelling. Stanford University Press, Palo Alto, pp. 278-292.
Molenaar, H., Boehm, R., & Piepho, H. P. (2018). Phenotypic selection in ornamental breeding: it’s better to have the BLUPs than to have the BLUEs. Frontiers in Plant Science, 9. https://doi.org/10.3389/fpls.2018.01511
Raghava, S. P. S. (2000). Marigold versatile crop with golden harvest. Floriculture Today, 4(11), 40-41.
Ren, F., & Reilly, K. (2018). Phenolic and carotenoid profiles of marigold (Tagetes erecta L.) flower extracts and their antioxidant, anti-inflammatory, and antitumor properties. Journal of Functional Foods, 46, 139-151.
Serek, M., Sisler, E. C., & Reid, M. S. (1995). Effects of 1-MCP on the vase life and ethylene response of cut flowers. Plant Growth Regulation, 16(1), 93-97. https://doi.org/10.1007/bf00040512
Shao, Q., & Ren, F. (2016). Effect of marigold (Tagetes erecta L.) flower extract on viability of MCF-7 human breast carcinoma cells and HFF-1 normal human dermal fibroblasts. Journal of Functional Foods, 20, 446-456.
Singh, D., & Misra, K.K. (2008). Genetical studies on combining ability in marigold (Tagetes spp. L.) for flower yield and yield attributing traits. Progressive Horticulture, 40(1), 58-63.
Sprague, G. F., & Tatum, L. A. (1942). General vs. specific combining ability in single crosses of corn 1. Agronomy Journal, 34(10), 923-932. https://doi.org/10.2134/agronj1942.00021962003400100008x
Stavridou, E., & Bielza, P. (2017). Effect of trap cropping on Bemisia tabaci (Hemiptera: Aleyrodidae) populations and spread of tomato yellow leaf curl virus in tomato crops. Pest Management Science, 73(6), 1124-1130.
Tajalifar M., & Rasooli M. (2002). Importance of BLUP method in plant breeding. Journal of Plant Science and Phytopathology, 6, 040-042.
Tejaswini, T., Sane, A., Gadre, A., & Ghatke, M. (2016). Characterisation and utilization of three distinct male sterile systems in marigold (Tagetes erecta). The Indian Journal of Agricultural Sciences, 86(10), 1271-1275. doi: 10.56093/ijas.v86i10.62101
Wu, Y., Fox, T. W., Trimnell, M. R., Wang, L., Xu, R., Cigan, A. M., Huffman, G. A., Garnaat, C. W., Hershey, H., & Albertsen, M. C. (2015). Development of a novel recessive genetic male sterility system for hybrid seed production in maize and other cross‐pollinating crops. Plant Biotechnology Journal, 14(3), 1046–1054. https://doi.org/10.1111/pbi.12477
Downloads
Published
Issue
Section
License
Copyright (c) 2023 Sumalatha A, Chandana Basalapura Rangegowda , Labdhi Dedhia, Lakshmana Reddy D C, Arivalagan M, Vijaya Bhaskar , Tejaswini Prakash
This work is licensed under a Creative Commons Attribution-NonCommercial-ShareAlike 4.0 International License.
Authors retain copyright. Articles published are made available as open access articles, distributed under the terms of the Creative Commons Attribution-NonCommercial-ShareAlike 4.0 International License, which permits unrestricted non-commercial use, distribution, and reproduction in any medium, provided the original author and source are credited.
This journal permits and encourages authors to share their submitted versions (preprints), accepted versions (postprints) and/or published versions (publisher versions) freely under the CC BY-NC-SA 4.0 license while providing bibliographic details that credit, if applicable.