Genetic variation and identification of single nucleotide polymorphism of insulin-like growth factor- 1 gene in Tilapia guineensis
##plugins.themes.bootstrap3.article.main##
Abstract
Abstract. Ukenye E, Megbowon I, Oguntade O, Oketoki T, Amusa O, Usman A, Sokenu B, Adeleke R, Joseph B, Omatah C. 2020. Genetic variation and identification of single nucleotide polymorphism of insulin-like growth factor- 1 gene in Tilapia guineensis Biodiversitas 21: 5317-5321. Tilapia guineensis is an important cichlid species of West African coastal waters with good nutritional, economic, and aquaculture relevance. The knowledge of the genetic basis of variation in growth traits in Tilapia fish is of great importance to support genetic improvement in the context of aquaculture. In this study, regions of the Tilapia guineensis IGF-1 gene were sequenced, aligned and compared across populations to identify single nucleotide polymorphism and genetic diversity among four populations of T. guineensis in South-west Nigerian coastal waters. A total of thirty-four SNPs were identified across the studied populations and were detected in the forward reaction with twenty-two transversions and twelve transitions. Badagry population showed the highest genetic diversity with the highest molecular diversity indices; number of polymorphic sites, pairwise differences, number of segregating sites and nucleotide diversity while the least diverse population was Pepe. Analysis of molecular variance (AMOVA) revealed that genetic variation was mostly within populations. This finding provides more information regarding variation in insulin growth factor I of T. guineensis and will encourage association study for production traits that will inform useful selection marker for breeding program.
##plugins.themes.bootstrap3.article.details##
Babatunde Moses Ilori, MathewWheto, Samuel Olutunde Durosaro, Kayode Akano, Ayotunde Olutumininu Adebambo and Olufunmilayo AyokaAdebambo (2016). Polymorphism of IGF-1 Promoter and the UTR Regions of Nigerian Locally Adapted Chickens. Journal of Biology, Agriculture and Healthcare, 6: 2224-3208.
Breidy Lizeth Cuevas-Rodríguez1, Ana María Sifuentes-Rincón, Pascuala Ambriz-Morales, Manuel García-Ulloa1, Francisco Javier Valdez-González1, Hervey Rodríguez-González1 (2016). Novel single nucleotide polymorphisms in candidate genes for growth in tilapia (Oreochromis niloticus). Revista Brasileira de Zootecnia, 45(6):345-348.
De-Santis C. & Jerry D.R. (2007) Candidate growth genes in finfish—Where should we be looking? Aquaculture, 272: 22–38.
Excoffier, L. (2015). Arlequin v. 3.5.2: An Integrated software package for Population Genetics Data Analysis. Swiss Institute of Bioinformatics, 176p.
Hemmer-Hansen, J., Nielsen, E.E.G., Meldrup, D., Mittelholzer, C., (2011). Identification of single nucleotide polymorphisms in candidate genes for growth and reproduction in a nonmodel organism; the Atlantic cod, Gadus morhua. Molecular Ecology Resources, 11: 71–80.
Hongye Zhang, Cheng Zhao, Shaowu Yin1, Zecheng Li, Quanquan Cao,Xinru Li, Wanli Xie, Jiajia Zhang, Wenxu Zhu, and Dan Wang (2018). Characterization and Identification of Single Nucleotide Polymorphism Within theIGF-1RGene Associated with Growth Traits of Odontobutis potamophila. Journal of the World Aquaculture Society, 49: 366-379.
Lupchinski Jr., E.; Vargas, L.; Lopera-Barrero, N. M.; Ribeiro, R. P.; Povh, J. A.; Gasparino, E.; and Braccini, G. L. (2011). Genetic characterization of three Nile tilapia (Oreochromis niloticus) strains. Archivos de Zootecnia 60:985-995.
Penna-Mendoza, B., J.L. Gomez, I.H. Salgado-Ugerte and D. Ramirez-Nogguera, (2005). Reproductive biology of Oreochromis niloticus (Perciformes: Cichlidae) at Emiliano Zapata dam, Morelos, Mexico. Re. Biol. Trop., 53:515-522.
Sambrook J, Russell, DW (2001). Molecular Cloning: A laboratory Manual. 3rd edition. Cold Spring Harbour Laboratory Press.
Ukenye E. A.1, Taiwo I. A., Oguntade O. R.1, Oketoki T. O.1 and Usman A. B (2016). Molecular characterization and genetic diversity assessment of Tilapia guineensis from some coastal rivers in Nigeria. African Journal of Biotechnology, 15(1): 20-28.
Vera M, Antonio J, Dios A, Millán A, Pardo AG, Bouza C, Hermida M, Fernández C Herr n, Molina-Luzón M, Paulino M. (2011). Validation of single nucleotide polymorphism (SNP) markers from an immune Expressed Sequence Tag (EST) turbot, Scophthalmus maximus. Aquaculture, 313:31–41.
Wood, A. W.; Duan, C. and Bern, H. A. (2005). Insulin-like growth factor signaling in fish. International Review of Cytology, 243:215-285.
Xiao W, Yun P, Li GB, Hang GY, Lu YQ, Wang CD. (2007). A comparative study of different sources of growth curve of large white pigs. J Anhui Agri Sci, 35: 2912-2913.
Yáñez JM, Newman S, Houston RD. 2015. Genomics in aquaculture to better understand species biology and accelerate genetic progress. Front Genet 6: 128.
Zhang, H.N., X.K. Hou, T.T. Tang and P. Leng, 2005. Experimental research on human insulin-like growth factor I gene transfect the cultured bone marrow mesenchymal stem cells. Zhonghua Wai Ke Za Zhi, 43: 263-267.
Most read articles by the same author(s)
- ESTHER ADAKU UKENYE, IWALEWA MEGBOWON, Comparison of genetic diversity of farmed Oreochromis niloticus and wild unidentified tilapia (Wesafu) using microsatellite markers , Biodiversitas Journal of Biological Diversity: Vol. 24 No. 5 (2023)