THE EFFECT SNPs R25C AND R25H LEPTIN GENE TO CHOLESTEROL AND TRIGLYCERIDE ON BLOOD OF ONGOLE CROSSBREED CATTLE
(1) Fakultas Peternakan Universitas Padjadjaran Bandung
(2) Fakultas Peternakan Unpad
(3) Fakultas Peternakan Unpad
(4) Fakultas Peternakan Unpad
(5) Fakultas Peternakan Unpad
(6) Lulusan Program Magister Fapet UNPAD
(7) Fakultas Peternakan Unpad
(*) Corresponding Author
Sari
Single Nucleotide Polymorphisms (SNPs) on the Leptin gene may alter the quality and quantity of Leptin hormone, which plays an active role in energy metabolism and it can contribute to fat deposition in mammals. This study proposed to determine the effect of SNPs R25C and R25H on Cholesterol, and Triglycerides levels in the blood of Ongole Crossbreed cattle. The research was carried out experimentally with a Completely Randomized Design using the sixteen heads of Ongole Crossbreed. There were three different genotypes based on SNPs R25C and R25H: CC, TT, and AA. The cattle were reared intensively for two months. The feed consists of corn kernels and concentrates, and It is calculated based on the Dry Matter (DM) intake, which is 3% of body weight. The result showed SNPs R25C and R25H on the Leptin gene did not have a significant effect on blood Cholesterol, and Triglyceride levels of Ongole Crossbreed cattle. Those SNPs in the Leptin gene cannot be used as selection markers in Ongole Crossbreed cattle. Further research is needed to include SNPs in other genes contributing to Cholesterol and Triglycerides on blood cattle
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Altiner, .A, Isil, S., Tanay, B., Handan, A.V. Effect of garcinia cambogia extract on serum leptin, ghrelin, adiponectin and insulin levels and body weights in rats fed with high lipid diet. Slov Vet Res, 2017; 55(1): 13 -21.
Buchanan, F.C., Fitzsimmons, C.J., Van Kessel, A.G., Tracey, D.Thue., Dianne, C., Winkelman-Sim, Sheila, M.S. Association of a missense mutation in the bovine leptin gene with carcass fat content and leptin mRNA levels. Genet. Sel. Evol, 2002; 34(2): 105-116.
Faza, A.F., Soejono, C.B., Sayuthi, S.M., Santoso, S.A.B. Blood lipids profile in lactating dairy cows after supplementation of baking soda in feed. Jurnal Sain Peternakan Indonesia, 2017; 12(4): 353-359.
Geng, C., Zhang, M., Yang, L., Jin, Y. Correlations between circulating leptin concentrations and growth performance, carcass traits, and meat quality indexes in finishing Simmental × Luxi bulls fed high-concentrate diets. Anim Sci J, 2020; 91(1):e13426.
Hamed, K.K., Ali, E.K. Application of genomic technologies to the improvement of meat quality in farm biotechnol Mol Biol Animals. Rev, 2011; 6(1):126-132. ISSN 1538-2273.
Hilmia, N., Dedi, R., Dudi. Leptin gene polymorphism of Ongole Grade cattle based on single nucleotide polymorphism. J. Indon. Trop. Anim. Agric, 2018; 43(4): 309-314.
Kessler, E.C., Gross, J.J., Bruckmaier, R.M., Albrecht, C. Cholesterol metabolism, transport, and hepatic regulation in dairy cows during transition and early lactation. J. of Dairy Sci, 2014; 97(9): 5481-5490.
Kigoshi, H, Kawaguchi F,Oyama K, Mannen H,Sasazaki S. 2019. Effect of STARD3 gene polymorphism on carcass traits and fatty acid composition in Japanese Black cattle. J. of Anim genetic 47 (2): 37-45. https://doi.org/10.5924/abgri.47.37
Liu, R., Liu, X., Bai, X., Xiao, C., Dong, Y. Different expression of lipid metabolism-related genes in Shandong black cattle and Luxi cattle based on transcriptome analysis. Scientific Reports, 2020; 10(1): 21915.
Maurya, R., Bhattacharya, P., Dey, R., Nakhasi, H.L. Leptin functions in infectious diseases. Front. Immunol, 2018; 9:2741.
Mota, L.F.M., Bonafé, C.M., Alexandre, P.A., Santana, M.H., Novais, F.J., Toriyama, E., Pires, A.V., da Luz Silva, S., Leme, P.R., Ferraz, J.B.S., Fukumasu, H. With divergent feed efficiency, it circulated leptin and its muscle gene expression in Nellore cattle. J Anim Sci Biotechnol, 2017; 1:71.
Prieur, X., Tung, Y.C., Griffin, J.L., Farooqi, I.S., O'Rahilly, S., Coll, A.P. Leptin regulates peripheral lipid metabolism primarily through central effects on food intake. Endocrinology, 2008; (11): pp. 5432-9.
Röhrl, C., Stangl, H. Cholesterol metabolism-physiological regulation and pathophysiological deregulation by the endoplasmic reticulum. Wien Med Wochenschr, 2018; 7(1) :280-285.
Sáinz, N.J., Barrenetxe, M.J., Moreno-Aliaga, Martínez, J.A. Leptin resistance and diet-induced obesity: central and peripheral actions of leptin. J. Metab. Clin and Exp, 2015; 64: 35-46.
Sato, K., Seol, H.S., Kamada, T. Tissue distribution of lipase genes related to triglyceride metabolism in laying hens. Comp Biochem Physiol-B Biochem Mol Biol, 2010; 155: 62-66.
Silva, D.B., Crispim, B.A., Silva, L.E., Oliveira, J.A., Siqueira, F., Seno, L.O., Grisolia, A.B. Genetic variations in the leptin gene associated with growth and carcass traits in Nellore cattle. Genet Mol Res, 2014; 13(2):3002-12.
Schumacher, M., DelCurto-Wyffels., Thomson, H., Boles, J. Fat deposition and fat effects on meat quality—A Review. Animals, 2022; 12: 1550.
Upadhyay, J., Olivia, M.F., Cristos, M. 2015. The role of leptin in regulating bone metabolism. Metabolism, 2015; 64(1): 105-13.
DOI: http://dx.doi.org/10.31602/zmip.v50i1.18069
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