- Blázquez‐Medela, A. M., Jumabay, M., & Boström, K. I. (2019). Beyond the bone: Bone morphogenetic protein signaling in adipose tissue. Obesity Reviews, 20(5), 648-658. https://doi.org/10.1111/obr.12822
- Cockett, N. E., Smit, M. A., Bidwell, C. A., Segers, K., Hadfield, T. L., Snowder, G. D., Georges, M., & Charlier, C. (2005). The callipyge mutation and other genes that affect muscle hypertrophy in sheep. Paper presented at the Genetics Selection Evolution. https://doi.org/10.1186/1297-9686-37-S1-S65
- Ermias, E., Yami, A., & Rege, J. (2002). Fat deposition in tropical sheep as adaptive attribute to periodic feed fluctuation. Journal of Animal Breeding and Genetics, 119(4), 235-246. https://doi.org/10.1046/j.1439-0388.2002.00344.x
- Gao, Y., Zhang, R., Hu, X., & Li, N. (2007). Application of genomic technologies to the improvement of meat quality of farm animals. Meat science, 77(1), 36-45. https://doi.org/10.1016/j.meatsci.2007.03.026
- Guiu‐Jurado, E., Unthan, M., Böhler, N., Kern, M., Landgraf, K., Dietrich, A., Schleinitz, D., Ruschke, K., Klöting, N., & Faßhauer, M. (2016). Bone morphogenetic protein 2 (BMP2) may contribute to partition of energy storage into visceral and subcutaneous fat depots. Obesity, 24(10), 2092-2100. https://doi.org/10.1002/oby.21571
- Ibrahim, A. H. (2021). Genetic variants of the BMP2 and GDF9 genes and their associations with reproductive performance traits in Barki ewes. Small Ruminant Research, 195, 106302. https://doi.org/10.1016/j.smallrumres.2020.106302
- Khaldari, M., & Kalfari, M. (2014). Introduction a new system for measuring volume of fat-tail in sheep. Journal of Livestock Research, 3(3), 71-78. https://doi.org/10.22077/JLR.2014.303
- Khaldari, M., Kashan, N., Afzalzadeh, A., & Salehi, A. (2007). Growth and carcass characteristics of crossbred progeny from lean-tailed and fat-tailed sheep breeds. South African Journal of Animal Science, 37(1), 51-56. https://doi.org/10.4314/sajas.v37i1.4026
- Koopaei, H. K., & Koshkoiyeh, A. E. (2011). Application of genomic technologies to the improvement of meat quality in farm animals. Biotechnology and Molecular Biology Reviews, 6(6), 126-132.
- Lu, Z., Du, L., Liu, R., Di, R., Zhang, L., Ma, Y., Li, Q., Liu, E., Chu, M., & Wei, C. (2018). MiR-378 and BMP-Smad can influence the proliferation of sheep myoblast. Gene, 674, 143-150. https://doi.org/10.1016/j.gene.2018.06.039
- Moioli, B., Pilla, F., & Ciani, E. (2015). Signatures of selection identify loci associated with fat tail in sheep. Journal of Animal Science, 93(10), 4660-4669. https://doi.org/10.2527/jas.2015-9389
- Moradi, M. H., Nejati-Javaremi, A., Moradi-Shahrbabak, M., Dodds, K. G., & McEwan, J. C. (2012). Genomic scan of selective sweeps in thin and fat tail sheep breeds for identifying of candidate regions associated with fat deposition. BMC genetics, 13(1), 1-15. https://doi.org/10.1186/1471-2156-13-10
- Nazifi, N., Rahimi-Mianji, G., & Ansari-Pirsarai, Z. (2015). Polymorphism in FSHβ and FSHRGenes and their relationship with productive and reproductive performance in Iran black, Arman and BaluchiSheep Breeds. Iranian Journal of Applied Animal Science, 5(2), 361-368.
- Steinfeld, H., Gerber, P., Wassenaar, T., Castel, V., Rosales, M., Rosales, M., & De Haan, C. (2006). Livestock's long shadow: Environmental issues and options: Food & Agriculture Org.
- Wood, J., Enser, M., Fisher, A., Nute, G., Sheard, P., Richardson, R., Hughes, S., & Whittington, F. (2008). Fat deposition, fatty acid composition and meat quality: A review. Meat science, 78(4), 343-358. https://doi.org/10.1016/j.meatsci.2007.07.019
- Zhang, Z., Liu, Q., Di, R., Hu, W., Wang, X., He, X., Ma, L., & Chu, M. (2019). Single nucleotide polymorphisms in BMP2 and BMP7 and the association with litter size in Small Tail Han sheep. Animal reproduction science, 204, 183-192. https://doi.org/10.1016/j.anireprosci.2019.04.001
|