Association of single nucleotide polymorphisms in the endothelial differentiation sphingolipid G-protein-coupled receptor 1 gene with marbling in Japanese Black beef cattle.
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Y. Sasaki | K. Shiga | Y. Taniguchi | T. Miyake | M. Morita | T. Fujita | T. Yamada | S. Nishimura | S. Yoshioka | S. Sasaki | M. Itoh
[1] J. Kijas,et al. The Effect of Genetic Variation of the Retinoic Acid Receptor-Related Orphan Receptor C Gene on Fatness in Cattle , 2007, Genetics.
[2] N. Kobayashi,et al. Identification of bovine QTL for growth and carcass traits in Japanese Black cattle by replication and identical-by-descent mapping , 2007, Mammalian Genome.
[3] C. Gaskins,et al. The bovine fatty acid binding protein 4 gene is significantly associated with marbling and subcutaneous fat depth in Wagyu x Limousin F2 crosses. , 2006, Animal genetics.
[4] W. Barendse,et al. The growth hormone 1 GH1:c.457C>G mutation is associated with intramuscular and rump fat distribution in a large sample of Australian feedlot cattle. , 2006, Animal genetics.
[5] Y. Sasaki,et al. Radiation hybrid mapping of genes showing intramuscular fat deposition-associated expression changes in bovine musculus longissimus muscle. , 2006, Animal genetics.
[6] Takahisa Yamada,et al. Exploration of genes showing intramuscular fat deposition-associated expression changes in musculus longissimus muscle. , 2006, Animal genetics.
[7] Y. Sasaki,et al. Comparison of genetic gains per year for carcass traits among breeding programs in the Japanese Brown and the Japanese Black cattle. , 2006, Journal of animal science.
[8] T. Kunej,et al. Significant associations of the mitochondrial transcription factor A promoter polymorphisms with marbling and subcutaneous fat depth in Wagyu x Limousin F2 crosses. , 2005, Biochemical and biophysical research communications.
[9] S. Moore,et al. Polymorphisms in the bovine leptin promoter associated with serum leptin concentration, growth, feed intake, feeding behavior, and measures of carcass merit. , 2005, Journal of animal science.
[10] G. L. Bennett,et al. Association of myostatin on early calf mortality, growth, and carcass composition traits in crossbred cattle. , 2004, Journal of animal science.
[11] R. Fries,et al. DGAT1, a new positional and functional candidate gene for intramuscular fat deposition in cattle. , 2003, Animal genetics.
[12] A. V. van Kessel,et al. Association of a missense mutation in the bovine leptin gene with carcass fat content and leptin mRNA levels , 2002, Genetics Selection Evolution.
[13] M. Matsuishi,et al. Wagyu Beef Aroma in Wagyu (Japanese Black Cattle) Beef Preferred by the Japanese over Imported Beef , 2001 .
[14] J. P. Hobson,et al. Edg-1, the G protein-coupled receptor for sphingosine-1-phosphate, is essential for vascular maturation. , 2000, The Journal of clinical investigation.
[15] G. Johnson,et al. Decreased growth in angus steers with a short TG-microsatellite allele in the P1 promoter of the growth hormone receptor gene. , 2000, Journal of animal science.
[16] T. Nagai,et al. Production of calves by transfer of nuclei from cultured somatic cells obtained from Japanese black bulls. , 1999, Theriogenology.
[17] J. Busboom,et al. Lipid content and composition of Wagyu and domestic breeds of beef , 1995 .
[18] T. Mitsuhashi,et al. Relationship between Japanese beef marbling standard and intramuscular lipid in the M. longissimus thoracis of Japanese Black and American Wagyu Cattle. , 1994, Meat science.
[19] L. E. Jeremiah,et al. Effects of biological source on cooking and palatability attributes of beef produced for the Japanese market. , 1993, Meat science.