- Benedet A, Ho PN, Xiang R, Bolormaa S, De Marchi M, Goddard ME, Pryce JE (2019). The use of mid-infrared spectra to map genes affecting milk composition J Dairy Sci,102(8):7189-7203. [see all QTL
by this paper]
- Bouwman AC, Bovenhuis H, Visker MH, van Arendonk JA (2011). Genome-wide association of milk fatty acids in Dutch dairy cattle BMC Genomics,12: 43. [see all QTL
by this paper]
- Bouwman AC, Visker MH, van Arendonk JA, Bovenhuis H (2012). Genomic regions associated with bovine milk fatty acids in both summer and winter milk samples BMC genetics,13: 93. [see all QTL
by this paper]
- Bovenhuis H, Visker M H P W, Poulsen N A, Sehested J, van Valenberg H J F, van Arendonk J A M, Larsen L B, Buitenhuis A J (2016). Effects of the diacylglycerol o-acyltransferase 1 (DGAT1) K232A polymorphism on fatty acid, protein, and mineral composition of dairy cattle milk Journal of dairy science,99(4): 3113-23. [see all QTL
by this paper]
- Cao M, Shi L, Peng P, Han B, Liu L, Lv X, Ma Z, Zhang S, Sun D (2021). Determination of genetic effects and functional SNPs of bovine HTR1B gene on milk fatty acid traits BMC Genomics,22(1): 575. [see all QTL
by this paper]
- Duchemin S I, Bovenhuis H, Megens H-J, Van Arendonk J A M, Visker M H P W (2017). Fine-mapping of BTA17 using imputed sequences for associations with de novo synthesized fatty acids in bovine milk Journal of dairy science,100(11): 9125-9135. [see all QTL
by this paper]
- Duchemin S I, Visker M H P W, Van Arendonk J A M, Bovenhuis H (2014). A quantitative trait locus on Bos taurus autosome 17 explains a large proportion of the genetic variation in de novo synthesized milk fatty acids Journal of dairy science,97(11): 7276-85. [see all QTL
by this paper]
- Gebreyesus G, Buitenhuis A J, Poulsen N A, Visker M H P W, Zhang Q, van Valenberg H J F, Sun D, Bovenhuis H (2019). Multi-population GWAS and enrichment analyses reveal novel genomic regions and promising candidate genes underlying bovine milk fatty acid composition BMC genomics,20(1): 178. [see all QTL
by this paper]
- Gebreyesus G, Buitenhuis A J, Poulsen N A, Visker M H P W, Zhang Q, van Valenberg H J F, Sun D, Bovenhuis H (2020). Combining multi-population datasets for joint genome-wide association and meta-analyses: The case of bovine milk fat composition traits Journal of dairy science,102(12): 11124-11141. [see all QTL
by this paper]
- Knutsen TM, Olsen HG, Tafintseva V, Svendsen M, Kohler A, Kent MP, Lien S (2018). Unravelling genetic variation underlying de novo-synthesis of bovine milk fatty acids Scientific reports,8(1): 2179. [see all QTL
by this paper]
- Li C, Sun D, Zhang S, Wang S, Wu X, Zhang Q, Liu L, Li Y, Qiao L (2014). Genome wide association study identifies 20 novel promising genes associated with milk fatty acid traits in Chinese Holstein. PloS one,9(5): e96186. [see all QTL
by this paper]
- Li C, Sun D, Zhang S, Yang S, Alim MA, Zhang Q, Li Y, Liu L (2016). Genetic effects of FASN, PPARGC1A, ABCG2 and IGF1 revealing the association with milk fatty acids in a Chinese Holstein cattle population based on a post genome-wide association study BMC genetics,17: 110. [see all QTL
by this paper]
- Morris, CA; Cullen, NG; Glass, BC; Hyndman, DL; Manley, TR; Hickey, SM; McEwan, JC; Pitchford, WS; Bottema, CDK; Lee, MAH (2007). Fatty acid synthase effects on bovine adipose fat and milk fat. Mammalian genome,18 (1): 64-74. [see all QTL
by this paper]
- Nafikov R A, Schoonmaker J P, Korn K T, Noack K, Garrick D J, Koehler K J, Minick-Bormann J, Reecy J M, Spurlock D E, Beitz D C, (2013). Association of polymorphisms in solute carrier family 27, isoform A6 (SLC27A6) and fatty acid-binding protein-3 and fatty acid-binding protein-4 (FABP3 and FABP4) with fatty acid composition of bovine milk Journal of dairy science,96(9): 6007-21. [see all QTL
by this paper]
- Nafikov RA, Schoonmaker JP, Korn KT, Noack K, Garrick DJ, Koehler KJ, Minick-Bormann J, Reecy JM, Spurlock DE, Beitz DC (2013). Sterol regulatory element binding transcription factor 1 (SREBF1) polymorphism and milk fatty acid composition Journal of dairy science,96(4): 2605-16. [see all QTL
by this paper]
- Olsen HG, Knutsen TM, Kohler A, Svendsen M, Gidskehaug L, Grove H, Nome T, Sodeland M, Sundsaasen KK, Kent MP, Martens H, Lien S (2017). Genome-wide association mapping for milk fat composition and fine mapping of a QTL for de novo synthesis of milk fatty acids on bovine chromosome 13 Genetics, Selection, Evolution : GSE,49(1): 20. [see all QTL
by this paper]
- Pegolo S, Cecchinato A, Mele M, Conte G, Schiavon S, Bittante G (2016). Effects of candidate gene polymorphisms on the detailed fatty acids profile determined by gas chromatography in bovine milk Journal of dairy science,99(6): 4558-73. [see all QTL
by this paper]
- Shi L, Liu L, Lv X, Ma Z, Li C, Li Y, Zhao F, Sun D, Han B (2020). Identification of genetic effects and potential causal polymorphisms of CPM gene impacting milk fatty acid traits in Chinese Holstein Animal Genetics,51(4):491-501. [see all QTL
by this paper]
- Shi L, Liu L, Lv X, Ma Z, Yang Y, Li Y, Zhao F, Sun D, Han B (2019). Polymorphisms and genetic effects of PRLR, MOGAT1, MINPP1 and CHUK genes on milk fatty acid traits in Chinese Holstein BMC genetics,20(1): 69. [see all QTL
by this paper]
- Singh A, Kumar A, Gondro C, da Silva Romero AR, Karthikeyan A, Mehrotra A, Pandey AK, Dutt T, Mishra BP (2021). Identification of genes affecting milk fat and fatty acid composition in Vrindavani crossbred cattle using 50 K SNP-Chip Tropical animal health and production,53(3): 347. [see all QTL
by this paper]
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