Domestic Animal Endocrinology
Volume 39, Issue 2 , Pages 85-89.e2 , August 2010

Pleiotropic effects of the goat prolactin receptor genotype on milk fatty acid composition

  • A. Zidi

      Affiliations

    • Departament de Ciència Animal i dels Aliments, Universitat Autònoma de Barcelona, Bellaterra, Spain
  • ,
  • J.M. Serradilla

      Affiliations

    • Departamento de Producción Animal, Campus de Rabanales, Universidad de Córdoba, Córdoba, Spain
  • ,
  • J. Jordana

      Affiliations

    • Departament de Ciència Animal i dels Aliments, Universitat Autònoma de Barcelona, Bellaterra, Spain
  • ,
  • J. Carrizosa

      Affiliations

    • Instituto Murciano de Investigación y Desarrollo Agrario y Alimentario (IMIDA), Estación Sericícola, La Alberca, Murcia, Spain
  • ,
  • B. Urrutia

      Affiliations

    • Instituto Murciano de Investigación y Desarrollo Agrario y Alimentario (IMIDA), Estación Sericícola, La Alberca, Murcia, Spain
  • ,
  • O. Polvillo

      Affiliations

    • Departamento de Ciencias Agroforestales Escuela Universitaria de Ingeniería Técnica Agrícola-Universidad de Sevilla, Carretera Utrera, Sevilla, Spain
  • ,
  • P. González-Redondo

      Affiliations

    • Departamento de Ciencias Agroforestales Escuela Universitaria de Ingeniería Técnica Agrícola-Universidad de Sevilla, Carretera Utrera, Sevilla, Spain
  • ,
  • D. Gallardo

      Affiliations

    • Departament de Ciència Animal i dels Aliments, Universitat Autònoma de Barcelona, Bellaterra, Spain
  • ,
  • M. Amills

      Affiliations

    • Departament de Ciència Animal i dels Aliments, Universitat Autònoma de Barcelona, Bellaterra, Spain
    • Corresponding Author InformationAddresses for correspondence: (1) Marcel Amills, Departament de Ciència Animal i dels Aliments, Universitat Autònoma de Barcelona, 08193 Bellaterra, Spain; Phone: 34 93 5812876
  • ,
  • V.M. Fernández-Cabanás

      Affiliations

    • Departamento de Ciencias Agroforestales Escuela Universitaria de Ingeniería Técnica Agrícola-Universidad de Sevilla, Carretera Utrera, Sevilla, Spain
    • Corresponding Author Information(2) Víctor Manuel Fernández-Cabanás, Departamento de Ciencias Agroforestales Escuela Universitaria de Ingeniería Técnica Agrícola-Universidad de Sevilla, Carretera Utrera, km. 1, 41013 Sevilla, Spain

References 

  1. Bole-Feysot C, Goffin V, Edery M, Binart N, Kelly PA. Prolactin (PRL) and its receptor: Actions, signal transduction pathways and phenotypes observed in PRL receptor knockout mice. Endocr Rev. 1998;19:225–268
  2. Ben-Jonathan N, Hugo ER, Brandebourg TD, LaPensee CR. Focus on prolactin as a metabolic hormone. Trends Endocrinol Metab. 2006;17:110–116
  3. Shibaya M, Murakami S, Tatsukawa Y, Skarzynski DJ, Acosta TJ, Okuda K. Bovine corpus luteum is an extrapituitary site of prolactin production. Mol Reprod Dev. 2006;73:512–519
  4. Iso-Touru T, Kantanen J, Li MH, Gizejewski Z, Vilkki J. Divergent evolution in the cytoplasmic domains of PRLR and GHR genes in Artiodactyla. BMC Evol Biol. 2009;9:172
  5. Tomás A, Casellas J, Ramírez O, Muñoz G, Noguera JL, Sánchez A. High amino acid variation in the intracellular domain of the pig prolactin receptor (PRLR) and its relation to ovulation rate and piglet survival traits. J Anim Sci. 2006;84:1991–1998
  6. Van Rens BT, Evans GJ, Van der Lende T. Components of litter size in gilts with different prolactin receptor genotypes. Theriogenology. 2003;59:915–926
  7. Putnova L, Knoll A, Dvorak J, Cepica S. A new HpaII PCR-RFLP within the porcine prolactin receptor (PRLR) gene and study of its effect on litter size and number of teats. J Anim Breed Genet. 2002;119:57–63
  8. Viitala S, Szyda J, Blott S, Schulman N, Lidauer M, Mäki-Tanila A, et al. The role of the bovine growth hormone receptor and prolactin receptor genes in milk, fat and protein production in Finnish Ayrshire dairy cattle. Genetics. 2006;173:2151–2164
  9. Brym P, Kamiński S, Wǒjcik E. Nucleotide sequence polymorphism within exon 4 of the bovine prolactin gene and its associations with milk performance traits. J Appl Genet. 2005;46:179–185
  10. Khatami SR, Lazebnyĭ OE, Maksimenko VF, Sulimova GE. Association of DNA polymorphisms of the growth hormone and prolactin genes with milk productivity in Yaroslavl and black-and-white cattle. Genetika. 2005;41:167–173
  11. Ramensky V, Bork P, Sunyaev S. Human non-synonymous SNPs: server and survey. Nucleic Acids Res. 2002;30:3894–3900
  12. Ferrer-Costa C, Gelpí JL, Zamakola L, Parraga I, de la Cruz X, Orozco M. PMUT: a web-based tool for the annotation of pathological mutations on proteins. Bioinformatics. 2005;21:3176–3178
  13. Thomas PD, Kejariwal A. Coding single-nucleotide polymorphisms associated with complex vs. Mendelian disease: Evolutionary evidence for differences in molecular effects. Proc Natl Acad Sci U S A. 2004;101:15398–15403
  14. Ng PC, Henikoff S. SIFT: predicting amino acid changes that affect protein function. Nucl Acids Res. 2003;31:3812–3814
  15. Stephens MN, Smith J, Donnelly P. A new statistical method for haplotype reconstruction from population data. Am J Hum Genet. 2001;68:978–989
  16. Badaoui B, Serradilla JM, Tomàs A, Urrutia B, Ares JL, Carrizosa J, et al. Goat acetyl-coenzyme A carboxylase α: molecular characterization, polymorphism, and association with milk traits. J Dairy Sci. 2007;90:1039–1043
  17. Sukhija PH, Palmquist DL. Rapid method for determination of total fatty acid content and composition of feedstuffs and feces. J Agric Food Chem. 1988;36:1202–1206
  18. Littell RC, Henry PR, Ammerman CB. Statistical analysis of repeated measures data using SAS procedures. J Anim Sci. 1998;76:1216–1231
  19. Melu̧chová B, Blaško J, Kubinec R, Górová R, Dubravská J, Margetín M, et al. 2008. Seasonal variations in fatty acid composition of pasture forage plants and CLA content in ewe milk fat. Small Rum Res. 2008;78:56–65
  20. Jensen RG. The composition of bovine milk lipids: January 1995 to December 2000. J Dairy Sci. 2002;85:295–350
  21. Bignon C, Binart N, Ormandy C, Schuler LA, Kelly PA, Djiane J. Long and short forms of the ovine prolactin receptor: cDNA cloning and genomic analysis reveal that the two forms arise by different alternative splicing mechanisms in ruminants and in rodents. J Mol Endocrinol. 1997;19:109–120
  22. Nanbu-Wakao R, Fujitani Y, Masuho Y, Muramatu M, Wakao H. Prolactin enhances CCAAT enhancer-binding protein-β (C/EBPβ) and peroxisome proliferator-activated receptor γ (PPARγ) messenger RNA expression and stimulates adipogenic conversion of NIH-3T3 cells. Mol Endocrinol. 2000;14:307–316
  23. Bionaz M, Loor JJ. Gene networks driving bovine milk fat synthesis during the lactation cycle. BMC Genomics. 2008;9:366
  24. Naylor MJ, Oakes SR, Gardiner-Garden M, Harris J, Blazek K, Ho TWC, et al. Transcriptional changes underlying the secretory activation phase of mammary gland development. Mol Endocrinol. 2005;19:1868–1883
  25. Morand LZ, Morand JN, Matson R, German JB. Effect of insulin and prolactin on acyltransferase activities in MAC-T bovine mammary cells. J Dairy Sci. 1998;81:100–106

PII: S0739-7240(10)00021-4

doi: 10.1016/j.domaniend.2010.02.005

Domestic Animal Endocrinology
Volume 39, Issue 2 , Pages 85-89.e2 , August 2010