Have a personal or library account? Click to login

Genetic Variability in the Loci of FABP4, PPARγ and SCD Genes of Sheep Breeds Raised for Different Purposes

Open Access
|Oct 2019

References

  1. Ariyama H., Kono N., Matsuda S., Inoue T., Arai H. (2010). Decrease in membrane phospholipid unsaturation induces unfolded protein response. J. Biol. Chem., 285: 22027–22035.10.1074/jbc.M110.126870
  2. Barak Y., Nelson M.C., Ong E.S., Jones Y.Z., Ruiz-Lozano P., Chien K.R., Koder A., Evans R.M. (1999). PPARγ is required for placental, cardiac, and adipose tissue development. Mol. Cell, 4: 585–595.10.1016/S1097-2765(00)80209-9
  3. Barbiero J.K., Santiago R.M., Persike D.S., da Silva Fernandes M.J., Tonin F.S., da Cunha C., Lucio Boschen S., Lima M.M.S., Vital M.A.B.F. (2014). Neuroprotective effects of peroxisome proliferator-activated receptor alpha and gamma agonists in model of parkinsonism induced by intranigral 1-methyl-4-phenyl-1,2,3,6-tetrahyropyridine. Behav. Brain Res., 274: 390–399.10.1016/j.bbr.2014.08.014
  4. Bernard L., Leroux C., Hayes H., Gautier M., Chilliard Y., Martin P. (2001). Characterization of the caprine stearoyl-CoA desaturase gene and its mRNA showing an unusually long 3′-UTR sequence arising from a single exon. Gene, 281: 53–61.10.1016/S0378-1119(01)00822-8
  5. Cao H., Gerhold K., Mayers J.R., Wiest M.M., Watkins S.M., Hotamisligil G.S. (2008). Identification of a lipokine, a lipid hormone linking adipose tissue to systemic metabolism. Cell, 134: 933–944.10.1016/j.cell.2008.07.048
  6. Corl B.A., Baumgard L.H., Dwyer D.A., Griinari J.M., Phillips B.S., Bauman D.E. (2001). The role of Δ9-desaturase in the production of cis-9, trans-11 CLA. J. Nutr. Biochem., 12: 622–630.10.1016/S0955-2863(01)00180-2
  7. Dixon J.L., Furukawa S., Ginsberg H.N. (1991). Oleate stimulates secretion of apolipoprotein B-containing lipoproteins from Hep G2 cells by inhibiting early intracellular degradation of apolipoprotein B. J. Biol. Chem., 266: 5080–5086.10.1016/S0021-9258(19)67758-6
  8. Enoch H.G., Catala A., Strittmatter P. (1976). Mechanism of rat liver microsomal stearyl-CoA desaturase. Studies of the substrate specificity, enzyme-substrate interactions, and the function of lipid. J. Biol. Chem., 251: 5095–5103.10.1016/S0021-9258(17)33223-4
  9. Fan Y.Y., Zan L.S., Fu C.Z., Tian W.Q., Wang H.B., Liu Y.Y., Xin Y.P. (2011). Three novel SNPs in the coding region of PPARγ gene and their associations with meat quality traits in cattle. Mol. Biol. Rep., 38: 131–137.10.1007/s11033-010-0086-2
  10. Fan Y.Y., Fu G.W., Fu C.Z., Zan L.S., Tian W.Q. (2012). A missense mutant of the PPAR-gamma gene associated with carcass and meat quality traits in Chinese cattle breeds. Genet. Mol. Res., 11: 3781–3788.10.4238/2012.August.17.4
  11. Ferre P. (2004). The biology of peroxisome proliferators-activated receptors. Diabetes, 53: 43–50.10.2337/diabetes.53.2007.S43
  12. Fu Y., Luo N., Lopes-Virella M.F. (2000). Oxidized LDL induces the expression of ALBP/aP2 mRNA and protein in human THP-1 macrophages. J. Lipid Res., 41: 2017–2023.10.1016/S0022-2275(20)32363-4
  13. García-Fernández M., Gutiérrez-Gil B., García-Gámez E., Arranz J.J. (2009). Genetic variability of the stearoyl-CoA desaturase gene in sheep. Mol. Cell. Probe., 23, 107–111.10.1016/j.mcp.2009.01.00119418606
  14. Gutiérrez-Juárez R., Pocai A., Mulas C., Ono H., Bhanot S., Monia B.P., Rossetti L. (2006). Critical role of stearoyl-CoA desaturase-1 (SCD1) in the onset of diet-induced hepatic insulin resistance. J. Clin. Invest., 116: 1686–1695.10.1172/JCI26991
  15. Hanhoff T., Lücke C., Spener F. (2002). Insights into binding of fatty acids by fatty acid binding proteins. Mol. Cell. Biochem., 239: 45–54.10.1007/978-1-4419-9270-3_6
  16. Ibrahim A.H.M., Shehata M.F., Ismail I.M., Gad S.M.A. (2014). Association of fatty acid binding protein 4 (FABP4) polymorphisms with growth and carcass traits of Barki sheep. J. Am. Sci., 10: 10–15.
  17. Jiang Y., Xie M., Chen W., Talbot R., Maddox J.F., Faraut T., Wu C., Muzny D.M., Li Y., Zhang W., Stanton J.A., Brauning R., Barris W.C., Hourlier T., Aken B.L., Searle S.M., Adelson D.L., Bian C., Cam G.R., Chen Y., Cheng S., De Silva U., Dixen K., Dong Y., Fan G., Franklin I.R., Fu S., Fuentes-Utrilla P., Guan R., Highland M.A., Holder M.E., Huang G., Ingham A.B., Jhangiani S.N., Kalra D., Kovar C.L., Lee S.L., Liu W., Liu X., Lu C., Lv T., Mathew T., Mc William S., Menzies M., Pan S., Robelin D., Servin B., Townley D., Wang W., Wei B., White S.N., Yang X., Ye C., Yue Y., Zeng P., Zhou Q., Hansen J.B., Kristiansen K., Gibbs R.A., Flicek P., Warkup C.C., Jones H.E., Oddy V.H., Nicholas F.W., Mc Ewan J.C., Kijas J.W., Wang J., Worley K.C., Archibald A.L., Cockett N., Xu X., Dalrymple B.P. (2014). The sheep genome illuminates biology of the rumen and lipid metabolism. Science, 344: 1168–1173.10.1126/science.1252806
  18. Karahashi M., Ishii F., Yamazaki T., Imai K., Mitsumoto A., Kawashima Y., Kudo N. (2013). Up-regulation of stearoyl-CoA desaturase 1 increases liver MUFA content in obese zucker but not Goto-Kakizaki rats. Lipids, 48: 457–467.10.1007/s11745-013-3786-2
  19. Kersten S., Seydoux J., Peters J.M., Gonzalez F.J., Desvergne B., Wahli W. (1999). Peroxisome proliferator-activated receptor alpha mediates the adaptive response to fasting. J. Clin. Invest., 103: 1489–1498.10.1172/JCI6223
  20. Koutnikova H., Cock T.A., Watanabe M., Houten S.M., Champy M.F., Dierich A., Auwerx J. (2003). Compensation by the muscle limits the metabolic consequences of lipodystrophy in PPAR gamma hypomorphic mice. P. Natl. Acad. Sci. USA, 100: 14457–14462.10.1073/pnas.2336090100
  21. Legrand P., Catheline D., Fichot M., Lemarchal P. (1997). Inhibiting D9-desaturase activity impairs triacylglycerol secretion in cultured chicken hepatocytes. J. Nutr., 127: 249–256.10.1093/jn/127.2.249
  22. Marion-Letellier R., Savoye G., Ghosh S. (2015). Fatty acids, eicosanoids and PPAR gamma. Eur. J. Pharmacol., 795: 44–49.10.1016/j.ejphar.2015.11.004
  23. Matarese V., Bernlohr D.A. (1988). Purification of murine adipocyte lipid-binding protein. Characterization as a fatty acid- and retinoic acid-binding protein. J. Biol. Chem., 263: 14544–14551.10.1016/S0021-9258(18)68254-7
  24. Mishkin S., Stein L., Gatmaitan Z., Arias I.M. (1972). The binding of fatty acids to cytoplasmic proteins: Binding to Z protein in liver and other tissues of the rat. Biochem. Bioph. Res. Co., 47: 997–1003.10.1016/0006-291X(72)90931-X
  25. Miyazaki M., Kim Y.C., Gray-Keller M.P., Attie A.D., Ntambi J.M. (2000). The biosynthesis of hepatic cholesterol esters and triglycerides is impaired in mice with a disruption of the gene for stearoyl-CoA desaturase 1. J. Biol. Chem., 275: 30132–30138.10.1074/jbc.M005488200
  26. Niżnikowski R. (2011). Sheep breeding, rearing and use (in Polish). Wieś Jutra, Warszawa, pp. 21–32.
  27. Ntambi J.M., Miyazaki M., Dobrzyn A. (2004). Regulation of stearoyl-CoA desaturase expression. Lipids, 39: 1061–1065.10.1007/s11745-004-1331-2
  28. Ockner R.K., Manning J.A., Poppenhausen R.B., Ho W.K. (1972). A binding protein for fatty acids in cytosol of intestinal mucosa, liver, myocardium, and other tissues. Science, 177: 56–58.10.1126/science.177.4043.56
  29. Pisanu A., Lecca D., Mulas G., Wardas J., Simbula G., Spiga S., Carta A.R. (2014). Dynamic changes in pro- and anti-inflammatory cytokines in microglia after PPAR-γ agonist neuroprotective treatment in the MPTPp mouse model of progressive Parkinson’s disease. Neurobiol. Dis., 71: 280–291.10.1016/j.nbd.2014.08.011
  30. Rosen E.D., Sarraf P., Troy A.E., Bradwin G., Moore K., Milstone D.S., Spiegelman B.M., Mortensen R.M. (1999). PPAR gamma is required for the differentiation of adipose tissue in vivo and in vitro. Mol. Cell, 4: 611–617.10.1016/S1097-2765(00)80211-7
  31. Sevane N., Armstrong E., Cortés O., Wiener P., Wong R.P., Dunner S. (2013). Association of bovine meat quality traits with genes included in the PPARG and PPARGC1A networks. Meat Sci., 94: 328–335.10.1016/j.meatsci.2013.02.014
  32. Sobrado M., Pereira M.P., Ballesteros I., Hurtado O., Fernández-López D., Pradillo J.M., Caso J.R., Vivancos J., Moro M.A. (2009). Synthesis of lipoxin A 4 by 5-lipoxygenase mediates PPARγ-dependent, neuroprotective effects of rosiglitazone in experimental stroke. J. Neurosci., 29: 3875–3884.10.1523/JNEUROSCI.5529-08.2009
  33. Tontonoz P., Hu E., Graves R.A., Budavari AI., Spiegelman B.M. (1994). mPPARgamma2: Tissue-specific regulator of an adipocyte enhancer. Gene. Dev., 8: 1224–1234.10.1101/gad.8.10.1224
  34. Wei Y., Wang D., Topczewski F., Pagliassotti M.J. (2006). Saturated fatty acids induce endoplasmic reticulum stress and apoptosis independently of ceramide in liver cells. Am. J. Physiol.- Endoc. M., 291: 275–281.10.1152/ajpendo.00644.2005
  35. Wei Y., Wang D., Gentile C.L., Pagliassotti M.J. (2009). Reduced endoplasmic reticulum luminal calcium links saturated fatty acid-mediated endoplasmic reticulum stress and cell death in liver cells. Mol. Cell. Biochem., 331: 31–40.10.1007/s11010-009-0142-1
  36. Willson T.M., Brown P.J., Sternbach D.D., Henke B.R. (2000). The PPARs: From orphan receptors to drug discovery. J. Med. Chem., 43: 527–550.10.1021/jm990554g
  37. Xu Q.L., Tang G.W., Zhang Q.L., Huang Y.K., Liu Y.X., Quan K., Zhu K.Y., Zhang C.X. (2011). The FABP4 gene polymorphism is associated with meat tenderness in three Chinese native sheep breeds. Czech J. Anim. Sci., 56: 1–6.10.17221/231/2009-CJAS
  38. Yan W., Zhou H., Luo Y., Hu J., Hickford J.G.H. (2012). Allelic variation in ovine fatty acid-binding protein (FABP4) gene. Mol. Biol. Rep., 39: 10621–10625.10.1007/s11033-012-1951-y
  39. Yeh F.C., Boyle J. (1997). POPGENE, the user-friendly shareware for population genetic analysis. Mol. Biol. Biotechnol., 434: 724–731.
  40. Zhao Y., Calon F., Julien C., Winkler J.W., Petasis N.A., Lukiw W.J., Bazan N.G. (2011). Docosahexaenoic acid-derived neuroprotectin D1 induces neuronal survival via secre-tase- and PPARγ-mediated mechanisms in Alzheimer’s disease models. PLoS ONE, 6. http://doi.org/10.1371/journal.pone.001581610.1371/journal.pone.0015816301644021246057
  41. Zimmerman A.W., Veerkamp J.H. (2002). New insights into the structure and function of fatty acid-binding proteins. Cell. Mol. Life Sci.: CMLS, 59: 1096–1116.10.1007/s00018-002-8490-y
DOI: https://doi.org/10.2478/aoas-2019-0033 | Journal eISSN: 2300-8733 | Journal ISSN: 1642-3402
Language: English
Page range: 937 - 954
Submitted on: Dec 5, 2018
Accepted on: Apr 26, 2019
Published on: Oct 30, 2019
Published by: National Research Institute of Animal Production
In partnership with: Paradigm Publishing Services
Publication frequency: 4 times per year

© 2019 Mirosław Kucharski, Urszula Kaczor, Katarzyna Piórkowska, published by National Research Institute of Animal Production
This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 3.0 License.