Romao J M, He M L, McAllister T A, Guan L L
Department of Agricultural, Food and Nutritional Science, University of Alberta, Edmonton, AB T6G 2R3, Canada.
Lethbridge Research Centre, Agriculture and Agri-Food Canada, Lethbridge, AB T1J 4B1, Canada.
J Anim Sci. 2014 Aug;92(8):3316-27. doi: 10.2527/jas.2013-7423. Epub 2014 Jun 3.
Fat deposition influences both meat quality and animal productivity. However, it is not clear how fat development is regulated in growing and fattening beef cattle. This study characterized proteomic changes in subcutaneous adipose tissue from steers fed a high-grain diet in an effort to understand the molecular mechanisms of fat development during feedlot production. Eight British-Continental crossbred steers had two subcutaneous adipose tissue biopsies at 12 and 15 mo of age. Protein expression in fat samples was profiled using liquid chromatography-tandem mass spectrometry (LC-MS/MS). During the finishing period, steers increased subcutaneous adipose tissue mass with concomitant changes in the proteome profile, but the nature of these changes varied among steers. The expression of 123 out of 627 identified proteins differed (P <: 0.05) between 2 ages. Functional analyses on differentially expressed proteins revealed that 20.2% of them were associated with cellular growth and proliferation of adipose tissue. There were 17 out of 108 differentially expressed proteins associated with lipid metabolism, which were acyl-CoA synthetase medium-chain family member 1 (ACSM1), annexin A1 (ANXA1), apolipoprotein C-III (APOC3), apolipoprotein H (beta-2-glycoprotein I; APOH), EH-domain containing 1 (EHD1), coagulation factor II (thrombin; F2), gelsolin (GSN), lamin A/C (LMNA), mitogen-activated protein kinase kinase 1 (MAP2K1), myosin, heavy chain 9, non-muscle (MYH9), orosomucoid 1 (ORM1), protein disulfide isomerase family A, member 3 (PDIA3), retinol binding protein 4, plasma (RBP4), renin binding protein (RENBP), succinate dehydrogenase complex, subunit A, flavoprotein (Fp; SDHA), serpin peptidase inhibitor, clade C (antithrombin), member 1 (SERPINC1), and serpin peptidase inhibitor, clade G (C1 inhibitor), member 1 (SERPING1). Further analysis of the expression levels of proteins associated with lipid metabolism indicated a downregulation in the synthesis of fatty acids at the cellular level at 15 compared to 12 mo of age. These results suggest that even though adipose tissue expanded, fat anabolism was reduced in adipocytes during growth, revealing a coordinated balance between subcutaneous fat mass and the cellular abundance of lipogenic proteins to control the rate of fat deposition in growing beef cattle. The findings observed in this study expand our understanding on how proteome of bovine adipose tissue is regulated during growth, which might help the development in the future of new strategies to manipulate adiposity in beef cattle in a manner that improves meat quality and animal productivity.
脂肪沉积会影响肉质和动物生产性能。然而,目前尚不清楚育肥牛的脂肪发育是如何调控的。本研究对饲喂高谷物日粮的阉牛皮下脂肪组织中的蛋白质组变化进行了表征,旨在了解育肥生产过程中脂肪发育的分子机制。八头英国-大陆杂交阉牛在12月龄和15月龄时进行了两次皮下脂肪组织活检。使用液相色谱-串联质谱(LC-MS/MS)对脂肪样本中的蛋白质表达进行了分析。在育肥期,阉牛皮下脂肪组织质量增加,蛋白质组图谱也随之发生变化,但这些变化的性质在不同阉牛之间存在差异。在627种鉴定出的蛋白质中,有123种蛋白质的表达在两个年龄之间存在差异(P<0.05)。对差异表达蛋白质的功能分析表明,其中20.2%与脂肪组织的细胞生长和增殖有关。在108种差异表达蛋白质中,有17种与脂质代谢相关,它们分别是酰基辅酶A合成酶中链家族成员1(ACSM1)、膜联蛋白A1(ANXA1)、载脂蛋白C-III(APOC3)、载脂蛋白H(β-2-糖蛋白I;APOH)、含EH结构域蛋白1(EHD1)、凝血因子II(凝血酶;F2)、凝溶胶蛋白(GSN)、核纤层蛋白A/C(LMNA)、丝裂原活化蛋白激酶激酶1(MAP2K1)、肌球蛋白重链9(非肌肉型;MYH9)、类黏液蛋白1(ORM1)、蛋白质二硫键异构酶家族A成员3(PDIA3)、血浆视黄醇结合蛋白4(RBP4)、肾素结合蛋白(RENBP)、琥珀酸脱氢酶复合物亚基A黄素蛋白(Fp;SDHA)、丝氨酸蛋白酶抑制剂C族(抗凝血酶)成员1(SERPINC1)以及丝氨酸蛋白酶抑制剂G族(C1抑制剂)成员1(SERPING1)。对与脂质代谢相关蛋白质表达水平的进一步分析表明,与12月龄相比,15月龄时细胞水平的脂肪酸合成下调。这些结果表明,尽管脂肪组织有所扩张,但生长过程中脂肪细胞的脂肪合成代谢减少,揭示了皮下脂肪量与脂肪生成蛋白细胞丰度之间的协调平衡,以控制生长育肥牛的脂肪沉积速率。本研究中的发现扩展了我们对牛脂肪组织蛋白质组在生长过程中如何调控的理解,这可能有助于未来开发新的策略,以改善肉质和动物生产性能的方式来控制肉牛的肥胖程度。