College of Animal Sciences, Zhejiang University, Hangzhou 310058, China.
Department of Animal and Poultry Science, Virginia Tech, Blacksburg 24060.
J Dairy Sci. 2018 Nov;101(11):10456-10468. doi: 10.3168/jds.2018-14568. Epub 2018 Sep 13.
Essential amino acids (EAA) play an important role in promoting milk protein synthesis in primary bovine mammary epithelial cells (BMEC). However, the regulatory mechanisms involved in the relationship between EAA and milk protein synthesis have not been fully explored. This study examined the effects of seryl-tRNA synthetase (SARS) on EAA-stimulated β-casein synthesis, cell proliferation, and the mammalian target of rapamycin (mTOR) system in BMEC. First, BMEC were cultured in medium either lacking all EAA (-EAA) or that included all EAA (+EAA) for 12 h. The BMEC were then supplemented with the opposing treatments (-EAA supplemented with +EAA and vice versa) for 0 h, 10 min, 0.5 h, 1 h, 6 h, or 12 h, respectively. After the treatment-specific time allotment, proteins were collected for Western blotting. Subsequently, a 2 × 2 factorial design was used to evaluate the interactive of SARS inhibition (control or SARS inhibited) and EAA supply (+EAA or -EAA) on gene and protein abundance, cell viability, and cell cycle in BMEC. Based on the data obtained in the first experiment, the changes in protein abundance of β-casein and SARS depended on EAA treatment time in similar patterns. The protein abundance of β-casein, SARS, and mammalian target of rapamycin (mTOR)-related proteins, cell viability, cell cycle progression, and the mRNA abundance of cyclin D1 (CCND1, cell cycle progression marker) and marker of proliferation Ki-67 (MKI67, cell proliferation marker) were stimulated by the presence of EAA. Correspondingly, when cells were deprived of EAA, cell proliferation and abundance of these proteins and genes were reduced overall. Moreover, the decreases in these aspects were further exacerbated by inhibiting SARS, suggesting that an interaction between EAA and SARS is important for regulating protein synthesis. The results indicated that SARS stimulated the mTOR signaling pathway when EAA were present, enhanced EAA-stimulated cell proliferation, and contributed to increased β-casein production in BMEC.
必需氨基酸(EAA)在促进原代奶牛乳腺上皮细胞(BMEC)中的乳蛋白合成方面发挥着重要作用。然而,EAA 与乳蛋白合成之间关系的调节机制尚未得到充分探索。本研究探讨了丝氨酰-tRNA 合成酶(SARS)对 BMEC 中 EAA 刺激β-酪蛋白合成、细胞增殖和雷帕霉素靶蛋白(mTOR)系统的影响。首先,将 BMEC 在缺乏所有必需氨基酸(-EAA)或包含所有必需氨基酸(+EAA)的培养基中培养 12 小时。然后,将 BMEC 分别用相反的处理(-EAA 补充+EAA 和反之亦然)处理 0 小时、10 分钟、0.5 小时、1 小时、6 小时或 12 小时。在特定的治疗时间后,收集蛋白质进行 Western blot 分析。随后,采用 2×2 析因设计评估 SARS 抑制(对照或 SARS 抑制)和 EAA 供应(+EAA 或-EAA)对 BMEC 中基因和蛋白质丰度、细胞活力和细胞周期的相互作用。基于第一个实验获得的数据,β-酪蛋白和 SARS 的蛋白质丰度变化在相似的模式下取决于 EAA 处理时间。EAA 的存在刺激了β-酪蛋白、SARS、哺乳动物靶标雷帕霉素(mTOR)相关蛋白、细胞活力、细胞周期进程以及细胞周期进程标志物 cyclin D1(CCND1)和增殖标志物 Ki-67(MKI67)的 mRNA 丰度。相应地,当细胞缺乏 EAA 时,细胞增殖和这些蛋白质和基因的丰度总体上降低。此外,通过抑制 SARS,这些方面的减少进一步加剧,这表明 EAA 和 SARS 之间的相互作用对于调节蛋白质合成很重要。结果表明,当 EAA 存在时,SARS 刺激 mTOR 信号通路,增强 EAA 刺激的细胞增殖,并有助于 BMEC 中β-酪蛋白的产生增加。