College of Food Science and Engineering, Jilin Agricultural University, Changchun 130118, China.
Division of Soybean Processing, Soybean Research & Development Center, Chinese Agricultural Research System, Changchun 130118, China.
Food Funct. 2022 Nov 28;13(23):12291-12302. doi: 10.1039/d2fo02869g.
Although the cholesterol-lowering effect of soybean protein has long been widely recognized, little is known about the protein structural characteristics important for its cholesterol-lowering activity. In this process, β-conglycinin (7S) was obviously superior to glycinin (11S). However, the potential ability of 7S protein components to influence obesity and metabolism is still unclear. Therefore, we examined the lipid metabolism ability of 3T3-L1 adipocytes using different 7S subunit deletions to determine their lipid metabolism potential. In this study, we detected the content of cellular triglycerides to evaluate and explore possible potential capabilities. The α-lack group showed low TG accumulation, and the preliminary results show that α-lack had better potential lipid metabolism ability. The difference in protein expression was determined proteomics analysis. Compared with the HF group, α-lack regulated lipid metabolism through specific mechanisms in the high-fat model, with four pathways significantly up-regulated and 13 pathways down-regulated. It was also found to have the ability to regulate glucose metabolism. The α-lack group could regulate the glucolipid metabolism of 3T3-L1 pre-adipocytes by participating in the oxidative phosphorylation pathway, preventing obesity and diabetes. Finally, , the accumulation of fats as verified by Oil Red O dyeing is reduced compared with the normal group, and both glucose consumption and glycerol release were significantly reduced ( < 0.01), which further confirmed that α-deficiency played a vital role in lipid metabolism and sugar metabolism. In short, our results indicate that α-lack has potential glycolipid metabolic capacity and is preferable in the preparation of products for human nutritional purposes. These results are also significant for understanding the molecular mechanism of soybean protein in glycolipid metabolism.
虽然大豆蛋白的降胆固醇作用早已被广泛认可,但对于其降胆固醇活性所必需的蛋白质结构特征却知之甚少。在这个过程中,β-伴大豆球蛋白(7S)明显优于大豆球蛋白(11S)。然而,7S 蛋白成分影响肥胖和代谢的潜在能力尚不清楚。因此,我们使用不同的 7S 亚基缺失来检查 3T3-L1 脂肪细胞的脂质代谢能力,以确定它们的脂质代谢潜力。在这项研究中,我们检测了细胞内甘油三酯的含量来评估和探索可能的潜在能力。α-缺失组表现出低 TG 积累,初步结果表明 α-缺失具有更好的潜在脂质代谢能力。通过蛋白质组学分析确定蛋白质表达的差异。与 HF 组相比,α-缺失通过特定机制在高脂肪模型中调节脂质代谢,有 4 条通路显著上调,13 条通路下调。它还被发现具有调节葡萄糖代谢的能力。α-缺失组可以通过参与氧化磷酸化途径来调节 3T3-L1 前脂肪细胞的糖脂代谢,从而预防肥胖和糖尿病。最后,如油红 O 染色验证的那样,与正常组相比,脂肪的积累减少,葡萄糖消耗和甘油释放均显著降低(<0.01),这进一步证实了 α-缺失在脂质代谢和糖代谢中发挥了重要作用。总之,我们的结果表明,α-缺失具有潜在的糖脂代谢能力,在制备人类营养产品方面更具优势。这些结果对于理解大豆蛋白在糖脂代谢中的分子机制也具有重要意义。