School of Life Sciences, Tianjin University, Tianjin, 300072, PR China.
Key Laboratory of Biotechnology and Bioresources Utilization of Ministry of Education, Dalian Minzu University, Dalian, 116600, Liaoning, PR China.
Plant Foods Hum Nutr. 2024 Jun;79(2):526-530. doi: 10.1007/s11130-024-01167-w. Epub 2024 Mar 26.
The antiglycation mechanisms of three structurally different salvianolic acids (Sals) including salvianolic acid A (Sal-A), salvianolic acid B (Sal-B) and salvianolic acid C (Sal-C) were investigated using the bovine serum albumin (BSA)-fructose model. The results showed that the three compounds could inhibit the formation of glycation products, maintain protein structural stability, mitigate the development of amyloid fibrils and scavenge radicals. Notably, Sal-A possessed the highest anti-glycated activity compared with Sal-B and Sal-C. This may be related to the fact that Sal-A contained the most molecules of caffeic acid (Sal-A, Sal-B, and Sal-C possessing two, one, and zero caffeic acid units, respectively), and caffeic acid played a leading role in the antiglycation properties relative to Danshensu. Moreover, these compounds quenched the intrinsic fluorescence intensity of BSA in a static mode, with the binding constants in the order of Sal-A > Sal-B > Sal-C. Obviously, Sal-A possessed the strongest binding affinity among these compounds, which may be one of the reasons why it exhibited the optimal antiglycation capability. Furthermore, molecular docking demonstrated that the three Sals exerted protective effects on BSA by preventing glycation modification of lysine and arginine residues. These findings would provide valuable insights into the potential application of Sals for alleviating non-enzymatic glycation of protein.
采用牛血清白蛋白(BSA)-果糖模型研究了 3 种结构不同的丹酚酸(Sals),包括丹酚酸 A(Sal-A)、丹酚酸 B(Sal-B)和丹酚酸 C(Sal-C)的抗糖化机制。结果表明,这 3 种化合物能够抑制糖化产物的形成,维持蛋白质结构的稳定性,减轻淀粉样纤维的发展,并清除自由基。值得注意的是,与 Sal-B 和 Sal-C 相比,Sal-A 具有最高的抗糖化活性。这可能与 Sal-A 含有最多的咖啡酸分子(Sal-A、Sal-B 和 Sal-C 分别含有 2、1 和 0 个咖啡酸单元)有关,而咖啡酸相对于丹酚酸在抗糖化性质方面发挥了主导作用。此外,这些化合物以静态模式猝灭 BSA 的本征荧光强度,其结合常数的顺序为 Sal-A > Sal-B > Sal-C。显然,Sal-A 在这些化合物中具有最强的结合亲和力,这可能是其表现出最佳抗糖化能力的原因之一。此外,分子对接表明,这 3 种 Sals 通过防止赖氨酸和精氨酸残基的糖化修饰对 BSA 发挥保护作用。这些发现将为 Sals 缓解蛋白质非酶糖化的潜在应用提供有价值的见解。