Wuxi School of Medicine, Jiangnan University, Wuxi, China.
School of Pharmaceutical Sciences, Jiangnan University, Wuxi, China.
Hypertens Res. 2022 Dec;45(12):1954-1963. doi: 10.1038/s41440-022-01000-4. Epub 2022 Sep 2.
Silybin is a flavonolignan extracted from the seeds of Silybum marianum that has been used as a dietary supplement for treating hepatic diseases and components of metabolic syndrome such as diabetes, obesity and hypertension. Transient receptor potential vanilloid 4 (TRPV4) channels are Ca-permeable, nonselective cation channels that regulate vascular endothelial function and blood flow. However, the relationship between silybin and TRPV4 channels in small mesenteric arteries remains unknown. In our study, we carried out a molecular docking experiment by using Discovery Studio v3.5 to predict the binding of silybin to TRPV4. Activation of TRPV4 with silybin was detected via intracellular Ca concentration ([Ca]) measurement and patch clamp experiments. The molecular docking results showed that silybin was likely to bind to the ankyrin repeat domain of TPRV4. [Ca] measurements in mesenteric arterial endothelial cells (MAECs) and TRPV4-overexpressing HEK293 (TRPV4-HEK293) cells demonstrated that silybin induced Ca influx by activating TRPV4 channels. The patch clamp experiments indicated that in TRPV4-HEK293 cells, silybin induced TRPV4-mediated cation currents. In addition, in high-salt-induced hypertensive mice, oral administration of silybin decreased systolic blood pressure (SBP) and significantly improved the arterial dilatory response to acetylcholine. Our findings provide the first evidence that silybin could induce mesenteric endothelium-dependent vasodilation and reduce blood pressure in high-salt-induced hypertensive mice via TRPV4 channels, thereby revealing the potential effect of silybin on preventing endothelial dysfunction-related cardiovascular diseases.
水飞蓟宾是从水飞蓟种子中提取的类黄酮木脂素,已被用作治疗肝脏疾病和代谢综合征成分(如糖尿病、肥胖和高血压)的膳食补充剂。瞬时受体电位香草醛 4(TRPV4)通道是 Ca 通透性、非选择性阳离子通道,可调节血管内皮功能和血流。然而,水飞蓟宾与小肠系膜动脉中的 TRPV4 通道之间的关系尚不清楚。在我们的研究中,我们使用 Discovery Studio v3.5 进行了分子对接实验,以预测水飞蓟宾与 TRPV4 的结合。通过细胞内 Ca 浓度 ([Ca]) 测量和膜片钳实验检测 TRPV4 的激活。分子对接结果表明,水飞蓟宾可能与 TRPV4 的锚蛋白重复结构域结合。肠系膜动脉内皮细胞(MAECs)和 TRPV4 过表达的 HEK293(TRPV4-HEK293)细胞中的 [Ca] 测量表明,水飞蓟宾通过激活 TRPV4 通道诱导 Ca 内流。膜片钳实验表明,在 TRPV4-HEK293 细胞中,水飞蓟宾诱导 TRPV4 介导的阳离子电流。此外,在高盐诱导的高血压小鼠中,水飞蓟宾的口服给药降低了收缩压(SBP),并显著改善了乙酰胆碱诱导的动脉扩张反应。我们的研究结果首次提供了证据表明,水飞蓟宾可以通过 TRPV4 通道诱导肠系膜内皮依赖性血管舒张并降低高盐诱导的高血压小鼠的血压,从而揭示了水飞蓟宾在预防与内皮功能障碍相关的心血管疾病方面的潜在作用。