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The Integration of Pharmacokinetics, Cardiac Tissue Distribution, Network Pharmacology, and Experimental Verification to Reveal the Bioactive Components and Pharmacological Mechanisms of Guanxinning Tablet Against Coronary Heart Disease

体内 药理学 心肌保护 药代动力学 医学 AKT1型 系统药理学 计算生物学 对接(动物) 冠心病 体外 信号转导 体外毒理学 化学 中医药 安全药理学 临床试验 细胞 疾病 生物信息学 动物研究 生物活性 程序性细胞死亡 生物
作者
Jun Li,Yuxing Wang,Miaofu Li,Mulan Wang,Peiqiang Shen,Yi Tao,Yule Wang
出处
期刊:Combinatorial Chemistry & High Throughput Screening [Bentham Science Publishers]
卷期号:29
标识
DOI:10.2174/0113862073440242260212070253
摘要

Introduction: Coronary heart disease (CHD) is a leading cause of morbidity and mortality worldwide, yet therapeutic options remain limited. Guanxinning tablet (GXNT), a component-based Chinese medicine containing Danshen and Chuanxiong, has demonstrated clinical efficacy and safety for CHD patients with heart-blood stagnation syndrome. However, its bioactive constituents and underlying pharmacological mechanisms remain undefined. This study aimed to identify the bioactive components of GXNT and elucidate its anti-CHD mechanisms. Methods: The pharmacokinetics and cardiac distribution of five GXNT constituents were investigated using a validated ultra-performance liquid chromatography-tandem mass spectrometry (UPLC-MS/MS) method. Network pharmacology revealed pivotal targets and pathways against CHD, which were verified by molecular docking and in vitro experiments. Results: A validated UPLC-MS/MS method was developed to quantify danshensu, salvianolic acid B, protocatechuic acid, ferulic acid, and senkyunolide I in biological samples. These compounds showed promising in vivo bioactivity, marked by rapid absorption, high systemic exposure, and efficient cardiac distribution. The detailed network analyses linked GXNT’s efficacy to inflammation-related pathways, identifying TLR4, NFKB1, TNF, IL6, IL1B, and AKT1 as hub targets. The docking results confirmed strong binding affinities between five compounds and these targets. Cell experiments demonstrated that GXNT and its bioactive components exerted cardioprotection by normalizing the overexpression of key inflammatory factors. Discussion: Firstly, the pharmacokinetic properties of GXNT’s bioactive components require further investigation using a rodent disease model of CHD. Secondly, in vivo follow-up animal experiments are needed to validate the present findings further. Thirdly, beyond inflammation-related signaling pathways, the relationship between GXNT’s anti-CHD action and other enriched pathways (e.g., the AGE-RAGE signaling pathway in diabetic complications, the HIF-1 signaling pathway, and the PI3K-Akt signaling pathway) warrants further exploration. conclusion: CONCLUSION In summary, a rapid, sensitive and reliable UPLC-MS/MS analytical method was successfully developed and applied to investigate the pharmacokinetics and cardiac tissue distribution of danshensu, salvianolic acid B, protocatechuic acid, ferulic acid, and senkyunolide I after intragastric administration of GXNT. The results highlighted the bioactive potential of these components in vivo. Subsequent network pharmacology, molecular docking, and experimental verification preliminarily manifested that the anti-CHD effects of GXNT and its bioactive compounds were strongly correlated to TLR4/NF-κB mediated inflammation-related pathways. These findings not only provide critical insights into the anti-CHD active constituents and molecular mechanisms of GXNT, but also offer potential bioactive markers for improving its quality control. Conclusion: The favorable pharmacokinetics and cardiac distribution of five GXNT constituents underscored their bioactive potential. GXNT and its bioactive compounds exerted cardioprotective effects against CHD, partly by regulating TLR4/NF-κB-mediated inflammation-related pathways. These findings provide insights into the bioactive components and mechanisms of GXNT against CHD, supporting its further development and quality control.
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