探索疗效:揭示华氏百多颗粒抗COVID-19的活性化合物

IF 5.3 2区 化学 Q2 CHEMISTRY, MULTIDISCIPLINARY
Chuanxi Tian , Jinyue Zhao , Qian Wang , Keke Luo , Shuang Zhao , Li Wan , Jiarui Li , Kaile Ma , Yanyan Zhou , Min Li
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引用次数: 0

摘要

背景哈希白度颗粒(HSBD)是一种已获批准的治疗COVID-19的中药配方,具有安全性和有效性。本研究对 HSBD 有效成分治疗 COVID-19 的潜在机制进行了调查。我们的研究方法综合了多种技术,包括超高效液相色谱-质谱-质谱/多质谱法、GEO 数据库分析、网络药理学、表面等离子体共振、分子对接和分子动力学模拟,从而制定了一套全面的研究策略。结果用于 HSBD 分析的超高效液相色谱-质谱-质谱/多质谱法被证明是稳定、可靠和可重复的。我们确定了 HSBD 中的 25 个主成分,并在血浆中检测到了 7 种化合物,即 Pogostone、P-Hydroxybenzoic acid、Paeoniflorin、Rhein、Emodin、Ephedrine hydrochloride 和 Pseudoephedrine hydrochloride。蛋白质-蛋白质相互作用(PPI)网络分析确定 MMP9 为关键靶点。表面等离子共振分析表明,芍药苷和大黄霉素通过与 RBD 和 ACE2 相互作用而发挥抗病毒作用。相比之下,大黄素的抗病毒机制主要涉及与 MMP9 的结合。分子对接结果表明,Rhein 和 Paeoniflorin 与 hACE2 蛋白的结合亲和力很强,而 Emodin 与 MMP9 蛋白的结合亲和力很高,所有这些都得到了分子动力学模拟的证实。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Exploring the therapeutic efficacy: Unveiling the active compounds of Huashi Baidu granules against COVID-19

Background

Huashi Baidu granule (HSBD), an approved herbal formula for treating COVID-19, demonstrates safety and efficacy. Despite its market approval, the detailed methodology and identification of its active components remain unexplored, leaving its bioactive constituents and action mechanisms unclear.

Methods

This study investigated the potential mechanisms of HSBD’s active ingredient in treating COVID-19. Our approach integrated various techniques, including the UHPLC-QqQ-MS/MS method, analysis of the GEO database, network pharmacology, surface plasmon resonance, molecular docking and molecular dynamics simulations, to formulate a comprehensive research strategy.

Results

The UHPLC-QqQ-MS/MS method employed for HSBD analysis proved stable, reliable, and reproducible. We identified 25 principal components in HSBD, with 7 compounds detected in plasma, namely Pogostone, P-Hydroxybenzoic acid, Paeoniflorin, Rhein, Emodin, Ephedrine hydrochloride, and Pseudoephedrine hydrochloride. Protein-Protein Interaction (PPI) network analysis identified MMP9 as a pivotal target. Surface plasmon resonance analysis revealed that Paeoniflorin and Rhein exert their antiviral effects by interacting with RBD and ACE2. In contrast, Emodin’s antiviral mechanism predominantly involves binding to MMP9. Molecular docking results indicated strong binding affinities of Rhein and Paeoniflorin to the hACE2 protein, and high binding affinities of Emodin to the MMP9 protein, all of which were corroborated by molecular dynamics simulations.

Conclusion

We investigated the methodology and identified the active components of HSBD, focusing on those absorbed into the plasma, to elucidate the effective material basis of HSBD in the treatment of COVID-19, our research offered insightful exploration into its mechanisms of action against COVID-19.

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来源期刊
Arabian Journal of Chemistry
Arabian Journal of Chemistry CHEMISTRY, MULTIDISCIPLINARY-
CiteScore
10.80
自引率
3.30%
发文量
763
审稿时长
63 days
期刊介绍: The Arabian Journal of Chemistry is an English language, peer-reviewed scholarly publication in the area of chemistry. The Arabian Journal of Chemistry publishes original papers, reviews and short reports on, but not limited to: inorganic, physical, organic, analytical and biochemistry. The Arabian Journal of Chemistry is issued by the Arab Union of Chemists and is published by King Saud University together with the Saudi Chemical Society in collaboration with Elsevier and is edited by an international group of eminent researchers.
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