Natural product virtual-interact-phenotypic target characterization: A novel approach demonstrated with Salvia miltiorrhiza extract.

Journal of pharmaceutical analysis Pub Date : 2025-02-01 Epub Date: 2024-09-16 DOI:10.1016/j.jpha.2024.101101
Rui Xu, Hengyuan Yu, Yichen Wang, Boyu Li, Yong Chen, Xuesong Liu, Tengfei Xu
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Abstract

Natural products (NPs) have historically been a fundamental source for drug discovery. Yet the complex nature of NPs presents substantial challenges in pinpointing bioactive constituents, and corresponding targets. In the present study, an innovative natural product virtual screening-interaction-phenotype (NP-VIP) strategy that integrates virtual screening, chemical proteomics, and metabolomics to identify and validate the bioactive targets of NPs. This approach reduces false positive results and enhances the efficiency of target identification. Salvia miltiorrhiza (SM), a herb with recognized therapeutic potential against ischemic stroke (IS), was used to illustrate the workflow. Utilizing virtual screening, chemical proteomics, and metabolomics, potential therapeutic targets for SM in the IS treatment were identified, totaling 29, 100, and 78, respectively. Further analysis via the NP-VIP strategy highlighted five high-confidence targets, including poly [ADP-ribose] polymerase 1 (PARP1), signal transducer and activator of transcription 3 (STAT3), amyloid precursor protein (APP), glutamate-ammonia ligase (GLUL), and glutamate decarboxylase 67 (GAD67). These targets were subsequently validated and found to play critical roles in the neuroprotective effects of SM. The study not only underscores the importance of SM in treating IS but also sets a precedent for NP research, proposing a comprehensive approach that could be adapted for broader pharmacological explorations.

天然产物虚拟-相互作用-表型靶标表征:一种用丹参提取物证明的新方法。
天然产物(NPs)历来是药物发现的基本来源。然而,NPs的复杂性在确定生物活性成分和相应靶点方面提出了实质性的挑战。在本研究中,一种创新的天然产物虚拟筛选-相互作用表型(NP-VIP)策略将虚拟筛选、化学蛋白质组学和代谢组学相结合,以鉴定和验证NPs的生物活性靶点。该方法减少了假阳性结果,提高了目标识别的效率。丹参(SM),一种公认的治疗缺血性中风(IS)的草药,被用来说明工作流程。利用虚拟筛选、化学蛋白质组学和代谢组学,确定了SM在IS治疗中的潜在治疗靶点,分别为29、100和78个。通过NP-VIP策略进一步分析,突出了5个高置信度靶点,包括聚[adp -核糖]聚合酶1 (PARP1)、转录信号换能器和激活因子3 (STAT3)、淀粉样蛋白前体蛋白(APP)、谷氨酸-氨连接酶(GLUL)和谷氨酸脱羧酶67 (GAD67)。这些靶点随后被证实并发现在SM的神经保护作用中起关键作用。该研究不仅强调了SM在治疗IS中的重要性,而且为NP研究开创了先例,提出了一种可以适用于更广泛的药理学探索的综合方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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