邻苯二甲酸二丁酯通过变构破坏Spike-ACE2接口实现对SARS-CoV-2变体的广谱抑制

Broad-spectrum inhibition of SARS-CoV-2 variants by dibutyl phthalate through allosteric disruption of Spike-ACE2 interface.

作者信息Jiafan Chen, Dekuan Guo, Xiaoxuan Guo, Lijun Zhao, Geng Li, Helu Liu, Shaobo Wang, Zizhao Lao, Meiling Zhu
PMID41674904
发布时间2026-01-27
DOI10.3389/fmicb.2025.1610775

实验完整度

高

包含虚拟筛选、ELISA、CCK8、膜融合、假病毒感染、SPR、ACE2酶活、分子对接及点突变等多层级验证。

主要模型

HEK293T细胞 ACE2-293T细胞 SARS-CoV-2假病毒 VSVΔG/G假病毒

重点核对

DBP浓度梯度及IC50值(膜融合64.53 μM,假病毒感染73.06 μM) DBP对Delta(IC50=49.22 μM)和Omicron XBB.1.5(IC50=53.70 μM)变体的抑制效果 Tyr453和Tyr495点突变(Y453G/Y495G)对DBP抑制活性的影响 SPR检测DBP与Spike三聚体及ACE2的结合亲和力(KD值) DBP对ACE2酶活性的影响(12.5-200 μM无显著影响)

摘要

Introduction: The persistent evolution of SARS-CoV-2 has diminished the efficacy of existing vaccines and antibodies, increasing the risks of reinfection and Long COVID. There is a significant need for the development of convenient, broad-spectrum antiviral agents that target the early stage of viral infection. Traditional Chinese Medicine (TCM) volatile oils, with their diverse components and suitability for nasal delivery, demonstrate potential against respiratory viruses. This study aimed to screen bioactive compounds from TCM volatile oils for their ability to inhibit the interaction between the SARS-CoV-2 spike (S) protein and its host receptor, ACE2.Methods: A virtual screening of 47 structurally diverse TCM volatile compounds was performed to identify potential inhibitors of the Spike-ACE2 interaction. The top candidate, dibutyl phthalate (DBP), was further evaluated using in vitro assays including Spike-mediated membrane fusion and pseudovirus infection. Its mechanism was investigated through ELISA, surface plasmon resonance (SPR), ACE2 enzymatic activity assays, molecular docking. To evaluate its broad-spectrum potential, membrane fusion assays were further performed using spike proteins from the wild-type (WT), Delta, and Omicron XBB.1.5 variants. Critical binding residues were identified through molecular docking and subsequently confirmed by site-directed mutagenesis of the Spike receptor-binding domain (RBD).Results: Virtual screening identified ten potential inhibitors, with dibutyl phthalate (DBP) showing the strongest activity. DBP effectively inhibited S protein-mediated membrane fusion (IC 50 = 64.53 μM) and pseudovirus infection (IC 50 = 73.06 μM) with specificity. SPR analysis confirmed that DBP competitively inhibited the binding between the S trimer and ACE2 (increasing the K D from 8.28 nM to 86.7 nM). Mechanistic studies revealed that DBP disrupts the S-ACE2 interaction by targeting the receptor-binding domain (RBD) without affecting ACE2 enzymatic activity. Furthermore, DBP exhibited broad-spectrum inhibitory activity against membrane fusion mediated by the Delta (IC 50 = 49.22 μM) and Omicron XBB.1.5 (IC 50 = 53.70 μM) spike variants. Molecular docking and subsequent site-directed mutagenesis identified Tyr453 and Tyr495 as critical residues for DBP binding and its inhibitory function.Discussion: This study elucidates for the first time that DBP functions as a broad-spectrum RBD inhibitor. It binds to the RBD-ACE2 interface, dependent on conserved residues Tyr453 and Tyr495, and acts primarily through steric hindrance to block the Spike-ACE2 interaction. Notably, DBP shares critical aromatic and ester groups with other active-site inhibitors. Structure-activity relationship analysis of its derivatives revealed that introducing additional hydrogen-bond acceptors significantly enhances inhibitory activity, providing a clear structure optimization strategy. While DBP has known toxicity, its antiviral potential may be harnessed through strategic delivery approaches or SAR-guided optimization to advance its development against SARS-CoV-2 variants.

实验结论

提炼研究问题、关键发现与证据,快速把握文章的核心贡献。

研究问题
筛选中药挥发油中的活性成分,验证其能否抑制SARS-CoV-2 Spike蛋白与ACE2受体的相互作用,并阐明其作用机制。
核心机制
DBP通过结合Spike RBD上的保守残基Tyr453和Tyr495,以空间位阻方式破坏RBD-ACE2相互作用,从而阻断病毒进入。
主要证据
分子对接预测结合位点,SPR证实竞争性抑制(KD从8.28 nM增至86.7 nM),点突变(Y453G/Y495G)显著降低DBP抑制效果,膜融合和假病毒实验验证其广谱活性。
研究意义
DBP作为广谱RBD抑制剂,为开发针对SARS-CoV-2变异株的早期干预药物提供候选化合物和结构优化策略。

研究路径

按研究推进顺序梳理实验设计、验证步骤与关键观察。

1

虚拟筛选

鉴定可能抑制Spike-ACE2相互作用的候选化合物

对47种中药挥发油成分进行分子对接,筛选出10种潜在抑制剂。

2

体外活性筛选

评估候选化合物对Spike-ACE2结合及细胞毒性的影响

ELISA检测化合物抑制Spike-ACE2结合,CCK8检测细胞毒性。

3

膜融合实验

验证DBP对Spike介导的细胞膜融合的抑制效果

使用Cre-LoxP荧光素酶系统,将表达Spike的效应细胞与表达ACE2的靶细胞共培养,检测DBP的IC50。

4

假病毒感染实验

评估DBP对SARS-CoV-2假病毒感染的抑制活性及特异性

将SARS-CoV-2假病毒或VSVΔG/G假病毒与DBP预孵育,然后感染ACE2-293T细胞,检测荧光素酶活性。

5

机制研究

阐明DBP抑制Spike-ACE2相互作用的机制

SPR分析DBP与Spike三聚体及ACE2的结合亲和力;ELISA预孵育实验确定作用靶点;ACE2酶活检测排除对ACE2活性的影响。

6

广谱性验证

检测DBP对不同SARS-CoV-2变体Spike介导膜融合的抑制效果

使用WT、Delta和Omicron XBB.1.5 Spike蛋白进行膜融合实验,计算IC50。

7

关键残基验证

确认Tyr453和Tyr495是否为DBP结合的关键残基

通过定点突变(Y453G/Y495G)构建突变Spike,进行膜融合实验比较抑制效果。

8

结构优化探索

初步探索DBP衍生物的结构-活性关系

选取结构优化的DBP衍生物进行膜融合抑制实验,比较抑制率。

研究方法

按研究目的归类文中使用的方法,便于定位所需技术。

产品清单

实验环节名称品牌货号
AutoDock VinaAutoDock1.2.0
OpenBabel----
SARS-CoV-2 Spike-ACE2相互作用抑制剂筛选试剂盒Cayman502050
ACE2抑制剂筛选试剂盒BeyotimeP0320S
293T细胞系procellCL-0005
ACE2-293T细胞系MEISENCTCCCTCC-009-091
DMEM培养基----
胎牛血清----
NB转染试剂bioscien--
pLV-Spike-C-GFPSpark质粒sino biologicalVG40589-ACGLN
NL4-3-mCherry-Luciferase质粒HedgehogBio--
pMD2.G质粒HedgehogBio--
荧光素酶检测系统PromegaE4030
邻苯二甲酸二丁酯MedChemExpressHY-Y0304
广藿香醇MedChemExpressHY-N0207
石竹烯氧化物MedChemExpressHY-N3544
β-石竹烯MedChemExpressHY-N1415
α-石竹烯MedChemExpressHY-N6968
雪松醇MedChemExpressHY-N2071
红没药醇MedChemExpressHY-121222
橙花叔醇MedChemExpressHY-N1944
广藿香酮MedChemExpressHY-N1416
香柠檬烯weikeqibiotechWKQ-0007133
聚凝胺GLPBIO--
细胞计数试剂盒-8GLPBIOGK10001
Hoechst 33342SolarbioC0021
SARS-CoV-2 Spike三聚体蛋白sino biological40589-V08H4
ACE2蛋白sino biological10108-H08H
重组抗ACE2抗体sino biological10108-R003
SARS-CoV-2 Spike抗体sino biological40592-T62
KOD PLUS neo高保真聚合酶TOYOBO--
DH5α感受态大肠杆菌AlpaLifeBioKTSMCC600
质粒小提试剂盒AxyPrepAP-MN-P-250
Nanodrop分光光度计Thermo--
PyMOL--3.0.0
HDOCK服务器----
GraphPad PrismGraphPad8.0
IBM SPSS StatisticsIBM24.0

关键环节

汇总复现实验时建议重点确认的条件及原文阅读提示。

环节核对要点
虚拟筛选
化合物数量、蛋白结构PDB ID、对接软件及参数
阅读提示:Methods 4.3 (Virtual screening)
细胞活力检测
细胞密度、药物浓度范围、孵育时间、CCK8试剂、检测波长
阅读提示:Methods 4.4 (Cytotoxicity assay) 及图2B-D
ELISA抑制试验
化合物浓度范围、ACE2-His-HRP浓度、孵育条件、检测波长
阅读提示:Methods 4.5 (Enzyme-linked immunosorbent assay) 及图2A
膜融合实验
细胞共培养比例、DBP浓度、孵育时间、荧光素酶检测方法
阅读提示:Methods 4.7 (Cell-cell membrane fusion assay) 及图3A
假病毒感染实验
假病毒用量、DBP浓度、孵育时间、感染时间、Polybrene浓度
阅读提示:Methods 4.8 (SARS-CoV-2 PsV entry inhibition assay) 及图3D
SPR检测
芯片类型、偶联蛋白浓度、DBP浓度梯度、流速、结合和解离时间
阅读提示:Methods 4.9 (Surface plasmon resonance assay) 及图5
定点突变
突变位点Y453G/Y495G、载体、引物、聚合酶、测序验证
阅读提示:Methods 4.11 (Site-directed mutagenesis of Spike plasmids) 及图8