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细胞表面糖胺聚糖参与诃子酸和石榴皮苷对柯萨奇病毒A16感染的抗病毒活性。

Involvement of cell surface glycosaminoglycans in chebulagic acid's and punicalagin's antiviral activities against Coxsackievirus A16 infection.

作者信息

Liu Ching-Hsuan, Kuo Yu-Ting, Lin Chien-Ju, Lin Liang-Tzung

机构信息

Department of Microbiology and Immunology, School of Medicine, College of Medicine, Taipei Medical University, Taipei 110, Taiwan; Department of Microbiology & Immunology, Dalhousie University, Halifax, Nova Scotia B3H 4R2, Canada.

Department of Medical Imaging, Chi Mei Medical Center, Tainan 710, Taiwan.

出版信息

Phytomedicine. 2023 Nov;120:155047. doi: 10.1016/j.phymed.2023.155047. Epub 2023 Aug 25.

Abstract

BACKGROUND

Coxsackievirus A16 (CVA16) is responsible for several recent outbreaks of Hand, Foot, and Mouth Disease in the Asia-Pacific region, and there are currently no vaccines or specific treatments available. We have previously identified two tannins, chebulagic acid (CHLA) and punicalagin (PUG), as efficient entry inhibitors against multiple viruses known to engage cell surface glycosaminoglycans (GAGs). Interestingly, these two phytochemicals could also block enterovirus infection by directly inactivating CVA16 virions, which were recently reported to utilize GAGs to mediate its entry.

PURPOSE

The aim of this study is to evaluate the involvement of GAGs in the anti-CVA16 activities of CHLA and PUG.

METHODS

To explore a potential mechanistic link, the role of GAGs in promoting CVA16 entry was first confirmed by treating human rhabdomyosarcoma (RD) cells with soluble heparin or GAG lyases including heparinase and chondroitinase. We then performed a combination treatment of CHLA or PUG with the GAG interaction inhibitors to assess whether CHLA's and PUG's anti-CVA16 activities were related to GAG competition. Molecular docking and surface plasmon resonance (SPR) were conducted to analyze the interactions between CHLA, PUG, and CVA16 capsid. Lastly, CRISPR/Cas9 knockout (KO) of the Exostosin glycosyltransferase 1 (EXT1) gene, which encodes a transmembrane glycosyltransferase involved in heparan sulfate biosynthesis, was used to validate the importance of GAGs in CHLA's and PUG's antiviral effects.

RESULTS

Intriguingly, combining GAG inhibition via heparin/GAG lyases treatments with CHLA and PUG revealed that their inhibitory activities against CVA16 infection were overlapping. Further molecular docking analysis indicated that the predicted binding sites of CHLA and PUG on the CVA16 capsid are in proximity to the putative residues recognized for GAG interaction, thus pointing to potential interference with the CVA16-GAG association. SPR analysis also confirmed the direct binding of CHLA and PUG to CVA16 capsid. Finally, RD cells with EXT1 KO decreased CHLA's and PUG's antiviral effect on CVA16 infection.

CONCLUSION

Altogether, our results suggest that CHLA and PUG bind to CVA16 capsid and prevent the virus' interaction with heparan sulfate and chondroitin sulfate for its entry. This study provides mechanistic insight into the antiviral activity of CHLA and PUG against CVA16, which may be helpful for the development of antiviral strategies against the enterovirus.

摘要

背景

柯萨奇病毒A16(CVA16)是亚太地区近期几起手足口病疫情的病原体,目前尚无可用的疫苗或特效治疗方法。我们之前已鉴定出两种单宁酸,诃子次酸(CHLA)和石榴皮苷(PUG),它们是针对多种已知可与细胞表面糖胺聚糖(GAGs)结合的病毒的有效进入抑制剂。有趣的是,这两种植物化学物质还可通过直接使CVA16病毒粒子失活来阻断肠道病毒感染,最近有报道称CVA16利用GAGs介导其进入。

目的

本研究旨在评估GAGs在CHLA和PUG抗CVA16活性中的作用。

方法

为探究潜在的机制联系,首先通过用可溶性肝素或包括肝素酶和软骨素酶在内的GAG裂解酶处理人横纹肌肉瘤(RD)细胞,证实了GAGs在促进CVA16进入中的作用。然后我们将CHLA或PUG与GAG相互作用抑制剂进行联合处理,以评估CHLA和PUG的抗CVA16活性是否与GAG竞争有关。进行分子对接和表面等离子体共振(SPR)分析CHLA、PUG与CVA16衣壳之间的相互作用。最后,使用编码参与硫酸乙酰肝素生物合成的跨膜糖基转移酶的外切糖苷酶糖基转移酶1(EXT1)基因的CRISPR/Cas9敲除(KO)来验证GAGs在CHLA和PUG抗病毒作用中的重要性。

结果

有趣的是,将通过肝素/GAG裂解酶处理进行的GAG抑制与CHLA和PUG联合使用发现,它们对CVA16感染的抑制活性存在重叠。进一步的分子对接分析表明,CHLA和PUG在CVA16衣壳上的预测结合位点靠近被认为与GAG相互作用的假定残基,从而表明可能干扰CVA16与GAG的结合。SPR分析也证实了CHLA和PUG与CVA16衣壳的直接结合。最后,EXT1基因敲除的RD细胞降低了CHLA和PUG对CVA16感染的抗病毒作用。

结论

总之,我们的结果表明CHLA和PUG与CVA16衣壳结合,并阻止病毒与硫酸乙酰肝素和硫酸软骨素相互作用以实现其进入。本研究为CHLA和PUG对CVA16的抗病毒活性提供了机制见解,这可能有助于开发针对肠道病毒的抗病毒策略。

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