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PDZ2 缀合的 PLGA 纳米颗粒是抗击 SARS-CoV-2 的小英雄。

PDZ2-conjugated-PLGA nanoparticles are tiny heroes in the battle against SARS-CoV-2.

机构信息

Dipartimento di Scienze Biotecnologiche di Base, Cliniche Intensivologiche e Perioperatorie, Università Cattolica del Sacro Cuore, Largo F. Vito 1, 00168, Rome, Italy.

Dipartimento di Scienze Biochimiche "A. Rossi Fanelli", Laboratory Affiliated to Istituto Pasteur Italia - Fondazione Cenci Bolognetti, Sapienza Università di Roma, P.le A. Moro 5, 00185, Rome, Italy.

出版信息

Sci Rep. 2024 Jun 6;14(1):13059. doi: 10.1038/s41598-024-63239-w.

Abstract

The COVID-19 pandemic caused by SARS-CoV-2 has highlighted the urgent need for innovative antiviral strategies to fight viral infections. Although a substantial part of the overall effort has been directed at the Spike protein to create an effective global vaccination strategy, other proteins have also been examined and identified as possible therapeutic targets. Among them, although initially underestimated, there is the SARS-CoV-2 E-protein, which turned out to be a key factor in viral pathogenesis due to its role in virus budding, assembly and spreading. The C-terminus of E-protein contains a PDZ-binding motif (PBM) that plays a key role in SARS-CoV-2 virulence as it is recognized and bound by the PDZ2 domain of the human tight junction protein ZO-1. The binding between the PDZ2 domain of ZO-1 and the C-terminal portion of SARS-CoV-2 E-protein has been extensively characterized. Our results prompted us to develop a possible adjuvant therapeutic strategy aimed at slowing down or inhibiting virus-mediated pathogenesis. Such innovation consists in the design and synthesis of externally PDZ2-ZO1 functionalized PLGA-based nanoparticles to be used as intracellular decoy. Contrary to conventional strategies, this innovative approach aims to capitalize on the E protein-PDZ2 interaction to prevent virus assembly and replication. In fact, the conjugation of the PDZ2 domain to polymeric nanoparticles increases the affinity toward the E protein effectively creating a "molecular sponge" able to sequester E proteins within the intracellular environment of infected cells. Our in vitro studies on selected cellular models, show that these nanodevices significantly reduce SARS-CoV-2-mediated virulence, emphasizing the importance of exploiting viral-host interactions for therapeutic benefit.

摘要

由 SARS-CoV-2 引起的 COVID-19 大流行凸显了急需创新的抗病毒策略来对抗病毒感染。尽管大部分努力都集中在 Spike 蛋白上,以制定有效的全球疫苗接种策略,但其他蛋白也已被研究并确定为可能的治疗靶点。其中,虽然最初被低估,但 SARS-CoV-2 的 E 蛋白是一个关键因素,因为它在病毒出芽、组装和传播中发挥作用,所以它在病毒发病机制中起着关键作用。E 蛋白的 C 端含有一个 PDZ 结合基序(PBM),它通过与人类紧密连接蛋白 ZO-1 的 PDZ2 结构域的识别和结合,在 SARS-CoV-2 的毒力中发挥关键作用。ZO-1 的 PDZ2 结构域与 SARS-CoV-2 E 蛋白 C 端部分之间的结合已得到广泛研究。我们的研究结果促使我们开发了一种可能的辅助治疗策略,旨在减缓或抑制病毒介导的发病机制。这种创新包括设计和合成外部 PDZ2-ZO1 功能化的 PLGA 纳米颗粒,用作细胞内诱饵。与传统策略相反,这种创新方法旨在利用 E 蛋白-PDZ2 相互作用来阻止病毒组装和复制。事实上,PDZ2 结构域与聚合物纳米颗粒的缀合增加了对 E 蛋白的亲和力,有效地创建了一种“分子海绵”,能够将 E 蛋白隔离在感染细胞的细胞内环境中。我们在选定的细胞模型上的体外研究表明,这些纳米器件可显著降低 SARS-CoV-2 介导的毒力,强调了利用病毒-宿主相互作用获得治疗益处的重要性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f792/11156922/623a38bb3894/41598_2024_63239_Fig1_HTML.jpg

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