开发基于质粒的新型真核生物模型以研究克里米亚-刚果出血热病毒

Nesibe Selma GÜLER ÇETİN, Özlem Bakangi̇l, Merve Kalkan Yazıcı, Sercan Keski̇n, Mehmet Ziya Doymaz
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摘要

目的:克里米亚-刚果出血热(CCHF克里米亚-刚果出血热(CCHF)是一种严重的蜱媒病毒性疾病,由克里米亚-刚果出血热病毒(CCHFV)引起。克里米亚-刚果出血热在全球的蔓延和高死亡率凸显了研究和开发有效治疗方法和疫苗的迫切需要。然而,高传播风险和对高封闭设施的要求阻碍了涉及活病毒的研究。在本研究中,我们采用基于质粒的病毒样颗粒(VLP)系统和迷你基因组模型来研究 CCHFV 的生物学和免疫学,旨在应对这些挑战。研究方法将编码CCHFV结构基因的质粒转染到Huh-7细胞中。使用荧光成像、免疫学和分子方法确认病毒蛋白的表达。开发了一种微型基因组系统,无需T7聚合酶、T7表达细胞系或病毒核糖核蛋白复合物,可在无辅助病毒或使用质粒反式转染的情况下进行自主病毒复制。结果荧光显微镜显示,成功生产出了不同亚细胞定位的 NP-EGFP 和 GC-EGFP 蛋白。Western 印迹分析表明,细胞裂解液和上清液中存在前 Gc、Gc、前 Gn、Gn 和 Np 蛋白。酶联免疫吸附分析表明,转染 Np
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Development of a Novel Plasmid-based Eukaryotic Model to Investigate Crimean-Congo Hemorrhagic Fever Virus
Objective: Crimean-Congo Hemorrhagic Fever (CCHF) is a severe tick-borne viral disease, caused by the Crimean-Congo Hemorrhagic Fever virus (CCHFV). The global expansion of CCHF and high mortality rates underline the critical need for research and development of effective treatments and vaccines. However, the high risk of transmission and requirement for high-containment facilities hinder investigations involving live virus. In this study, we aimed to address these challenges by employing a plasmid-based virus-like particle (VLP) system and a minigenome model to investigate the biology and immunology of CCHFV. Methods: The plasmids encoding CCHFV structural genes of CCHFV were transfected into Huh-7 cells. Viral protein expression was confirmed using fluorescence imaging, immunological and molecular methods. A minigenome system was developed, eliminating the need for T7 polymerase, T7-expressing cellular lines, or viral ribonuclear protein complexes, allowing autonomous virus replication without a helper virus or transfections using plasmids in trans. Results: Fluorescence microscopy showed successful production of NP-EGFP and GC-EGFP proteins with various subcellular localizations. Western blot analysis demonstrated the presence of pre-Gc, Gc, pre-Gn, Gn, and Np proteins in cell lysates and supernatants. ELISA analysis suggested that transfection of Np
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