National Center for Advancing Translational Sciences, Rockville, MD, USA.
Bristol-Myers Squibb, Lead Development and Optimization, High Content Screening, Princeton, NJ, USA.
Expert Opin Drug Discov. 2022 Mar;17(3):225-230. doi: 10.1080/17460441.2022.2005025. Epub 2021 Dec 2.
SARS-CoV-2 is a highly infectious and deadly coronavirus whose study requires the use of a biosafety level 3 (BSL-3) containment facility to investigate viral biology and pathogenesis, which limits the study of live virus and slows progress toward finding suitable treatments for infection. While vaccines from several companies have proven very effective in combating the virus, few treatments exist for those who do succumb to the viral-induced systemic disease called COVID-19.
This short review focuses on fluorescent quantum dot-based modeling of SARS-CoV-2. New BSL-2 viral models are essential for finding small molecules and biologics that may be effective in stopping viral infection, as well as treating already infected individuals. Nanoparticles are invaluable tools for biological research as they can be used to both model pathogens and serve as a platform for developing vaccines.
Visualizing viral activity with fluorescent quantum dots enables both biochemical and cell-based assays to detect virus-host receptor interactions, cellular activity after binding to the cell plasma membrane, screening for interventions using small-molecule drug repurposing, and testing of novel biologics. Quantum dots can also be used for diagnostic assays, vaccine development, and importantly, pan-antiviral drugs to address variants that may escape the immune response.
SARS-CoV-2 是一种高度传染性和致命性的冠状病毒,其研究需要使用生物安全级别 3(BSL-3)的隔离设施来研究病毒生物学和发病机制,这限制了对活病毒的研究,并减缓了寻找合适的感染治疗方法的进展。虽然几家公司的疫苗已被证明对对抗该病毒非常有效,但对于那些确实因称为 COVID-19 的病毒引起的全身性疾病而屈服的人,几乎没有治疗方法。
这篇简短的综述重点介绍了基于荧光量子点的 SARS-CoV-2 建模。新的 BSL-2 病毒模型对于寻找可能有效阻止病毒感染的小分子和生物制品以及治疗已感染个体至关重要。纳米颗粒是生物研究中非常有价值的工具,因为它们既可以用于模拟病原体,也可以作为开发疫苗的平台。
用荧光量子点可视化病毒活性,可以进行生化和基于细胞的测定,以检测病毒-宿主受体相互作用、与细胞膜结合后的细胞活性、使用小分子药物再利用进行干预的筛选以及新型生物制剂的测试。量子点还可用于诊断测定、疫苗开发,以及更重要的是,泛抗病毒药物,以应对可能逃避免疫反应的变体。