Single cell phototransfection of mRNAs encoding SARS-CoV2 spike and nucleocapsid into human astrocytes results in RNA dependent translation interference

Hyun-Bum Kim, Quentin Brosseau, Julia Radzio, Jinhui Wang, Hiromi Muramatsu, Da Kuang, M. S. Grady, H. Isaac Chen, John A. Wolf, A. V. Ulyanova, Tamas Bartfai, Junhyong Kim, N. Pardi, J. Sul, Paulo Arratia, James Eberwine, Kuo-Ching Mei, Po-Yu Chou, Grady MS Kuang D, HI Chen
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Abstract

Multi-RNA co-transfection is starting to be employed to stimulate immune responses to SARS-CoV-2 viral infection. While there are good reasons to utilize such an approach, there is little background on whether there are synergistic RNA-dependent cellular effects. To address this issue, we use transcriptome-induced phenotype remodeling (TIPeR) via phototransfection to assess whether mRNAs encoding the Spike and Nucleocapsid proteins of SARS-CoV-2 virus into single human astrocytes (an endogenous human cell host for the virus) and mouse 3T3 cells (often used in high-throughput therapeutic screens) synergistically impact host cell biologies. An RNA concentration-dependent expression was observed where an increase of RNA by less than 2-fold results in reduced expression of each individual RNAs. Further, a dominant inhibitory effect of Nucleocapsid RNA upon Spike RNA translation was detected that is distinct from codon-mediated epistasis. Knowledge of the cellular consequences of multi-RNA transfection will aid in selecting RNA concentrations that will maximize antigen presentation on host cell surface with the goal of eliciting a robust immune response. Further, application of this single cell stoichiometrically tunable RNA functional genomics approach to the study of SARS-CoV-2 biology promises to provide details of the cellular sequalae that arise upon infection in anticipation of providing novel targets for inhibition of viral replication and propagation for therapeutic intervention.
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将编码 SARS-CoV2 穗状病毒和核头状病毒的 mRNA 单细胞光转染到人类星形胶质细胞中可导致 RNA 依赖性翻译干扰
多 RNA 协同转染已开始用于刺激对 SARS-CoV-2 病毒感染的免疫反应。虽然有充分的理由使用这种方法,但关于 RNA 依赖性细胞效应是否存在协同作用的背景资料却很少。为了解决这个问题,我们通过光转染使用转录组诱导表型重塑(TIPeR)来评估将编码 SARS-CoV-2 病毒尖峰蛋白和核壳蛋白的 mRNA 植入单个人类星形胶质细胞(病毒的内源性人类细胞宿主)和小鼠 3T3 细胞(常用于高通量治疗筛选)是否会协同影响宿主细胞的生物学特性。观察到 RNA 浓度依赖性表达,RNA 增加少于 2 倍就会导致每个 RNA 的表达减少。此外,还发现核壳 RNA 对 Spike RNA 翻译有明显的抑制作用,这与密码子介导的外显作用不同。了解多 RNA 转染对细胞的影响有助于选择 RNA 的浓度,使抗原在宿主细胞表面的表达最大化,从而激发强大的免疫反应。此外,将这种单细胞化学计量可调 RNA 功能基因组学方法应用于 SARS-CoV-2 生物学研究,有望提供感染后产生的细胞后果的详细信息,从而为抑制病毒复制和传播提供新的治疗干预目标。
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