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核糖核酸酶P相关的外部引导序列对单纯疱疹病毒1型基因表达和复制的抑制作用。

Inhibition of herpes simplex virus 1 gene expression and replication by RNase P-associated external guide sequences.

作者信息

Liu Jin, Shao Luyao, Trang Phong, Yang Zhu, Reeves Michael, Sun Xu, Vu Gia-Phong, Wang Yu, Li Hongjian, Zheng Congyi, Lu Sangwei, Liu Fenyong

机构信息

State Key Laboratory of Virology, College of Life Sciences, Wuhan University, Wuhan, Hubei 430072, China.

School of Public Health, University of California, Berkeley, CA 94720, USA.

出版信息

Sci Rep. 2016 Jun 9;6:27068. doi: 10.1038/srep27068.

Abstract

An external guide sequence (EGS) is a RNA sequence which can interact with a target mRNA to form a tertiary structure like a pre-tRNA and recruit intracellular ribonuclease P (RNase P), a tRNA processing enzyme, to degrade target mRNA. Previously, an in vitro selection procedure has been used by us to engineer new EGSs that are more robust in inducing human RNase P to cleave their targeted mRNAs. In this study, we constructed EGSs from a variant to target the mRNA encoding herpes simplex virus 1 (HSV-1) major transcription regulator ICP4, which is essential for the expression of viral early and late genes and viral growth. The EGS variant induced human RNase P cleavage of ICP4 mRNA sequence 60 times better than the EGS generated from a natural pre-tRNA. A decrease of about 97% and 75% in the level of ICP4 gene expression and an inhibition of about 7,000- and 500-fold in viral growth were observed in HSV infected cells expressing the variant and the pre-tRNA-derived EGS, respectively. This study shows that engineered EGSs can inhibit HSV-1 gene expression and viral growth. Furthermore, these results demonstrate the potential for engineered EGS RNAs to be developed and used as anti-HSV therapeutics.

摘要

外部引导序列(EGS)是一种RNA序列,它可以与靶mRNA相互作用,形成类似前体tRNA的三级结构,并招募细胞内核糖核酸酶P(RNase P,一种tRNA加工酶)来降解靶mRNA。此前,我们已使用体外筛选程序来设计新的EGS,这些EGS在诱导人RNase P切割其靶向mRNA方面更具活性。在本研究中,我们构建了一种变体的EGS,以靶向编码单纯疱疹病毒1型(HSV-1)主要转录调节因子ICP4的mRNA,ICP4对病毒早期和晚期基因的表达以及病毒生长至关重要。该EGS变体诱导人RNase P切割ICP4 mRNA序列的能力比天然前体tRNA产生的EGS高60倍。在表达该变体和前体tRNA衍生EGS的HSV感染细胞中,分别观察到ICP4基因表达水平下降约97%和75%,病毒生长抑制约7000倍和500倍。本研究表明,工程化的EGS可以抑制HSV-1基因表达和病毒生长。此外,这些结果证明了工程化EGS RNA有开发并用作抗HSV治疗药物的潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1075/4899697/6a3e13d91604/srep27068-f1.jpg

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