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Systematic Analysis of Enhancer and Critical cis-Acting RNA Elements in the Protein-Encoding Region of the Hepatitis C Virus Genome

机译:丙型肝炎病毒基因组蛋白质编码区中增强子和关键的顺式作用RNA元件的系统分析

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摘要

Hepatitis C virus (HCV) causes chronic hepatitis, cirrhosis, and liver cancer. cis-acting RNA elements of the HCV genome are critical for translation initiation and replication of the viral genome. We hypothesized that the coding regions of nonstructural proteins harbor enhancer and essential cis-acting replication elements (CRE). In order to experimentally identify new cis RNA elements, we utilized an unbiased approach to introduce synonymous substitutions. The HCV genome coding for nonstructural proteins (nucleotide positions 3872 to 9097) was divided into 17 contiguous segments. The wobble nucleotide positions of each codon were replaced, resulting in 33% to 41% nucleotide changes. The HCV genome containing one of each of 17 mutant segments (S1 to S17) was tested for genome replication and infectivity. We observed that silent mutations in segment 13 (S13) (nucleotides [nt] 7457 to 7786), S14 (nt 7787 to 8113), S15 (nt 8114 to 8440), S16 (nt 8441 to 8767), and S17 (nt 8768 to 9097) resulted in impaired genome replication, suggesting CRE structures are enriched in the NS5B region. Subsequent high-resolution mutational analysis of NS5B (nt 7787 to 9289) using approximately 51-nucleotide contiguous subsegment mutant viruses having synonymous mutations revealed that subsegments SS8195-8245, SS8654-8704, and SS9011-9061 were required for efficient viral growth, suggesting that these regions act as enhancer elements. Covariant nucleotide substitution analysis of a stem-loop, JFH-SL9098, revealed the formation of an extended stem structure, which we designated JFH-SL9074. We have identified new enhancer RNA elements and an extended stem-loop in the NS5B coding region. Genetic modification of enhancer RNA elements can be utilized for designing attenuated HCV vaccine candidates.
机译:丙型肝炎病毒(HCV)导致慢性肝炎,肝硬化和肝癌。 HCV基因组的顺式作用RNA元件对于病毒基因组的翻译起始和复制至关重要。我们假设非结构蛋白的编码区包含增强子和必需的顺式作用复制元件(CRE)。为了通过实验鉴定新的顺式RNA元件,我们利用了一种无偏见的方法来引入同义替换。编码非结构蛋白(核苷酸位置3872至9097)的HCV基因组被分为17个连续节段。每个密码子的摆动核苷酸位置被替换,导致33%至41%的核苷酸变化。测试了包含17个突变片段(S1至S17)中每个片段的HCV基因组的基因组复制和感染性。我们观察到片段13(S13)(核苷酸[nt] 7457至7786),S14(nt 7787至8113),S15(nt 8114至8440),S16(nt 8441至8767)和S17(nt 8768)的沉默突变到9097)导致基因组复制受损,表明CRE结构在NS5B区富集。随后使用具有同义突变的约51个核苷酸的连续亚节段突变病毒对NS5B(nt 7787至9289)进行高分辨率突变分析,结果表明有效病毒生长需要亚段SS8195-8245,SS8654-8704和SS9011-9061。这些区域充当增强子元件。对茎环JFH-SL9098的协变核苷酸取代分析揭示了延伸的茎结构的形成,我们将其命名为JFH-SL9074。我们在NS5B编码区域中发现了新的增强子RNA元件和一个延伸的茎环。增强子RNA元件的遗传修饰可用于设计减毒的HCV疫苗候选物。

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