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本文引用的文献

1
Isolation and preliminary characterization of temperature-sensitive mutants of vaccinia virus.痘苗病毒温度敏感突变体的分离与初步鉴定
Virology. 1981 Aug;113(1):224-41. doi: 10.1016/0042-6822(81)90150-1.
2
Recombinant genomes which express chloramphenicol acetyltransferase in mammalian cells.在哺乳动物细胞中表达氯霉素乙酰转移酶的重组基因组。
Mol Cell Biol. 1982 Sep;2(9):1044-51. doi: 10.1128/mcb.2.9.1044-1051.1982.
3
Cellular differences in the molecular mechanisms of vaccinia virus host range restriction.痘苗病毒宿主范围限制分子机制中的细胞差异
J Gen Virol. 1980 Apr;47(2):485-8. doi: 10.1099/0022-1317-47-2-485.
4
Structure of the FMDV translation initiation site and of the structural proteins.口蹄疫病毒翻译起始位点及结构蛋白的结构
Nucleic Acids Res. 1983 Nov 25;11(22):7873-85. doi: 10.1093/nar/11.22.7873.
5
Transcriptional control signals of a eukaryotic protein-coding gene.真核生物蛋白质编码基因的转录控制信号
Science. 1982 Jul 23;217(4557):316-24. doi: 10.1126/science.6283634.
6
Nucleotide sequence heterogeneity of the RNA from a natural population of foot-and-mouth-disease virus.口蹄疫病毒自然群体中RNA的核苷酸序列异质性
Gene. 1980 Nov;11(3-4):333-46. doi: 10.1016/0378-1119(80)90073-6.
7
Firefly luciferase gene: structure and expression in mammalian cells.萤火虫荧光素酶基因:在哺乳动物细胞中的结构与表达
Mol Cell Biol. 1987 Feb;7(2):725-37. doi: 10.1128/mcb.7.2.725-737.1987.
8
Eukaryotic transient-expression system based on recombinant vaccinia virus that synthesizes bacteriophage T7 RNA polymerase.基于合成噬菌体T7 RNA聚合酶的重组痘苗病毒的真核瞬时表达系统。
Proc Natl Acad Sci U S A. 1986 Nov;83(21):8122-6. doi: 10.1073/pnas.83.21.8122.
9
Characterization of foot-and-mouth disease virus gene products with antisera against bacterially synthesized fusion proteins.用针对细菌合成融合蛋白的抗血清对口蹄疫病毒基因产物进行特性鉴定。
J Virol. 1986 Mar;57(3):983-91. doi: 10.1128/JVI.57.3.983-991.1986.
10
Establishment of cell lines persistently infected with foot-and-mouth disease virus.持续感染口蹄疫病毒的细胞系的建立。
Virology. 1985 Aug;145(1):24-35. doi: 10.1016/0042-6822(85)90198-9.

口蹄疫病毒内部核糖体进入位点的单核苷酸替换导致体内不依赖帽子结构的翻译增强。

A single nucleotide substitution in the internal ribosome entry site of foot-and-mouth disease virus leads to enhanced cap-independent translation in vivo.

作者信息

Martínez-Salas E, Sáiz J C, Dávila M, Belsham G J, Domingo E

机构信息

Centro de Biología Molecular Severo Ochoa, Universidad Autónoma de Madrid, Cantoblanco, Spain.

出版信息

J Virol. 1993 Jul;67(7):3748-55. doi: 10.1128/JVI.67.7.3748-3755.1993.

DOI:10.1128/JVI.67.7.3748-3755.1993
PMID:8389904
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC237738/
Abstract

Mutants of foot-and-mouth disease virus (FMDV) with altered biological properties can be selected during the course of persistent infection of BHK-21 cells with FMDV C-S8c1 (J. C. de la Torre, E. Martínez-Salas, J. Díez, A. Villaverde, F. Gebauer, E. Rocha, M. Dávila, and E. Domingo, J. Virol. 62:2050-2058, 1988). Two nucleotide substitutions, U to C at position -376 and A to G at position -15, (counting as +1 the A of the first functional AUG), were fixed within the internal ribosome entry site (IRES) of R100, the virus rescued after 100 passages of the carrier BHK-21 cells. IRES-directed cap-independent protein synthesis was quantitated by using bicistronic constructs of the form chloramphenicol acetyltransferase gene-IRES-luciferase gene. The IRES from R100 was 1.5- to 5-fold more active than that of C-S8c1 in directing cap-independent luciferase synthesis. This enhanced translational activity was observed when the RNAs were transcribed either in the nucleus or in the cytoplasm by a weak or a strong promoter, respectively. C-S8c1 and R100 IRES elements were functional in both FMDV-sensitive and FMDV-resistant cells (including persistently infected R cells), indicating that factors mediating cap-independent protein synthesis are not limited in any of the analyzed cell lines. Constructs in which each of the two mutations in the R100 IRES were analyzed separately indicate that the transition at position -376 is responsible for the enhanced activity of the R100 IRES. By estimating the effect that an increase in the initial translation efficiency may have on subsequent RNA replication steps, we suggest that the modifications in the IRES elements can account for the previously described hypervirulence of FMDV R100 for BHK-21 cells. The results show that a single point mutation in an IRES element of a picornavirus can cause an increase in translation efficiency.

摘要

在用口蹄疫病毒C-S8c1持续感染BHK-21细胞的过程中,可以筛选出生物学特性发生改变的口蹄疫病毒(FMDV)突变体(J.C.德拉托雷、E.马丁内斯-萨拉斯、J.迪埃斯、A.比利亚韦德、F.格鲍尔、E.罗查、M.达维拉和E.多明戈,《病毒学杂志》62:2050 - 2058,1988年)。在R100(载体BHK-21细胞传代100次后拯救出的病毒)的内部核糖体进入位点(IRES)内固定了两个核苷酸替换,即第-376位的U替换为C以及第-15位的A替换为G(将第一个功能性AUG的A计为+1)。通过使用氯霉素乙酰转移酶基因-IRES-荧光素酶基因形式的双顺反子构建体对IRES指导的不依赖帽的蛋白质合成进行定量。R100的IRES在指导不依赖帽的荧光素酶合成方面比C-S8c1的IRES活性高1.5至5倍。当RNA分别由弱启动子或强启动子在细胞核或细胞质中转录时,均观察到这种增强的翻译活性。C-S8c1和R100的IRES元件在对FMDV敏感和对FMDV耐药的细胞(包括持续感染的R细胞)中均有功能,这表明介导不依赖帽的蛋白质合成的因子在任何一种分析的细胞系中都不受限制。对R100 IRES中的两个突变分别进行分析的构建体表明,第-376位的转换导致了R100 IRES活性增强。通过估计初始翻译效率的提高可能对后续RNA复制步骤产生的影响,我们认为IRES元件中的修饰可以解释先前描述的FMDV R100对BHK-21细胞的超强毒力。结果表明,微小RNA病毒IRES元件中的单个点突变可导致翻译效率提高。