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Virology. 1990 Aug;177(2):634-45. doi: 10.1016/0042-6822(90)90529-z.
2
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Analysis of murine hepatitis virus strain A59 temperature-sensitive mutant TS-LA6 suggests that nsp10 plays a critical role in polyprotein processing.对小鼠肝炎病毒A59株温度敏感突变体TS-LA6的分析表明,非结构蛋白10在多聚蛋白加工过程中起关键作用。
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Functional and genetic analysis of coronavirus replicase-transcriptase proteins.冠状病毒复制酶-转录酶蛋白的功能与遗传分析
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本文引用的文献

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A Sindbis virus mutant temperature-sensitive in the regulation of minus-strand RNA synthesis.一种在负链RNA合成调控方面温度敏感的辛德毕斯病毒突变体。
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The virus-specific intracellular RNA species of two murine coronaviruses: MHV-a59 and MHV-JHM.两种鼠冠状病毒MHV-a59和MHV-JHM的病毒特异性细胞内RNA种类。
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Specific Sindbis virus-coded function for minus-strand RNA synthesis.辛德毕斯病毒编码的负链RNA合成的特定功能。
J Virol. 1981 Aug;39(2):348-58. doi: 10.1128/JVI.39.2.348-358.1981.
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Characterization of leader RNA sequences on the virion and mRNAs of mouse hepatitis virus, a cytoplasmic RNA virus.小鼠肝炎病毒(一种细胞质RNA病毒)病毒粒子和信使核糖核酸上前导RNA序列的特征分析
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Sequence and topology of a model intracellular membrane protein, E1 glycoprotein, from a coronavirus.一种来自冠状病毒的细胞内膜蛋白模型E1糖蛋白的序列与拓扑结构
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Further characterization of mouse hepatitis virus RNA-dependent RNA polymerases.小鼠肝炎病毒RNA依赖的RNA聚合酶的进一步特性分析。
Virology. 1984 Feb;133(1):197-201. doi: 10.1016/0042-6822(84)90439-2.
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Characterization of replicative intermediate RNA of mouse hepatitis virus: presence of leader RNA sequences on nascent chains.小鼠肝炎病毒复制中间体RNA的特性:新生链上存在前导RNA序列。
J Virol. 1983 Dec;48(3):633-40. doi: 10.1128/JVI.48.3.633-640.1983.
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Coronavirus JHM: nucleotide sequence of the mRNA that encodes nucleocapsid protein.冠状病毒JHM:编码核衣壳蛋白的mRNA的核苷酸序列。
Nucleic Acids Res. 1983 Aug 11;11(15):5045-54. doi: 10.1093/nar/11.15.5045.
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Presence of leader sequences in the mRNA of mouse hepatitis virus.小鼠肝炎病毒mRNA中前导序列的存在。
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10
Temperature-sensitive mutants of mouse hepatitis virus strain A59: isolation, characterization and neuropathogenic properties.小鼠肝炎病毒A59株温度敏感突变体:分离、特性及神经致病特性
Virology. 1983 Mar;125(2):393-402. doi: 10.1016/0042-6822(83)90211-8.

小鼠肝炎病毒转录的遗传学:鉴定可能在正链和负链RNA合成中起作用的顺反子。

Genetics of mouse hepatitis virus transcription: identification of cistrons which may function in positive and negative strand RNA synthesis.

作者信息

Schaad M C, Stohlman S A, Egbert J, Lum K, Fu K, Wei T, Baric R S

机构信息

Department of Parasitology and Laboratory Practice, University of North Carolina, School of Public Health, Chapel Hill 27599-7400.

出版信息

Virology. 1990 Aug;177(2):634-45. doi: 10.1016/0042-6822(90)90529-z.

DOI:10.1016/0042-6822(90)90529-z
PMID:2164727
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC7131749/
Abstract

A panel of 26 temperature-sensitive mutants of MHV-A59 were selected by mutagenesis with either 5-fluorouracil or 5-azacytidine. Complementation analysis revealed the presence of one RNA+ and five RNA- complementation groups. None of the RNA- complementation groups transcribed detectable levels of positive- or negative-stranded RNA at the restrictive temperature. Temperature shift experiments after the onset of mRNA synthesis revealed at least two classes of RNA- mutants. RNA- complementation groups A, B, D, and E were blocked in the ability to release infectious virus and transcribe mRNA and genome, while group C mutants continued to release infectious virus and transcribe both mRNA and genome. Temperature shift experiments at different times postinfection suggest that the group C mutants encode a function required early in viral transcription which affects the overall rate of positive strand synthesis. Analysis of steady state levels of negative strand RNA after the shift indicate that the group C mutants were probably blocked in the ability to synthesize additional minus strand RNA under conditions in which the group E mutants continued low levels of minus strand synthesis. These data suggest that at least four cistrons may be required for positive strand synthesis while the group C cistron functions during minus strand synthesis.

摘要

通过用5-氟尿嘧啶或5-氮杂胞苷诱变,筛选出一组26个MHV-A59温度敏感突变体。互补分析显示存在一个RNA +和五个RNA-互补组。在限制温度下,没有一个RNA-互补组转录出可检测水平的正链或负链RNA。mRNA合成开始后的温度转换实验揭示了至少两类RNA-突变体。RNA-互补组A、B、D和E在释放感染性病毒以及转录mRNA和基因组的能力方面受阻,而C组突变体继续释放感染性病毒并转录mRNA和基因组。感染后不同时间的温度转换实验表明,C组突变体编码病毒转录早期所需的一种功能,该功能影响正链合成的总体速率。转换后负链RNA稳态水平的分析表明,在E组突变体继续进行低水平负链合成的条件下,C组突变体可能在合成额外负链RNA的能力方面受阻。这些数据表明,正链合成可能至少需要四个顺反子,而C组顺反子在负链合成过程中起作用。