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Interplay of RNA structure, protein and miRNA binding in early replication events of hepatitis C virus

Interplay of RNA structure, protein and miRNA binding in early replication events of hepatitis C virus
RNA 结构、蛋白质和 miRNA 结合在丙型肝炎病毒早期复制事件中的相互作用
批准号:
G1100139/1
负责人:
David Evans
金额:
$59.91万
依托单位:
依托单位国家:
英国
项目类别:
Research Grant
财政年份:
2012
资助国家:
英国
项目状态:
已结题
起止时间:
2012 至 --

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中文摘要
翻译
丙型肝炎病毒是一种重要的病毒病原体,约占全球人口的3%。丙型肝炎病毒感染会导致慢性肝病、肝硬变和肝细胞癌。目前的抗病毒疗法效果不佳,开发预防感染的疫苗的前景也很渺茫。开发新的抗病毒疗法面临两个重大挑战;首先,我们对病毒如何控制其生命周期中的关键事件,特别是在病毒水平较低的感染早期阶段,只有不完全的了解。其次,病毒复制会产生大量变异的子代病毒,其中包括对抗病毒药物具有抗药性的变异。我们已经确定了细胞蛋白和病毒核酸之间的一种新的相互作用。抑制这种相互作用?通过阻止蛋白质与病毒基因组结合?大大降低了病毒的复制能力。这是通过抑制生命周期中一个称为翻译的关键早期过程来实现的。这种抑制的结果是病毒产量减少。我们预测?基于我们自己的工作和别人的工作?结合蛋白以特定的构象稳定病毒基因组,破坏这种构象对病毒复制不利。为了更好地了解这一过程,我们建议进行三组实验:1)我们将测量病毒基因组结构的变化,以确认它是否经历了我们预测的结构变化;2)我们将鉴定蛋白质并开发试剂,使我们能够确定它如何发挥作用?例如,我们将测试它是否只存在于肝细胞中,我们将调查它是否在未感染和病毒感染的细胞中发生变化(我们预测会),无论是在数量、位置还是通过化学修饰。3)我们将进行功能研究,以探讨该蛋白在病毒生命周期中的重要性。例如,我们将耗尽细胞中的蛋白质,看看这是否会减少病毒的产量,特别是是否会减少病毒生命周期中的关键翻译事件。所有病毒都是寄生虫,它们会颠覆细胞过程,有利于自身的复制。如果,正如我们预测的那样,丙型肝炎病毒的基因组结构通过偷窃而以某种方式稳定下来?从肝细胞中提取一种细胞蛋白,然后抑制这一过程,可能会开发出新的、有效的抗病毒疗法。
英文摘要
Hepatitis C virus (HCV) is an important viral pathogen infecting approximately 3% of the global population. HCV infection results in chronic liver disease, cirrhosis and hepatocellular carcinoma. Current anti-viral therapies are poorly effective and there is little prospect of developing a vaccine to prevent infection. There are two significant challenges to the development of new anti-viral therapies; firstly we have only an incomplete understanding of how the virus controls critical events in its life cycle, particularly during the early stages of infection when there are only low viral levels. Secondly, virus replication generates large populations of variant progeny viruses, these include variants resistant to anti-viral drugs. We have identified a novel interaction between a cellular protein and the nucleic acid of the virus. Inhibition of this interaction ? by preventing the protein from binding to the virus genome ? significantly reduces the ability of the virus to replicate. This is achieved by inhibiting a key early process in the life cycle termed translation. The result of this inhibition is that the viral yield is reduced. We predict ? based on our own work and that of others ? that the binding protein stabilizes the virus genome in a particular conformation and that disrupting this conformation is detrimental for virus replication. To understand this process better we propose to conduct three sets of experiments; 1) we will measure changes in the structure of the virus genome to confirm whether it undergoes the structural changes we predict, 2) we will identify the protein and develop reagents that will allow us to determine how it functions ? for example, we will test if it only present in liver cells, we will investigate whether it changes in uninfected and virus infected cells (we predict it does), either in quantity, location or by chemical modification. 3) we will conduct functional studies to investigate the importance of this protein to the virus life cycle. For example, we will deplete the protein from cells and see if this reduces the yield of virus and, specifically, whether it reduces the key translation events in the virus life cycle. All viruses are parasites that subvert cellular processes to favour their own replication. If, as we predict, the genomic structure of HCV is somehow stabilized by ?stealing? a cellular protein from liver cells, then inhibition of this process may allow the development of novel, effective anti-viral therapies.
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