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Novel viral vectors utilizing intron splice-switching to activate genome rescue, expression and replication in targeted cells

机译:利用内含子剪接开关激活基因组在靶细胞中的抢救,表达和复制的新型病毒载体

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Background The outcome of virus infection depends from the precise coordination of viral gene expression and genome replication. The ability to control and regulate these processes is therefore important for analysis of infection process. Viruses are also useful tools in bio- and gene technology; they can efficiently kill cancer cells and trigger immune responses to tumors. However, the methods for constructing tissue- or cell-type specific viruses typically suffer from low target-cell specificity and a high risk of reversion. Therefore novel and universal methods of regulation of viral infection are also important for therapeutic application of virus-based systems. Methods Aberrantly spliced introns were introduced into crucial gene-expression units of adenovirus vector and alphavirus DNA/RNA layered vectors and their effects on the viral gene expression, replication and/or the release of infectious genomes were studied in cell culture. Transfection of the cells with splice-switching oligonucleotides was used to correct the introduced functional defect(s). Results It was demonstrated that viral gene expression, replication and/or the release of infectious genomes can be blocked by the introduction of aberrantly spliced introns. The insertion of such an intron into an adenovirus vector reduced the expression of the targeted gene more than fifty-fold. A similar insertion into an alphavirus DNA/RNA layered vector had a less dramatic effect; here, only the release of the infectious transcript was suppressed but not the subsequent replication and spread of the virus. However the insertion of two aberrantly spliced introns resulted in an over one hundred-fold reduction in the infectivity of the DNA/RNA layered vector. Furthermore, in both systems the observed effects could be reverted by the delivery of splice-switching oligonucleotide(s), which corrected the splicing defects. Conclusions Splice-switch technology, originally developed for genetic disease therapy, can also be used to control gene expression of viral vectors. This approach represents a novel, universal and powerful method for controlling gene expression, replication, viral spread and, by extension, virus-induced cytotoxic effects and can be used both for basic studies of virus infection and in virus-based gene- and anti-cancer therapy.
机译:背景技术病毒感染的结果取决于病毒基因表达和基因组复制的精确协调。因此,控制和调节这些过程的能力对于分析感染过程很重要。病毒也是生物和基因技术中的有用工具。它们可以有效杀死癌细胞并触发对肿瘤的免疫反应。然而,用于构建组织或细胞类型特异性病毒的方法通常具有靶细胞特异性低和逆转风险高的缺点。因此,新颖且通用的调节病毒感染的方法对于基于病毒的系统的治疗应用也很重要。方法将异常剪接的内含子引入腺病毒载体和α病毒DNA / RNA分层载体的关键基因表达单元,并在细胞培养中研究它们对病毒基因表达,复制和/或释放感染基因组的影响。用剪接切换寡核苷酸转染细胞以纠正所引入的功能缺陷。结果表明,通过引入异常剪接的内含子可以阻断病毒基因的表达,复制和/或感染基因组的释放。将该内含子插入腺病毒载体中可使靶基因的表达降低五十倍以上。类似地插入到α病毒DNA / RNA分层载体中的效果不那么显着。在此,仅感染性转录本的释放被抑制,但随后的病毒复制和传播没有被抑制。但是,插入两个异常剪接的内含子会导致DNA / RNA分层载体的感染力降低一百倍以上。此外,在两个系统中,所观察到的效果都可以通过传递剪接转换寡核苷酸来恢复,从而纠正了剪接缺陷。结论最初为遗传疾病治疗而开发的剪接开关技术也可用于控制病毒载体的基因表达。这种方法代表了一种新颖,通用且功能强大的方法,可用于控制基因的表达,复制,病毒传播以及扩展的病毒诱导的细胞毒作用,可用于病毒感染的基础研究以及基于病毒的基因和抗癌症治疗。

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