Grifman M, Chen N N, Gao G P, Cathomen T, Wilson J M, Weitzman M D
Laboratory of Genetics, The Salk Institute for Biological Studies, San Diego, California 92186, USA.
J Virol. 1999 Dec;73(12):10010-9. doi: 10.1128/JVI.73.12.10010-10019.1999.
The 34-kDa product of adenovirus E4 region open reading frame 6 (E4orf6) dramatically enhances transduction by recombinant adeno-associated virus vectors (rAAV). This is achieved by promoting the conversion of incoming single-stranded viral genomes into transcriptionally competent duplex molecules. The molecular mechanism for enhancing second-strand synthesis is not fully understood. In this study, we analyzed the cellular consequences of E4orf6 expression and the requirements for efficient rAAV transduction mediated by E4orf6. Expression of E4orf6 in 293 cells led to an inhibition of cell cycle progression and an accumulation of cells in S phase. This was preceded by specific degradation of cyclin A and p53, while the levels of other proteins involved in cell cycle control remained unchanged. In addition, the kinase activity of cdc2 was inhibited. We further showed that p53 expression is not necessary or inhibitory for augmentation of rAAV transduction by E4orf6. However, overexpression of cyclin A inhibited E4orf6-mediated enhancement of rAAV transduction. A cyclin A mutant incapable of recruiting protein substrates for cdk2 was unable to inhibit E4orf6-mediated augmentation. In addition, we created an E4orf6 mutant that is selectively defective in rAAV augmentation of transduction. Based on these findings, we suggest that cyclin A degradation represents a viral mechanism to disrupt cell cycle progression, resulting in enhanced viral transduction. Understanding the cellular pathways used during transduction will increase the utility of rAAV vectors in a wide range of gene therapy applications.
腺病毒E4区开放阅读框6(E4orf6)的34 kDa产物可显著增强重组腺相关病毒载体(rAAV)的转导作用。这是通过促进进入的单链病毒基因组转化为具有转录活性的双链分子来实现的。增强第二链合成的分子机制尚未完全了解。在本研究中,我们分析了E4orf6表达的细胞后果以及E4orf6介导的高效rAAV转导的要求。E4orf6在293细胞中的表达导致细胞周期进程受到抑制,细胞在S期积累。这之前细胞周期蛋白A和p53发生了特异性降解,而参与细胞周期调控的其他蛋白质水平保持不变。此外,cdc2的激酶活性受到抑制。我们进一步表明,p53表达对于E4orf6增强rAAV转导既非必需也无抑制作用。然而,细胞周期蛋白A的过表达抑制了E4orf6介导的rAAV转导增强。一种无法招募cdk2蛋白底物的细胞周期蛋白A突变体无法抑制E4orf6介导的增强作用。此外,我们构建了一种在rAAV转导增强方面存在选择性缺陷的E4orf6突变体。基于这些发现,我们认为细胞周期蛋白A的降解代表了一种破坏细胞周期进程的病毒机制,从而导致病毒转导增强。了解转导过程中使用的细胞途径将提高rAAV载体在广泛基因治疗应用中的效用。