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Theoretical design of antisense genes with statistically increased efficacy.

机译:具有统计学上提高的功效的反义基因的理论设计。

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Endogenous expression of antisense RNA represents one major way of applying antisense nucleic acids. To express antisense RNA intracellularly, recombinant antisense genes have to be designed and introduced into cells where the target RNA is encountered. Efficient annealing between the antisense RNA and the target RNA is crucial for efficacy and is strongly influenced by RNA structure. Here we extend structural rules for the design of in vitro transcribed antisense RNAs to the design of recombinant antisense genes. Intracellularly expressed antisense RNA transcripts contain a central antisense portion and additional flanking vector-derived sequences. A computer algorithm was generated to compose large sets of antisense genes, to calculate secondary structures of the transcribed sequences and to select for favorable structures of antisense RNA in terms of annealing and efficacy. The biological test system to measure efficiency of antisense genes was human immunodeficiency virus type 1 (HIV-1) replication in 293T cells. When considering the lower intracellular steady-state levels of favorably structured endogenous transcripts, an antisense effect against HIV-1 replication was observed that was up to 60-fold stronger than that measured for predicted unfavorable species. The computational selection was successful for antisense portions of 300 nt but not 100 nt in length. This theoretical design of antisense genes supports their improved application under time- and labor-saving conditions.
机译:反义RNA的内源性表达代表了应用反义核酸的一种主要方法。为了在细胞内表达反义RNA,必须设计重组反义基因并将其引入遇到靶RNA的细胞中。反义RNA和靶RNA之间的有效退火对于功效至关重要,并且受RNA结构的强烈影响。在这里,我们将体外转录的反义RNA设计的结构规则扩展到重组反义基因的设计。细胞内表达的反义RNA转录本包含一个中央反义部分和其他侧翼载体衍生的序列。产生了一种计算机算法来组成大组反义基因,计算转录序列的二级结构,并从退火和功效方面选择反义RNA的有利结构。衡量反义基因效率的生物学测试系统是在293T细胞中复制的1型人类免疫缺陷病毒(HIV-1)。考虑到结构良好的内源转录本的较低细胞内稳态水平时,观察到的针对HIV-1复制的反义作用比预测的不利物种高出60倍。对于长度为300 nt但不是100 nt的反义部分,计算选择成功。反义基因的这种理论设计支持它们在节省时间和劳力的条件下的改进应用。

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