选择性dnazyme通过靶向突变位点或通过结合臂的错配介导AChR突变转录物的切割。

Amr Abdelgany, John Ealing, Matthew Wood, David Beeson
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引用次数: 0

摘要

许多显性遗传疾病是由编码基因中单个核苷酸交换导致的错义氨基酸取代引起的。对于这些疾病,突变等位基因表达的蛋白质通常是致病性的,并且在整个生命中都存在,基因沉默,通过mRNA水平的干预,有望成为一种治疗方法。我们使用慢通道先天性肌无力综合征(SCCMS)的突变作为模型系统来研究DNAzymes对RNA转录物的等位基因特异性基因沉默。我们测试了DNAzymes进行等位基因特异性切割的能力:1)产生切割位点的突变,以及ii)位于DNAzyme切割位点附近的突变,这些突变在结合臂中产生潜在的不匹配。在模拟的生理条件下,我们证明了突变体转录物的选择性切割。对于结合臂不匹配的DNAzymes,可以通过优化错配位置和结合臂长度来提高突变型对野生型的选择性。最佳错配位点为1组1.1和1.2,2组16.2。不对称结合臂臂较短的基因更具歧视性。我们的结果表明,即使突变体本身没有产生假定的切割位点,也可以应用dnazyme介导的突变等位基因的切割。这种治疗方法可能非常适合于主要遗传性疾病,如SCCMS,其中一些野生型转录本的丢失不太可能产生致病性后果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Selective DNAzyme-mediated cleavage of AChR mutant transcripts by targeting the mutation site or through mismatches in the binding arm.

Selective DNAzyme-mediated cleavage of AChR mutant transcripts by targeting the mutation site or through mismatches in the binding arm.

Selective DNAzyme-mediated cleavage of AChR mutant transcripts by targeting the mutation site or through mismatches in the binding arm.

Selective DNAzyme-mediated cleavage of AChR mutant transcripts by targeting the mutation site or through mismatches in the binding arm.

Many dominantly inherited disorders are caused by missense amino acid substitutions resulting from a single nucleotide exchange in the encoding gene. For these disorders, where proteins expressed from the mutant alleles are often pathogenic and present throughout life, gene silencing, through intervention at the mRNA level, holds promise as a therapeutic approach. We have used mutations that underlie the slow channel congenital myasthenic syndrome (SCCMS) as a model system to study allele-specific gene silencing of RNA transcripts by DNAzymes. We tested the ability of DNAzymes to give allele-specific cleavage for i) mutations that create cleavage sites, and ii) mutations located close to a DNAzyme cleavage site that create a potential mismatch in the binding arms. For both we demonstrate selective cleavage of mutant transcripts under simulated physiological conditions. For DNAzymes with binding arm mismatches the degree of selectivity for mutant over wild type may be enhanced by optimising the mismatch position as well as the binding arm length. The optimal sites for mismatches are 1.1 and 1.2 in arm I, and 16.2 in arm II. Asymmetric binding arm DNAzymes with a shorter arm I are more discriminative. Our results show it should be possible to apply DNAzyme-mediated cleavage of mutant alleles even when the mutant does not itself create a putative cleavage site. This therapeutic approach may be well suited to dominantly inherited disorders such as SCCMS, where loss of some wild type transcripts is unlikely to have pathogenic consequences.

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