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侧链修饰的肽核酸(PNA)用于 knockdown 斑马鱼胚胎中的 six3。

Side chain modified peptide nucleic acids (PNA) for knock-down of six3 in medaka embryos.

机构信息

Department for Biomedical Sciences, University of Veterinary Medicine, Veterinärplatz 1, A-1210, Vienna, Austria.

出版信息

BMC Biotechnol. 2012 Aug 17;12:50. doi: 10.1186/1472-6750-12-50.

Abstract

BACKGROUND

Synthetic antisense molecules have an enormous potential for therapeutic applications in humans. The major aim of such strategies is to specifically interfere with gene function, thus modulating cellular pathways according to the therapeutic demands. Among the molecules which can block mRNA function in a sequence specific manner are peptide nucleic acids (PNA). They are highly stable and efficiently and selectively interact with RNA. However, some properties of non-modified aminoethyl glycine PNAs (aegPNA) hamper their in vivo applications.

RESULTS

We generated new backbone modifications of PNAs, which exhibit more hydrophilic properties. When we examined the activity and specificity of these novel phosphonic ester PNAs (pePNA) molecules in medaka (Oryzias latipes) embryos, high solubility and selective binding to mRNA was observed. In particular, mixing of the novel components with aegPNA components resulted in mixed PNAs with superior properties. Injection of mixed PNAs directed against the medaka six3 gene, which is important for eye and brain development, resulted in specific six3 phenotypes.

CONCLUSIONS

PNAs are well established as powerful antisense molecules. Modification of the backbone with phosphonic ester side chains further improves their properties and allows the efficient knock down of a single gene in fish embryos.

摘要

背景

人工合成的反义分子在人类治疗应用方面具有巨大的潜力。这些策略的主要目的是特异性地干扰基因功能,从而根据治疗需求调节细胞途径。可以以序列特异性方式阻断 mRNA 功能的分子之一是肽核酸 (PNA)。它们高度稳定,能够高效且选择性地与 RNA 相互作用。然而,未经修饰的氨基乙基甘氨酸 PNA(aegPNA) 的一些性质妨碍了它们的体内应用。

结果

我们生成了 PNA 的新骨架修饰,其表现出更高的亲水性。当我们在日本青鳉 (Oryzias latipes) 胚胎中检查这些新型膦酸酯 PNA (pePNA) 分子的活性和特异性时,观察到高溶解度和对 mRNA 的选择性结合。特别是,新型成分与 aegPNA 成分的混合导致具有优异性质的混合 PNA。针对在眼睛和大脑发育中起重要作用的日本青鳉 six3 基因的混合 PNA 注射导致了特异性的 six3 表型。

结论

PNA 已被确立为强大的反义分子。用膦酸酯侧链修饰骨架进一步改善了它们的性质,并允许在鱼胚胎中有效敲低单个基因。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1fc0/3469332/5b72785dc8b8/1472-6750-12-50-1.jpg

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