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具有增强稳定性和活性的RNA切割“10-23”脱氧核酶

RNA cleaving '10-23' DNAzymes with enhanced stability and activity.

作者信息

Schubert Steffen, Gül Deniz C, Grunert Hans-Peter, Zeichhardt Heinz, Erdmann Volker A, Kurreck Jens

机构信息

Free University Berlin, Institute of Chemistry (Biochemistry), Thielallee 63, D-14195 Berlin, Germany.

出版信息

Nucleic Acids Res. 2003 Oct 15;31(20):5982-92. doi: 10.1093/nar/gkg791.

Abstract

'10-23' DNAzymes can be used to cleave any target RNA in a sequence-specific manner. For applications in vivo, they have to be stabilised against nucleolytic attack by the introduction of modified nucleotides without obstructing cleavage activity. In this study, we optimise the design of a DNAzyme targeting the 5'-non-translated region of the human rhinovirus 14, a common cold virus, with regard to its kinetic properties and its stability against nucleases. We compare a large number of DNAzymes against the same target site that are stabilised by the use of a 3'-3'-inverted thymidine, phosphorothioate linkages, 2'-O-methyl RNA and locked nucleic acids, respectively. Both cleavage activity and nuclease stability were significantly enhanced by optimisation of arm length and content of modified nucleotides. Furthermore, we introduced modified nucleotides into the catalytic core to enhance stability against endonucleolytic degradation without abolishing catalytic activity. Our findings enabled us to establish a design for DNAzymes containing nucleotide modifications both in the binding arms and in the catalytic core, yielding a species with up to 10-fold enhanced activity and significantly elevated stability against nucleolytic cleavage. When transferring the design to a DNAzyme against a different target, only a slight modification was necessary to retain activity.

摘要

“10 - 23”脱氧核酶可用于以序列特异性方式切割任何靶RNA。对于体内应用,必须通过引入修饰核苷酸来稳定它们,使其免受核酸酶攻击,同时又不阻碍切割活性。在本研究中,我们针对人鼻病毒14(一种普通感冒病毒)5'-非翻译区的脱氧核酶,在其动力学性质及其对核酸酶的稳定性方面进行了设计优化。我们比较了大量针对同一靶位点的脱氧核酶,它们分别通过使用3'-3'-反向胸苷、硫代磷酸酯键、2'-O-甲基RNA和锁核酸来实现稳定。通过优化臂长和修饰核苷酸的含量,切割活性和核酸酶稳定性均得到显著提高。此外,我们将修饰核苷酸引入催化核心,以增强其对内切核酸酶降解的稳定性,同时不丧失催化活性。我们的研究结果使我们能够建立一种在结合臂和催化核心中均含有核苷酸修饰的脱氧核酶设计,得到一种活性提高多达10倍且对核酸酶切割稳定性显著提高的物种。当将该设计应用于针对不同靶标的脱氧核酶时,只需进行轻微修改即可保持活性。

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