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将 2-硫代尿嘧啶纳入短双链 RNA 结合肽核酸,以增强对 A-U 对的识别并靶向 microRNA 发夹前体。

Incorporating 2-Thiouracil into Short Double-Stranded RNA-Binding Peptide Nucleic Acids for Enhanced Recognition of A-U Pairs and for Targeting a MicroRNA Hairpin Precursor.

机构信息

NTU Institute for Health Technologies (HeathTech NTU), Interdisciplinary Graduate School , Nanyang Technological University , 50 Nanyang Drive , Singapore 637553.

Division of Chemistry and Biological Chemistry, School of Physical and Mathematical Sciences , Nanyang Technological University , 21 Nanyang Link , Singapore 637371.

出版信息

Biochemistry. 2019 Aug 13;58(32):3444-3453. doi: 10.1021/acs.biochem.9b00521. Epub 2019 Jul 29.

Abstract

Chemically modified short peptide nucleic acids (PNAs) recognize RNA duplexes under near physiological conditions by major-groove PNA·RNA-RNA triplex formation and show great promise for the development of RNA-targeting probes and therapeutics. Thymine (T) and uracil (U) are often incorporated into PNAs to recognize A-U pairs through major-groove T·A-U and U·A-U base triple formation. Incorporation of a modified nucleobase, 2-thiouracil (sU), into triplex-forming oligonucleotides stabilizes both DNA and RNA triplexes. Thiolation of uracil causes a decrease in the dehydration energy penalty for triplex formation as well as a decrease in the p of the N3 atom, which may result in improved hydrogen bonding in addition to enhanced base stacking interactions, similar to the previously reported thiolation effect of pseudoisocytosine (J to L substitution). Here, we incorporated sU into short PNAs, followed by binding studies of a series of sU-modified PNAs. We demonstrated by nondenaturing polyacrylamide gel electrophoresis and thermal melting experiments that sU and L incorporated into dsRNA-binding PNAs (dbPNAs) enhance the recognition of A-U and G-C pairs, respectively, in RNA duplexes in a position-independent manner, with no appreciable binding to the DNA duplex. Combining sU and L modifications in dbPNAs facilitates enhanced recognition of dsRNAs and maintains selective binding to dsRNAs over ssRNAs. We further demonstrated through a cell-free assay the application of the sU- and L-modified dbPNAs (8-mer, with a molecular mass of ∼2.3 kDa) in the inhibition of the pre-microRNA-198 maturation in a substrate-specific manner. Thus, sU-modified dbPNAs may be generally useful for the enhanced and selective recognition of RNA duplexes and for the regulation of RNA functions.

摘要

化学修饰的短肽核酸(PNA)通过主沟 PNA·RNA·RNA 三链体形成在近生理条件下识别 RNA 双链体,并显示出开发 RNA 靶向探针和治疗剂的巨大潜力。胸腺嘧啶(T)和尿嘧啶(U)经常被掺入 PNA 中,通过主沟 T·A-U 和 U·A-U 碱基三链形成来识别 A-U 对。将修饰碱基 2-硫代尿嘧啶(sU)掺入三链体形成寡核苷酸中可稳定 DNA 和 RNA 三链体。尿嘧啶的硫代化导致三链体形成的脱水能罚减少,以及 N3 原子的 p 值降低,这可能导致除了增强碱基堆积相互作用之外,还改善氢键,类似于先前报道的假胞嘧啶(J 到 L 取代的硫代化效应)。在这里,我们将 sU 掺入短 PNA 中,然后进行一系列 sU 修饰 PNA 的结合研究。我们通过非变性聚丙烯酰胺凝胶电泳和热融实验证明,sU 和 L 掺入 dsRNA 结合 PNA(dbPNA)中,以位置独立的方式分别增强 RNA 双链体中 A-U 和 G-C 对的识别,而与 DNA 双链体没有明显结合。在 dbPNA 中结合 sU 和 L 修饰促进了 dsRNA 的增强识别,并保持了对 dsRNA 的选择性结合而不是 ssRNA。我们通过无细胞测定进一步证明了 sU 和 L 修饰的 dbPNA(8-mer,分子量约为 2.3 kDa)在底物特异性抑制前 microRNA-198 成熟方面的应用。因此,sU 修饰的 dbPNA 可能通常可用于增强和选择性识别 RNA 双链体以及调节 RNA 功能。

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