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Biology subjects

Ong, A. A. L.

Publications and source records attributed to Ong, A. A. L..

2 recordsLinked to original sources

A new dual-affinity peptide nucleic acid for targeting miRNA-21 precursor rescues tumor repressor PTEN expression

MicroRNAs (miRNAs) have multiple functions in cells and are related to many diseases including cancer by regulating posttranscriptional gene expression. The microRNA precursors (pre-miRs), which can be cleaved by Dicer endonuclease to produce mature miRNAs, often have a cleavage site consisting of both double-stranded (ds) and single-stranded (ss) RNA structures. Peptide nucleic acid (PNA) is a kind of analogue of DNA which can hybridize to DNA or RNA through Watson-Crick and Hoogsteen pairing. We previously reported a novel dual-affinity PNA (daPNA) platform that can simultaneously form a duplex and a triplex with a target RNAs ssRNA-dsRNA junction region. The PNA-RNA complex structure is stabilized by forming antisense PNA (asPNA)-ssRNA duplex immediately adjacent to a chemically modified dsRNA-binding PNA (dbPNA)-dsRNA triplex. In this study, we further explored the application of the daPNA platform to target the precursor of miR-21, which is considered an oncogene. We have designed a set of PNAs including asPNAs, dbPNAs, and daPNAs. The nondenaturing polyacrylamide gel electrophoresis (PAGE) and biolayer interferometry (BLI) data reveal that daPNA-21-10 can strongly bind to pre-miR-21 with high specificity. The data show that pre-miR-21 is easily targeted by traditional antimir, asPNA or dbPNA and optimization of the dsRNA-ssRNA junction position is needed for identifying a tightly binding daPNA. Furthermore, daPNA-21-10 not only inhibits the Dicer activity on pre-miR-21 in cell-free assays, but also down-regulates the expression of miR-21, rescuing PTEN protein expression in cells. Taken together, the biofunction and programmability of daPNA make it a promising platform for probing and regulating miRNA biogenesis and many other RNA-involved biological processes. HighlightsO_LISimultaneous recognition of dsRNA and ssRNA regions C_LIO_LIRNA targeting by dividing and conquering through a dsRNA-ssRNA junction construction C_LIO_LISubstrate-specific inhibition of Dicer acting on pre-miR-21 C_LIO_LIDerepressing PTEN expression by inhibiting miR-21 maturation C_LI O_FIG O_LINKSMALLFIG WIDTH=170 HEIGHT=200 SRC="FIGDIR/small/668835v1_ufig1.gif" ALT="Figure 1"> View larger version (44K): org.highwire.dtl.DTLVardef@c8af64org.highwire.dtl.DTLVardef@172d2bdorg.highwire.dtl.DTLVardef@1698ea1org.highwire.dtl.DTLVardef@112fa16_HPS_FORMAT_FIGEXP M_FIG C_FIG eToc BlurbLian et al. show that the miR-21 precursor structure containing the Dicer cleavage site can be targeted by a new type of dual-affinity peptide nucleic acids (daPNAs) through the creation of a dsRNA-ssRNA junction, energetically optimized for the simultaneous duplex and triplex formation. Pre-miR-21 structure, which is hardly accessible to traditional antisense strategies and triplex formation alone, can be targeted by a daPNA with high sequence/structure specificity and strong binding affinity. daPNA platform has a great potential in probing many other RNA structures and broad therapeutic applications.

molecular biology↗

Recognition of RNA secondary structures with a programmable peptide nucleic acid-based platform

RNA secondary structures comprise double-stranded (ds) and single-stranded (ss) regions. Antisense peptide nucleic acids (asPNAs) enable the targeting of ssRNAs and weakly formed dsRNAs. Nucleobase-modified dsRNA-binding PNAs (dbPNAs) allow for targeting of relatively stable dsRNAs. A programmable RNA structure-specific targeting strategy is needed for simultaneous recognition of dsRNAs and ssRNAs. Here, we report on combining dbPNAs and asPNAs (designated as daPNAs) for the targeting of dsRNA-ssRNA junctions. Our binding and modeling data suggest that combining traditional asPNA (with a 4-letter code: T, C, A, and G) and dbPNA (with a 4-letter code: T or s2U, L, Q, and E) scaffolds facilitates RNA structure-specific tight binding (nM to M) under physiologically-relevant conditions. We further applied our daPNAs in substrate specific inhibition of Dicer acting on pre-miR-198 in a cell-free assay and regulating ribosomal frameshifting induced by model hairpins in both cell-free and cell culture assays. daPNAs would be a useful platform for developing chemical probes and therapeutic ligands targeting RNA. HighlightO_LIWe demonstrated that sequence- and structure-specific targeting of RNA can be facilitated by nucleobase-modified dsRNA-binding PNAs (dbPNAs) platform in combination with antisense PNAs (asPNAs). We name the novel PNAs as daPNAs. C_LIO_LIdaPNAs can be used in a programmable way for targeting RNAs by formation of a short triplex next to a short duplex at a dsRNA-ssRNA junction. C_LIO_LIWe applied our daPNAs in substrate specific inhibition of Dicer acting on pre-miR-198 in a cell-free assay and regulating ribosomal frameshifting induced by model hairpins in both cell-free and cell culture assays. C_LIO_LIThe daPNAs platform would serve as useful junction-specific molecular glues for the targeting of many biologically important RNA structures in transcriptomes. C_LI

biochemistry↗