Cargando…

RNA Secondary Structure-Based Design of Antisense Peptide Nucleic Acids for Modulating Disease-Associated Aberrant Tau Pre-mRNA Alternative Splicing

Alternative splicing of tau pre-mRNA is regulated by a 5′ splice site (5′ss) hairpin present at the exon 10–intron 10 junction. Single mutations within the hairpin sequence alter hairpin structural stability and/or the binding of splicing factors, resulting in disease-causing aberrant splicing of ex...

Descripción completa

Detalles Bibliográficos
Autores principales: Ong, Alan Ann Lerk, Tan, Jiazi, Bhadra, Malini, Dezanet, Clément, Patil, Kiran M., Chong, Mei Sian, Kierzek, Ryszard, Decout, Jean-Luc, Roca, Xavier, Chen, Gang
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6720520/
https://www.ncbi.nlm.nih.gov/pubmed/31434312
http://dx.doi.org/10.3390/molecules24163020
_version_ 1783448146395791360
author Ong, Alan Ann Lerk
Tan, Jiazi
Bhadra, Malini
Dezanet, Clément
Patil, Kiran M.
Chong, Mei Sian
Kierzek, Ryszard
Decout, Jean-Luc
Roca, Xavier
Chen, Gang
author_facet Ong, Alan Ann Lerk
Tan, Jiazi
Bhadra, Malini
Dezanet, Clément
Patil, Kiran M.
Chong, Mei Sian
Kierzek, Ryszard
Decout, Jean-Luc
Roca, Xavier
Chen, Gang
author_sort Ong, Alan Ann Lerk
collection PubMed
description Alternative splicing of tau pre-mRNA is regulated by a 5′ splice site (5′ss) hairpin present at the exon 10–intron 10 junction. Single mutations within the hairpin sequence alter hairpin structural stability and/or the binding of splicing factors, resulting in disease-causing aberrant splicing of exon 10. The hairpin structure contains about seven stably formed base pairs and thus may be suitable for targeting through antisense strands. Here, we used antisense peptide nucleic acids (asPNAs) to probe and target the tau pre-mRNA exon 10 5′ss hairpin structure through strand invasion. We characterized by electrophoretic mobility shift assay the binding of the designed asPNAs to model tau splice site hairpins. The relatively short (10–15 mer) asPNAs showed nanomolar binding to wild-type hairpins as well as a disease-causing mutant hairpin C+19G, albeit with reduced binding strength. Thus, the structural stabilizing effect of C+19G mutation could be revealed by asPNA binding. In addition, our cell culture minigene splicing assay data revealed that application of an asPNA targeting the 3′ arm of the hairpin resulted in an increased exon 10 inclusion level for the disease-associated mutant C+19G, probably by exposing the 5′ss as well as inhibiting the binding of protein factors to the intronic spicing silencer. On the contrary, the application of asPNAs targeting the 5′ arm of the hairpin caused an increased exon 10 exclusion for a disease-associated mutant C+14U, mainly by blocking the 5′ss. PNAs could enter cells through conjugation with amino sugar neamine or by cotransfection with minigene plasmids using a commercially available transfection reagent.
format Online
Article
Text
id pubmed-6720520
institution National Center for Biotechnology Information
language English
publishDate 2019
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-67205202019-09-10 RNA Secondary Structure-Based Design of Antisense Peptide Nucleic Acids for Modulating Disease-Associated Aberrant Tau Pre-mRNA Alternative Splicing Ong, Alan Ann Lerk Tan, Jiazi Bhadra, Malini Dezanet, Clément Patil, Kiran M. Chong, Mei Sian Kierzek, Ryszard Decout, Jean-Luc Roca, Xavier Chen, Gang Molecules Article Alternative splicing of tau pre-mRNA is regulated by a 5′ splice site (5′ss) hairpin present at the exon 10–intron 10 junction. Single mutations within the hairpin sequence alter hairpin structural stability and/or the binding of splicing factors, resulting in disease-causing aberrant splicing of exon 10. The hairpin structure contains about seven stably formed base pairs and thus may be suitable for targeting through antisense strands. Here, we used antisense peptide nucleic acids (asPNAs) to probe and target the tau pre-mRNA exon 10 5′ss hairpin structure through strand invasion. We characterized by electrophoretic mobility shift assay the binding of the designed asPNAs to model tau splice site hairpins. The relatively short (10–15 mer) asPNAs showed nanomolar binding to wild-type hairpins as well as a disease-causing mutant hairpin C+19G, albeit with reduced binding strength. Thus, the structural stabilizing effect of C+19G mutation could be revealed by asPNA binding. In addition, our cell culture minigene splicing assay data revealed that application of an asPNA targeting the 3′ arm of the hairpin resulted in an increased exon 10 inclusion level for the disease-associated mutant C+19G, probably by exposing the 5′ss as well as inhibiting the binding of protein factors to the intronic spicing silencer. On the contrary, the application of asPNAs targeting the 5′ arm of the hairpin caused an increased exon 10 exclusion for a disease-associated mutant C+14U, mainly by blocking the 5′ss. PNAs could enter cells through conjugation with amino sugar neamine or by cotransfection with minigene plasmids using a commercially available transfection reagent. MDPI 2019-08-20 /pmc/articles/PMC6720520/ /pubmed/31434312 http://dx.doi.org/10.3390/molecules24163020 Text en © 2019 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Ong, Alan Ann Lerk
Tan, Jiazi
Bhadra, Malini
Dezanet, Clément
Patil, Kiran M.
Chong, Mei Sian
Kierzek, Ryszard
Decout, Jean-Luc
Roca, Xavier
Chen, Gang
RNA Secondary Structure-Based Design of Antisense Peptide Nucleic Acids for Modulating Disease-Associated Aberrant Tau Pre-mRNA Alternative Splicing
title RNA Secondary Structure-Based Design of Antisense Peptide Nucleic Acids for Modulating Disease-Associated Aberrant Tau Pre-mRNA Alternative Splicing
title_full RNA Secondary Structure-Based Design of Antisense Peptide Nucleic Acids for Modulating Disease-Associated Aberrant Tau Pre-mRNA Alternative Splicing
title_fullStr RNA Secondary Structure-Based Design of Antisense Peptide Nucleic Acids for Modulating Disease-Associated Aberrant Tau Pre-mRNA Alternative Splicing
title_full_unstemmed RNA Secondary Structure-Based Design of Antisense Peptide Nucleic Acids for Modulating Disease-Associated Aberrant Tau Pre-mRNA Alternative Splicing
title_short RNA Secondary Structure-Based Design of Antisense Peptide Nucleic Acids for Modulating Disease-Associated Aberrant Tau Pre-mRNA Alternative Splicing
title_sort rna secondary structure-based design of antisense peptide nucleic acids for modulating disease-associated aberrant tau pre-mrna alternative splicing
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6720520/
https://www.ncbi.nlm.nih.gov/pubmed/31434312
http://dx.doi.org/10.3390/molecules24163020
work_keys_str_mv AT ongalanannlerk rnasecondarystructurebaseddesignofantisensepeptidenucleicacidsformodulatingdiseaseassociatedaberranttaupremrnaalternativesplicing
AT tanjiazi rnasecondarystructurebaseddesignofantisensepeptidenucleicacidsformodulatingdiseaseassociatedaberranttaupremrnaalternativesplicing
AT bhadramalini rnasecondarystructurebaseddesignofantisensepeptidenucleicacidsformodulatingdiseaseassociatedaberranttaupremrnaalternativesplicing
AT dezanetclement rnasecondarystructurebaseddesignofantisensepeptidenucleicacidsformodulatingdiseaseassociatedaberranttaupremrnaalternativesplicing
AT patilkiranm rnasecondarystructurebaseddesignofantisensepeptidenucleicacidsformodulatingdiseaseassociatedaberranttaupremrnaalternativesplicing
AT chongmeisian rnasecondarystructurebaseddesignofantisensepeptidenucleicacidsformodulatingdiseaseassociatedaberranttaupremrnaalternativesplicing
AT kierzekryszard rnasecondarystructurebaseddesignofantisensepeptidenucleicacidsformodulatingdiseaseassociatedaberranttaupremrnaalternativesplicing
AT decoutjeanluc rnasecondarystructurebaseddesignofantisensepeptidenucleicacidsformodulatingdiseaseassociatedaberranttaupremrnaalternativesplicing
AT rocaxavier rnasecondarystructurebaseddesignofantisensepeptidenucleicacidsformodulatingdiseaseassociatedaberranttaupremrnaalternativesplicing
AT chengang rnasecondarystructurebaseddesignofantisensepeptidenucleicacidsformodulatingdiseaseassociatedaberranttaupremrnaalternativesplicing