γ Sulphate PNA (PNA S): highly selective DNA binding molecule showing promising antigene activity.
Peptide Nucleic Acids (PNAs), nucleic acid analogues showing high stability to enzyme degradation and strong affinity and specificity of binding toward DNA and RNA are widely investigated as tools to interfere in gene expression. Several studies have been focused on PNA analogues with modifications...
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doaj-c83fe415488641b39302dd990995f7012020-11-25T01:11:57ZengPublic Library of Science (PLoS)PLoS ONE1932-62032012-01-0175e3577410.1371/journal.pone.0035774γ Sulphate PNA (PNA S): highly selective DNA binding molecule showing promising antigene activity.Concetta AvitabileLoredana MoggioGaetano MalgieriDomenica CapassoSonia Di GaetanoMichele SavianoCarlo PedoneAlessandra RomanelliPeptide Nucleic Acids (PNAs), nucleic acid analogues showing high stability to enzyme degradation and strong affinity and specificity of binding toward DNA and RNA are widely investigated as tools to interfere in gene expression. Several studies have been focused on PNA analogues with modifications on the backbone and bases in the attempt to overcome solubility, uptake and aggregation issues. γ PNAs, PNA derivatives having a substituent in the γ position of the backbone show interesting properties in terms of secondary structure and affinity of binding toward complementary nucleic acids. In this paper we illustrate our results obtained on new analogues, bearing a sulphate in the γ position of the backbone, developed to be more DNA-like in terms of polarity and charge. The synthesis of monomers and oligomers is described. NMR studies on the conformational properties of monomers and studies on the secondary structure of single strands and triplexes are reported. Furthermore the hybrid stability and the effect of mismatches on the stability have also been investigated. Finally, the ability of the new analogue to work as antigene, interfering with the transcription of the ErbB2 gene on a human cell line overexpressing ErbB2 (SKBR3), assessed by FACS and qPCR, is described.http://europepmc.org/articles/PMC3346730?pdf=render |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Concetta Avitabile Loredana Moggio Gaetano Malgieri Domenica Capasso Sonia Di Gaetano Michele Saviano Carlo Pedone Alessandra Romanelli |
spellingShingle |
Concetta Avitabile Loredana Moggio Gaetano Malgieri Domenica Capasso Sonia Di Gaetano Michele Saviano Carlo Pedone Alessandra Romanelli γ Sulphate PNA (PNA S): highly selective DNA binding molecule showing promising antigene activity. PLoS ONE |
author_facet |
Concetta Avitabile Loredana Moggio Gaetano Malgieri Domenica Capasso Sonia Di Gaetano Michele Saviano Carlo Pedone Alessandra Romanelli |
author_sort |
Concetta Avitabile |
title |
γ Sulphate PNA (PNA S): highly selective DNA binding molecule showing promising antigene activity. |
title_short |
γ Sulphate PNA (PNA S): highly selective DNA binding molecule showing promising antigene activity. |
title_full |
γ Sulphate PNA (PNA S): highly selective DNA binding molecule showing promising antigene activity. |
title_fullStr |
γ Sulphate PNA (PNA S): highly selective DNA binding molecule showing promising antigene activity. |
title_full_unstemmed |
γ Sulphate PNA (PNA S): highly selective DNA binding molecule showing promising antigene activity. |
title_sort |
γ sulphate pna (pna s): highly selective dna binding molecule showing promising antigene activity. |
publisher |
Public Library of Science (PLoS) |
series |
PLoS ONE |
issn |
1932-6203 |
publishDate |
2012-01-01 |
description |
Peptide Nucleic Acids (PNAs), nucleic acid analogues showing high stability to enzyme degradation and strong affinity and specificity of binding toward DNA and RNA are widely investigated as tools to interfere in gene expression. Several studies have been focused on PNA analogues with modifications on the backbone and bases in the attempt to overcome solubility, uptake and aggregation issues. γ PNAs, PNA derivatives having a substituent in the γ position of the backbone show interesting properties in terms of secondary structure and affinity of binding toward complementary nucleic acids. In this paper we illustrate our results obtained on new analogues, bearing a sulphate in the γ position of the backbone, developed to be more DNA-like in terms of polarity and charge. The synthesis of monomers and oligomers is described. NMR studies on the conformational properties of monomers and studies on the secondary structure of single strands and triplexes are reported. Furthermore the hybrid stability and the effect of mismatches on the stability have also been investigated. Finally, the ability of the new analogue to work as antigene, interfering with the transcription of the ErbB2 gene on a human cell line overexpressing ErbB2 (SKBR3), assessed by FACS and qPCR, is described. |
url |
http://europepmc.org/articles/PMC3346730?pdf=render |
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