Sequence- and structure-specific targeting of RNAs by short nucleobase-modified dsRNA-Binding PNAs Incorporating A-U pair-recognizing fluorescent light-up benzothiophene uracil and G-C pair-recognizing guanidinium

The structures of RNAs determine their functions including protein coding, catalysis, and gene regulation. RNAs are emerging as important therapeutic targets and diagnosis biomarkers. Compared to targeting RNAs through duplex formation, targeting the pre-formed dsRNA regions through structure-specif...

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Main Author: Shivakumar Krishna Manchugondanahalli
Other Authors: Chen Gang
Format: Thesis-Doctor of Philosophy
Language:English
Published: Nanyang Technological University 2020
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Online Access:https://hdl.handle.net/10356/137354
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spelling sg-ntu-dr.10356-1373542023-02-28T23:48:36Z Sequence- and structure-specific targeting of RNAs by short nucleobase-modified dsRNA-Binding PNAs Incorporating A-U pair-recognizing fluorescent light-up benzothiophene uracil and G-C pair-recognizing guanidinium Shivakumar Krishna Manchugondanahalli Chen Gang School of Physical and Mathematical Sciences rnachen@ntu.edu.sg Science::Chemistry The structures of RNAs determine their functions including protein coding, catalysis, and gene regulation. RNAs are emerging as important therapeutic targets and diagnosis biomarkers. Compared to targeting RNAs through duplex formation, targeting the pre-formed dsRNA regions through structure-specific triplex formation provides a complementary RNA probing/targeting strategy. However, triplex formation through Hoogsteen hydrogen bonding for all base pairs at near-physiological conditions is relatively challenging. We have developed a second-generation modified btU PNA monomer derived from uracil, which recognizes the Watson–Crick A-U base pair and shows fluorescence light-up effect upon binding to dsRNAs. In addition, we developed a novel PNA R monomer for the sequence and structure specific recognition of Watson–Crick G-C base pairs in dsRNAs under physiological pH conditions. Our work provides a modular PNA-based platform for the recognition of biomedically important RNAs for applications in diagnosis and therapeutics. Doctor of Philosophy 2020-03-18T06:30:03Z 2020-03-18T06:30:03Z 2020 Thesis-Doctor of Philosophy Shivakumar Krishna Manchugondanahalli. (2020). Sequence- and structure-specific targeting of RNAs by short nucleobase-modified dsRNA-Binding PNAs Incorporating A-U pair-recognizing fluorescent light-up benzothiophene uracil and G-C pair-recognizing guanidinium. Doctoral thesis, Nanyang Technological University, Singapore. https://hdl.handle.net/10356/137354 10.32657/10356/137354 en This work is licensed under a Creative Commons Attribution-NonCommercial 4.0 International License (CC BY-NC 4.0). application/pdf Nanyang Technological University
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic Science::Chemistry
spellingShingle Science::Chemistry
Shivakumar Krishna Manchugondanahalli
Sequence- and structure-specific targeting of RNAs by short nucleobase-modified dsRNA-Binding PNAs Incorporating A-U pair-recognizing fluorescent light-up benzothiophene uracil and G-C pair-recognizing guanidinium
description The structures of RNAs determine their functions including protein coding, catalysis, and gene regulation. RNAs are emerging as important therapeutic targets and diagnosis biomarkers. Compared to targeting RNAs through duplex formation, targeting the pre-formed dsRNA regions through structure-specific triplex formation provides a complementary RNA probing/targeting strategy. However, triplex formation through Hoogsteen hydrogen bonding for all base pairs at near-physiological conditions is relatively challenging. We have developed a second-generation modified btU PNA monomer derived from uracil, which recognizes the Watson–Crick A-U base pair and shows fluorescence light-up effect upon binding to dsRNAs. In addition, we developed a novel PNA R monomer for the sequence and structure specific recognition of Watson–Crick G-C base pairs in dsRNAs under physiological pH conditions. Our work provides a modular PNA-based platform for the recognition of biomedically important RNAs for applications in diagnosis and therapeutics.
author2 Chen Gang
author_facet Chen Gang
Shivakumar Krishna Manchugondanahalli
format Thesis-Doctor of Philosophy
author Shivakumar Krishna Manchugondanahalli
author_sort Shivakumar Krishna Manchugondanahalli
title Sequence- and structure-specific targeting of RNAs by short nucleobase-modified dsRNA-Binding PNAs Incorporating A-U pair-recognizing fluorescent light-up benzothiophene uracil and G-C pair-recognizing guanidinium
title_short Sequence- and structure-specific targeting of RNAs by short nucleobase-modified dsRNA-Binding PNAs Incorporating A-U pair-recognizing fluorescent light-up benzothiophene uracil and G-C pair-recognizing guanidinium
title_full Sequence- and structure-specific targeting of RNAs by short nucleobase-modified dsRNA-Binding PNAs Incorporating A-U pair-recognizing fluorescent light-up benzothiophene uracil and G-C pair-recognizing guanidinium
title_fullStr Sequence- and structure-specific targeting of RNAs by short nucleobase-modified dsRNA-Binding PNAs Incorporating A-U pair-recognizing fluorescent light-up benzothiophene uracil and G-C pair-recognizing guanidinium
title_full_unstemmed Sequence- and structure-specific targeting of RNAs by short nucleobase-modified dsRNA-Binding PNAs Incorporating A-U pair-recognizing fluorescent light-up benzothiophene uracil and G-C pair-recognizing guanidinium
title_sort sequence- and structure-specific targeting of rnas by short nucleobase-modified dsrna-binding pnas incorporating a-u pair-recognizing fluorescent light-up benzothiophene uracil and g-c pair-recognizing guanidinium
publisher Nanyang Technological University
publishDate 2020
url https://hdl.handle.net/10356/137354
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