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Updated: Oct 8, 2025

Nanomanipulation of Single RNA Molecules by Optical Tweezers
Published on: August 20, 2014
"Bind, cleave and leave": multiple turnover catalysis of RNA cleavage by bulge-loop inducing supramolecular
Bahareh Amirloo1, Yaroslav Staroseletz2, Sameen Yousaf1
1School of Health Sciences, Faculty of Biology, Medicine and Health, University of Manchester, Oxford Road, Manchester M13 9PT, UK.
Abstract:
Antisense sequence-specific knockdown of pathogenic RNA offers opportunities to find new solutions for therapeutic treatments. However, to gain a desired therapeutic effect, the multiple turnover catalysis is critical to inactivate many copies of emerging RNA sequences, which is difficult to achieve without sacrificing the sequence-specificity of cleavage. Here, engineering two or three catalytic peptides into the bulge-loop inducing molecular framework of antisense oligonucleotides achieved catalytic turnover of targeted RNA. Different supramolecular configurations revealed that cleavage of the RNA backbone upon sequence-specific hybridization with the catalyst accelerated with increase in the number of catalytic guanidinium groups, with almost complete demolition of target RNA in 24 h. Multiple sequence-specific cuts at different locations within and around the bulge-loop facilitated release of the catalyst for subsequent attacks of at least 10 further RNA substrate copies, such that delivery of only a few catalytic molecules could be sufficient to maintain knockdown of typical RNA copy numbers. We have developed fluorescent assay and kinetic simulation tools to characterise how the limited availability of different targets and catalysts had restrained catalytic reaction progress considerably, and to inform how to accelerate the catalytic destruction of shorter linear and larger RNAs even further.
Insights
Engineered antisense oligonucleotides with catalytic peptides achieve efficient, sequence-specific RNA knockdown. This breakthrough enables multiple RNA destruction cycles, offering new therapeutic strategies for genetic diseases.
Area of Science:
- Molecular Biology
- Biochemistry
- Therapeutic Drug Development
Background:
- Antisense oligonucleotides (ASOs) offer therapeutic potential for pathogenic RNA.
- Achieving efficient RNA knockdown requires multiple catalytic turnovers, which is challenging without compromising specificity.
Purpose of the Study:
- To engineer catalytically active ASOs for efficient and sequence-specific RNA knockdown.
- To investigate the impact of catalytic peptide incorporation on RNA cleavage efficiency and turnover.
Main Methods:
- Incorporation of catalytic peptides into the bulge-loop of antisense oligonucleotides.
- Investigation of different supramolecular configurations and catalytic guanidinium group numbers.
- Development of fluorescent assays and kinetic simulations to characterize reaction progress.
Main Results:
- Engineered ASOs demonstrated catalytic turnover of targeted RNA.
- RNA backbone cleavage accelerated with increased catalytic guanidinium groups, leading to near-complete RNA demolition within 24 hours.
- Catalyst release and multiple attacks on subsequent RNA copies were observed, enabling sustained knockdown.
Conclusions:
- Catalytic ASOs can achieve efficient, sequence-specific RNA destruction through multiple turnover catalysis.
- The design strategy allows for sustained RNA knockdown with minimal catalyst delivery.
- Further optimization using kinetic insights can enhance catalytic destruction of various RNA targets.
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