"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.

Nucleic Acids Research
|December 30, 2021
PubMed

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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