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Related Concept Videos

RNA Editing02:23

RNA Editing

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RNA editing is a post-transcriptional modification where a precursor mRNA (pre-mRNA) nucleotide sequence is changed by base insertion, deletion, or modification. The extent of RNA editing varies from a few hundred bases, in mitochondrial DNA of trypanosomes, to a just single base, in nuclear genes of mammals. Even a single base change in the pre-mRNA can convert a codon for one amino acid into the codon for another amino acid or a stop codon. This type of re-coding can significantly affect the...
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Types of RNA01:23

Types of RNA

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Three main types of RNA are involved in protein synthesis: messenger RNA (mRNA), transfer RNA (tRNA), and ribosomal RNA (rRNA). These RNAs perform diverse functions and can be broadly classified as protein-coding or non-coding RNA. Non-coding RNAs play important roles in the regulation of gene expression in response to developmental and environmental changes. Non-coding RNAs in prokaryotes can be manipulated to develop more effective antibacterial drugs for human or animal use.
RNA...
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Experimental RNAi02:15

Experimental RNAi

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RNA interference (RNAi) is a cellular mechanism that inhibits gene expression by suppressing its transcription or activating the RNA degradation process. The mechanism was discovered by Andrew Fire and Craig Mello in 1998 in plants. Today, it is observed in almost all eukaryotes, including protozoa, flies, nematodes, insects, parasites, and mammals. This precise cellular mechanism of gene silencing has been developed into a technique that provides an efficient way to identify and determine the...
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RNA Interference01:23

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RNA interference (RNAi) is a process in which a small non-coding RNA molecule blocks the post-transcriptional expression of a gene by binding to its messenger RNA (mRNA) and preventing the protein from being translated.
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Transcription Attenuation in Prokaryotes02:42

Transcription Attenuation in Prokaryotes

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Transcriptional attenuation occurs when RNA transcription is prematurely terminated due to the formation of a terminator mRNA hairpin structure.  Bacteria use these hairpins to regulate the transcription process and control the synthesis of several amino acids including histidine, lysine, threonine, and phenylalanine. Transcription attenuation takes place in the non-coding regions of mRNA.
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siRNA - Small Interfering RNAs02:30

siRNA - Small Interfering RNAs

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Small interfering RNAs, or siRNAs, are short regulatory RNA molecules that can silence genes post-transcriptionally, as well as the transcriptional level in some cases. siRNAs are important for protecting cells against viral infections and silencing transposable genetic elements.
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Updated: Jul 25, 2025

RNA Catalyst as a Reporter for Screening Drugs against RNA Editing in Trypanosomes
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Targeting RNA Structure to Inhibit Editing in Trypanosomes.

Francis A Acquah1, Blaine H M Mooers1,2,3

  • 1Department of Biochemistry and Molecular Biology, University of Oklahoma Health Sciences Center, Oklahoma City, OK 73104, USA.

International Journal of Molecular Sciences
|June 28, 2023
PubMed
Summary

Researchers identified novel compounds targeting the U-helix in trypanosome RNA editing, a pathway absent in humans. These findings offer new leads for developing safer anti-trypanosome drugs and tools to study RNA editing.

Keywords:
RNA drug discoveryRNA microscale thermophoresisRNA targetsRNA–drug interactionsRNA–ligand interactionscomputer-aided drug designsmall molecule–RNA dockingtrypanosome RNA editingunsupervised machine learningvirtual screening

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Area of Science:

  • Biochemistry
  • Molecular Biology
  • Drug Discovery

Background:

  • Mitochondrial RNA editing in trypanosomes is a unique pathway absent in humans, making it a promising drug target.
  • Previous drug development efforts focused on enzymes, not the RNA editing substrate itself.

Purpose of the Study:

  • To identify novel compounds that inhibit trypanosome RNA editing by targeting the U-helix structure.
  • To develop new therapeutic strategies against trypanosome infections.

Main Methods:

  • Virtual screening of 262,000 compounds against the U-helix RNA structure.
  • Chemoinformatic filtering and molecular dynamics simulations.
  • Microscale thermophoresis and UV melting assays to validate compound binding and effect.

Main Results:

  • Identified 15 compounds with stable interactions in the U-helix deep groove.
  • Five compounds demonstrated low-micromolar to nanomolar binding affinities.
  • Compounds successfully increased the melting temperature of the U-helix, indicating binding and structural stabilization.

Conclusions:

  • The identified compounds are potential leads for developing novel anti-trypanosome drugs.
  • These compounds can serve as valuable research tools to investigate the role of RNA structure in trypanosomal RNA editing.