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Updated: May 29, 2025

Aptamer-Based Target Detection Facilitated by a 3-Stage G-Quadruplex Isothermal Exponential Amplification Reaction
Published on: October 6, 2022
Targeting the G-quadruplex as a novel strategy for developing antibiotics against hypervirulent drug-resistant
Maria Sultan1, Maria Razzaq1, Joohyun Lee1
1Department of Precision Medicine, Graduate School of Basic Medical Science, Institute for Antimicrobial Resistance Research and Therapeutics, Sungkyunkwan University School of Medicine, Suwon, 16419, Republic of Korea.
Background:
The rapid emergence of multiple drug-resistant (MDR) bacterial pathogens and the lack of a novel antibiotic pipeline pose a serious threat to global healthcare. The limited number of established targets further restricts the identification of novel antibiotics to treat life-threatening MDR infections caused by Staphylococcus aureus strains. Therefore, novel targets for developing antibiotics are urgently required. In this study, we hypothesized that the G-quadruplex (G4)-binding ligands can be used as novel antibiotics as their binding can possibly downregulate/block the expression of vital genes.
Methods:
To test this, first we screened the antibiotic properties of representative G4-binding ligands against hypervirulent and MDR S. aureus USA300 and determined the in vitro and in vivo antibacterial activity; and proposed the mechanism of action by applying various microbiological, infection, microscopic, and biophysicochemical techniques.
Results:
Herein, among screened G4-binding ligands, N-methyl mesoporphyrin IX (NMM) showed the highest antibacterial activity against S. aureus USA300. NMM exhibited a minimum inhibitory concentration (MIC) of 5 μM against S. aureus USA300, impacting cell division and the cell wall by repressing the expressions of genes in the division cell wall (dcw) gene cluster. Genome-wide bioinformatics analysis of G4 motifs and their mapping on S. aureus genome, identified the presence of G4-motif in the promoter of mraZ, a conserved master regulator of the dcw cluster regulating the coordinated cell division and cell wall synthesis. Physicochemical assessments using UV-visible, circular dichroism, and nuclear magnetic resonance spectroscopy confirmed that the G4-motif present in the mraZ promoter formed an intramolecular parallel G4 structure, interacting with NMM. In vivo reporter followed by coupled in vitro transcription/translation (IVT) assays confirmed the role of mraZ G4 as a target interacting NMM to impose extreme antibacterial activity against both the gram-positive and -negative bacteria. In-cell and in vivo validation of NMM using RAW264.7 cells and Galleria mellonella; respectively, demonstrated that NMM exhibited superior antibiotic activity compared to well-established antibiotics, with no observed cytotoxicity.
Conclusions:
In summary, the current study identified NMM as a broad-spectrum potent antibacterial agent and elucidated its plausible mechanism of action primarily by targeting G4-motif in the mraZ promoter of the dcw gene cluster.
Insights
N-methyl mesoporphyrin IX (NMM) shows potent broad-spectrum antibacterial activity by targeting G-quadruplexes in bacterial genes. This novel antibiotic approach effectively combats drug-resistant bacteria, offering a promising new avenue for infection treatment.
Area of Science:
- Microbiology
- Medicinal Chemistry
- Genomics
Background:
- Emergence of multidrug-resistant (MDR) bacterial pathogens necessitates novel antibiotic development.
- Limited antibiotic targets hinder treatment of infections caused by strains like Staphylococcus aureus.
- G-quadruplex (G4)-binding ligands are explored as a novel strategy to downregulate essential bacterial genes.
Purpose of the Study:
- To screen G4-binding ligands for antibiotic properties against MDR Staphylococcus aureus.
- To determine the in vitro and in vivo antibacterial activity and mechanism of action of promising ligands.
- To identify novel antibiotic targets and agents to combat bacterial infections.
Main Methods:
- Screening of G4-binding ligands against Staphylococcus aureus USA300.
- Determination of in vitro and in vivo antibacterial activity.
- Application of microbiological, infection, microscopic, and biophysicochemical techniques to elucidate the mechanism of action.
- Genome-wide bioinformatics analysis to identify G4 motifs in bacterial genomes.
- Physicochemical assessments (UV-Vis, CD, NMR) to confirm target interaction.
- In vivo reporter and in vitro transcription/translation assays.
Main Results:
- N-methyl mesoporphyrin IX (NMM) demonstrated significant antibacterial activity against Staphylococcus aureus USA300 with a minimum inhibitory concentration (MIC) of 5 μM.
- NMM targets the G4-motif in the promoter of mraZ, a key regulator of the cell division and cell wall synthesis (dcw) gene cluster.
- NMM confirmed to interact with the mraZ G4 structure, leading to repression of dcw gene expression and impacting bacterial cell division and cell wall synthesis.
- In vitro and in vivo studies showed NMM possesses broad-spectrum activity against Gram-positive and Gram-negative bacteria.
- NMM exhibited superior antibiotic activity compared to established antibiotics in cellular and animal models (RAW264.7 cells, Galleria mellonella) with no observed cytotoxicity.
Conclusions:
- N-methyl mesoporphyrin IX (NMM) is identified as a potent, broad-spectrum antibacterial agent.
- The mechanism of action involves targeting the G4-motif in the mraZ promoter, disrupting essential bacterial processes.
- This study highlights G4-binding ligands as a promising class of novel antibiotics against drug-resistant bacteria.
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