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Updated: Jul 12, 2026

A Platform of Anti-biofilm Assays Suited to the Exploration of Natural Compound Libraries
Published on: December 27, 2016
N-sulfonylated indole hydrazone hybrid targeting Staphylococcus aureus with compelling antibiofilm and
Anuj Kumar1,2, Vishwani Jamwal1,2, Parmjeet Kaur3
1Infectious Diseases Division, CSIR- Indian Institute of Integrative Medicine, Jammu, 180001, India.
Abstract:
Staphylococcus aureus is a highly adaptable opportunistic pathogen and a leading cause of infectious disease-related morbidity and mortality globally. This pathogen triggers a wide spectrum of infections, from mild skin infections to life-threatening conditions like sepsis and pneumonia. Thus, it is implicated in escalating the global antimicrobial resistance (AMR) crisis, and there is an urgent need for novel antistaphylococcal scaffolds. In response to this challenge, we previously reported a metal-free electrochemical strategy for regioselective synthesis of N-sulfonylated indole-based hydrazone derivatives, identifying compound 5d as a potent lead with an MIC of 6.87 µM against the S. aureus pathogen. Building upon this, our current study provides a comprehensive antibacterial and mechanistic evaluation of the 5d molecule against the S. aureus pathogen. The antibacterial susceptibility analyses, including time-kill kinetics and anti-biofilm assays, demonstrated significant inhibitory effects. Further, mechanistic investigations revealed that potent hit (5d) triggers a multi-targeted bactericidal action. It compromised bacterial membrane integrity, resulting in leakage of cell contents, increased membrane permeability, and heightened oxidative stress through ROS generation. Next, the ATP quantification study revealed that the compound interferes with bacterial cellular bioenergetics by depleting the intracellular ATP levels. These findings highlight the compound 5d as a promising scaffold against S. aureus infections and successfully establish the sulfonylated-indole hydrazones as capable pharmacophores for next-generational antibacterial drug discovery efforts to mitigate the global AMR burden.
Insights
A novel compound, 5d, shows potent antibacterial activity against Staphylococcus aureus by disrupting bacterial membranes and energy production. This discovery offers a promising new scaffold for developing drugs to combat antimicrobial resistance (AMR).
Area of Science:
- Microbiology
- Medicinal Chemistry
- Drug Discovery
Background:
- Staphylococcus aureus is a major cause of global infectious disease and contributes to the antimicrobial resistance (AMR) crisis.
- Novel antistaphylococcal agents are urgently needed to address the escalating AMR burden.
- Previous work identified N-sulfonylated indole-based hydrazone derivatives as potential antibacterial scaffolds.
Purpose of the Study:
- To comprehensively evaluate the antibacterial and mechanistic properties of compound 5d against Staphylococcus aureus.
- To explore the potential of sulfonylated-indole hydrazones as pharmacophores for next-generation antibacterial drugs.
Main Methods:
- Antibacterial susceptibility testing, including time-kill kinetics and anti-biofilm assays.
- Mechanistic investigations involving bacterial membrane integrity, reactive oxygen species (ROS) generation, and intracellular ATP levels.
- Evaluation of compound 5d against Staphylococcus aureus.
Main Results:
- Compound 5d demonstrated significant inhibitory effects against Staphylococcus aureus, with potent antibacterial activity.
- Mechanistic studies revealed that 5d compromises bacterial membrane integrity, leading to cell content leakage and increased permeability.
- Compound 5d induced oxidative stress via ROS generation and depleted intracellular ATP levels, disrupting bacterial bioenergetics.
Conclusions:
- Compound 5d exhibits multi-targeted bactericidal action against Staphylococcus aureus.
- The N-sulfonylated indole hydrazone scaffold is a promising pharmacophore for developing novel antibacterial agents.
- These findings contribute to efforts to mitigate the global AMR crisis.
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