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Updated: Apr 5, 2026

Author Spotlight: Exploring Cytoskeletal Dynamics to Unveil Novel Antibiotics Through Innovative Cell-Based Assays
Published on: April 26, 2024
Doxorubicin inhibits E. coli division by interacting at a novel site in FtsZ
Pragnya Panda1, Ashoka Chary Taviti2, Suresh Satpati1
1Institute of Life Sciences, Nalco Square, Bhubaneswar, Odisha 751023, India.
Abstract:
The increase in antibiotic resistance has become a major health concern in recent times. It is therefore essential to identify novel antibacterial targets as well as discover and develop new antibacterial agents. FtsZ, a highly conserved bacterial protein, is responsible for the initiation of cell division in bacteria. The functions of FtsZ inside cells are tightly regulated and any perturbation in its functions leads to inhibition of bacterial division. Recent reports indicate that small molecules targeting the functions of FtsZ may be used as leads to develop new antibacterial agents. To identify small molecules targeting FtsZ and inhibiting bacterial division, we screened a U.S. FDA (Food and Drug Administration)-approved drug library of 800 molecules using an independent computational, biochemical and microbial approach. From this screen, we identified doxorubicin, an anthracycline molecule that inhibits Escherichia coli division and forms filamentous cells. A fluorescence-binding assay shows that doxorubicin interacts strongly with FtsZ. A detailed biochemical analysis demonstrated that doxorubicin inhibits FtsZ assembly and its GTPase activity through binding to a site other than the GTP-binding site. Furthermore, using molecular docking, we identified a probable doxorubicin-binding site in FtsZ. A number of single amino acid mutations at the identified binding site in FtsZ resulted in a severalfold decrease in the affinity of FtsZ for doxorubicin, indicating the importance of this site for doxorubicin interaction. The present study suggests the presence of a novel binding site in FtsZ that interacts with the small molecules and can be targeted for the screening and development of new antibacterial agents.
Insights
Researchers discovered doxorubicin inhibits bacterial cell division by targeting FtsZ, a key protein. This finding offers a new strategy for developing novel antibacterial agents to combat rising antibiotic resistance.
Area of Science:
- Microbiology
- Biochemistry
- Drug Discovery
Background:
- Antibiotic resistance is a growing global health threat, necessitating new antibacterial agents.
- FtsZ is a conserved bacterial protein crucial for cell division, making it a potential target for novel therapeutics.
- Small molecules targeting FtsZ function show promise for developing new antibacterial drugs.
Purpose of the Study:
- To identify small molecules that target FtsZ and inhibit bacterial division.
- To explore doxorubicin as a potential antibacterial agent by investigating its interaction with FtsZ.
- To identify a novel binding site on FtsZ for small molecule interaction.
Main Methods:
- Screened a library of 800 U.S. FDA-approved drugs using computational, biochemical, and microbial methods.
- Utilized fluorescence-binding assays and detailed biochemical analyses to study doxorubicin-FtsZ interactions.
- Employed molecular docking and site-directed mutagenesis to identify and validate the doxorubicin-binding site on FtsZ.
Main Results:
- Doxorubicin was identified as an inhibitor of Escherichia coli division, causing filamentous cell formation.
- Doxorubicin demonstrated strong binding to FtsZ, inhibiting its assembly and GTPase activity.
- A novel doxorubicin-binding site on FtsZ was identified, distinct from the GTP-binding site, and mutations here reduced binding affinity.
Conclusions:
- Doxorubicin is a promising lead compound for developing new antibacterial agents targeting FtsZ.
- A novel binding site on FtsZ has been identified, offering a new target for drug screening.
- This study provides a foundation for developing novel antibacterial strategies against resistant bacteria.
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