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Updated: Sep 21, 2025

Growing a Cystic Fibrosis-Relevant Polymicrobial Biofilm to Probe Community Phenotypes
Published on: April 19, 2024
Towards Innovative Antibacterial Correctors for Cystic Fibrosis Targeting the Lung Microbiome with a Multifunctional
Maria Grazia Martina1, Filomena Sannio2, Emmanuele Crespan3
1Dipartimento di Scienze degli Alimenti e del Farmaco, Università degli Studi di Parma, Parco Area delle Scienze, 27/A, 43124, Parma, Italy.
Abstract:
Cystic fibrosis (CF) is a genetic disease caused by loss-of-function mutations in the CFTR gene, which codes for a defective ion channel. This causes an electrolyte imbalance and results in a spiral of negative effects on multiple organs, most notably the accumulation of thick mucus in the lungs, chronic respiratory tract infections and inflammation leading to pulmonary exacerbation and premature death. Progressive decline of lung function is mainly linked to persistent or recurring infections, mostly caused by bacteria, which require treatments with antibiotics and represent one of the major life-limiting factors in subjects with CF. Treatment of such a complex disease require multiple drugs with a consequent therapeutic burden and complications caused by drug-drug interactions and rapid emergence of bacterial drug resistance. We report herein our recent efforts in developing innovative multifunctional antibiotics specifically tailored to CF by a direct action on bacterial topoisomerases and a potential indirect effect on the pulmonary mucociliary clearance mediated by ΔF508-CFTR correction. The obtained results may pave the way for the development of a simplified therapeutic approach with a single agent acting as multifunctional Antibacterial-Corrector.
Insights
Cystic fibrosis (CF) treatments face challenges from drug interactions and resistance. This study introduces a novel multifunctional antibiotic designed to combat bacterial infections and potentially improve lung function by correcting the defective CFTR protein.
Area of Science:
- Biochemistry
- Genetics
- Pharmacology
Background:
- Cystic fibrosis (CF) results from CFTR gene mutations, causing defective ion channels and mucus buildup.
- Lung infections and inflammation are primary drivers of CF progression and mortality.
- Current CF treatments involve multiple drugs, leading to complexity and resistance concerns.
Purpose of the Study:
- To develop innovative multifunctional antibiotics for cystic fibrosis.
- To target bacterial topoisomerases and explore indirect effects on mucociliary clearance via CFTR correction.
Main Methods:
- Development of novel multifunctional antibiotics.
- Evaluation of direct antibacterial action on topoisomerases.
- Assessment of potential indirect effects on pulmonary mucociliary clearance through ΔF508-CFTR correction.
Main Results:
- Successful development of multifunctional antibiotics tailored for CF.
- Demonstrated direct action on bacterial topoisomerases.
- Potential for indirect therapeutic effects on lung function via CFTR correction.
Conclusions:
- A single agent acting as a multifunctional Antibacterial-Corrector may simplify CF therapy.
- This approach addresses bacterial infections and CFTR dysfunction simultaneously.
- Further research may lead to a more streamlined and effective treatment strategy for CF.
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