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Updated: Sep 15, 2026

Surface Functionalization of Metal-Organic Frameworks for Improved Moisture Resistance
Published on: September 5, 2018
Synthesis of chitosan coated metal organic frameworks (MOFs) for increasing vancomycin bactericidal potentials
Iqra Ghaffar1, Muhammad Imran2, Samina Perveen1
1H.E.J. Research Institute of Chemistry, International Center for Chemical and Biological Sciences (ICCBS), University of Karachi, Pakistan.
Abstract:
Multiple drug resistant (MDR) has become a major issue in developing countries. MDR bacterial infections lead to significant increase in morbidity, mortality and cost of prolonged treatments. Therefore, designing of strategies for improving the antimicrobial potential of the therapeutic agents are highly required. Metal organic frameworks (MOFs) are highly tunable hybrid material, consist of metal ions linked together by organic bridging ligands have been used as an efficient drug delivery carrier because of their biodegradability, low toxicity and structure integrity upon loading and functionalizing process. Current study was based on the synthesis of chitosan coated MOFs with enhanced contact with S. aureus cell surface. Chitosan is deacetylated derivative of chitin and capable for non-bonding interaction with negatively charged bacterial cell leading to enhanced contact of MOFs with S. aureus. Chitosan coated MOFs were characterized with various techniques such as atomic force microscopy, scanning electron microscopy, DLS, FT-IR, TGA, DSC and Powder X-ray diffraction. They were also studied for their efficacy on resistant S. aureus, results revealed that Vancomycin bactericidal activity significantly increased upon loading in chitosan coated MOFs and caused increased inhibition of resistant S. aureus. AFM analysis of S. aureus strains clearly revealed complete distortion of morphology by treating with chitosan modified drug loaded MOFs. Findings of the current study suggest the potential of chitosan coated MOFs for reversing bacterial resistance against Vancomycin and provide new perspectives for improved antibiotic therapy of infections associated with MDR.
Insights
Chitosan coated metal-organic frameworks (MOFs) enhance Vancomycin
Area of Science:
- Biomaterials Science
- Nanotechnology
- Infectious Diseases
Background:
- Multiple drug resistance (MDR) is a critical global health challenge, particularly in developing nations.
- Bacterial infections caused by MDR strains lead to increased morbidity, mortality, and healthcare costs.
- Novel strategies are essential to enhance the efficacy of existing antimicrobial agents.
Purpose of the Study:
- To synthesize chitosan-coated metal-organic frameworks (MOFs) for improved interaction with bacterial cell surfaces.
- To evaluate the enhanced antimicrobial activity of Vancomycin loaded into these modified MOFs against resistant Staphylococcus aureus (S. aureus).
Main Methods:
- Synthesis of chitosan-coated MOFs.
- Characterization using Atomic Force Microscopy (AFM), Scanning Electron Microscopy (SEM), DLS, FT-IR, TGA, DSC, and Powder X-ray diffraction.
- Assessment of Vancomycin efficacy against resistant S. aureus strains loaded within the chitosan-coated MOFs.
Main Results:
- Chitosan coating enhanced MOF interaction with S. aureus.
- Vancomycin loaded in chitosan-coated MOFs showed significantly increased bactericidal activity against resistant S. aureus.
- AFM analysis confirmed significant morphological distortion of S. aureus upon treatment.
Conclusions:
- Chitosan-coated MOFs show potential in reversing bacterial resistance to Vancomycin.
- This approach offers new perspectives for developing improved antibiotic therapies against multidrug-resistant infections.
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