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Published on: February 9, 2019
Effect of PEG and water-soluble chitosan coating on moxifloxacin-loaded PLGA long-circulating nanoparticles
Sanaul Mustafa1, V Kusum Devi2, Roopa S Pai1
1Pharmaceutics Division, Faculty of Pharmacy, Al-Ameen College of Pharmacy, Near Lal Bagh Main gate, Hosur Road, Bangalore, Karnataka, 560027, India.
Abstract:
Moxifloxacin (MOX) is a Mycobacterium tuberculosis DNA gyrase inhibitor. Due to its intense hydrophilicity, MOX is cleared from the body within 24 h and required for repetitive doses which may then result in hepatotoxicity and acquisition of MOX resistant-TB, related with its use. To overcome the aforementioned limitations, the current study aimed to develop PLGA nanoparticles (PLGA NPs), to act as an efficient carrier for controlled delivery of MOX. To achieve a substantial extension in blood circulation, a combined design, affixation of polyethylene glycol (PEG) to MOX-PLGA NPs and adsorption of water-soluble chitosan (WSC) (cationic deacetylated chitin) to particle surface, was rose for surface modification of NPs. Surface modified NPs (MOX-PEG-WSC NPs) were prepared to provide controlled delivery and circulate in the bloodstream for an extended period of time, thus minimizing dosing frequency. In vivo pharmacokinetic and in vivo biodistribution following oral administration were investigated. NP surface charge was closed to neutral +4.76 mV and significantly affected by the WSC coating. MOX-PEG-WSC NPs presented striking prolongation in blood circulation, reduced protein binding, and long-drawn-out the blood circulation half-life with resultant reduced liver sequestration vis-à-vis MOX-PLGA NPs. The studies, therefore, indicate the successful formulation development of MOX-PEG-WSC NPs that showed sustained release behavior from nanoparticles which indicates low frequency of dosing.
Insights
This study developed modified nanoparticles for moxifloxacin (MOX) delivery, extending its circulation time and reducing dosing frequency. The novel MOX-PEG-WSC nanoparticles offer a promising approach for treating Mycobacterium tuberculosis infections.
Area of Science:
- Pharmaceutical Nanotechnology
- Drug Delivery Systems
- Antimicrobial Research
Background:
- Moxifloxacin (MOX), a DNA gyrase inhibitor, faces limitations due to rapid clearance and potential toxicity.
- Frequent dosing of MOX can lead to hepatotoxicity and the development of resistant Mycobacterium tuberculosis strains.
Purpose of the Study:
- To develop PLGA nanoparticles (NPs) for controlled delivery of MOX.
- To enhance MOX circulation time and reduce dosing frequency through surface modification of NPs.
Main Methods:
- Formulation of PLGA nanoparticles loaded with MOX.
- Surface modification of MOX-PLGA NPs with polyethylene glycol (PEG) and water-soluble chitosan (WSC).
- In vivo pharmacokinetic and biodistribution studies following oral administration of MOX-PEG-WSC NPs.
Main Results:
- MOX-PEG-WSC NPs exhibited prolonged blood circulation and extended half-life compared to MOX-PLGA NPs.
- Surface modification with WSC resulted in near-neutral NP surface charge (+4.76 mV).
- Reduced liver sequestration and sustained drug release were observed with the modified nanoparticles.
Conclusions:
- Successful development of MOX-PEG-WSC nanoparticles for sustained drug delivery.
- The modified nanoparticles demonstrate potential for reduced dosing frequency and improved therapeutic outcomes.
- This formulation offers a promising strategy to overcome MOX limitations in treating Mycobacterium tuberculosis.
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