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Microparticles Based On Poly(Sebacic Acid) And Poly(3-Allyloxy-1,2-Propylene Succinate) As Azithromycin Delivery Systems

  • AGH University of Krakow
  • Jagiellonian University Medical College

Research output: Chapter in Book/Report/Conference proceedingConference contributionpeer-review

Abstract

Due to limitations of conventional systemic drug administration, more and more attention is paid to targeted drug delivery, which may assure increased drug concentration in a required place and simultaneously to decrease the risk of systemic side effects occurrence. It has been shown that drug encapsulation may improve treatment efficiency by controlling drug release kinetics [1]. Degradable polymers are particularly suitable candidates for drug carriers. In some applications, such as local infection treatment, rapid degradation of polymers to nontoxic monomers and fast antibiotic release are very important. Polyanhydrides are hydrolytically liable polymers, which degradation time can be modulated from days to months by varying the type and ratio of monomers used in their synthesis [2], [3]. In this study we were focused on copolymers of poly(sebacic acid) (PSA) and poly(3-allyloxy-1,2-propylene succinate) (OSAGE) terminated with carboxyl groups, which were synthesised by polycondensation [4]. We manufactured microparticles (MPs) from the copolymers PSAOSAGE in different feed ratios (90:10, 80:20, 60:40 w/w; PSAOSAGE90, PSAOSAGE80, PSAOSAGE60, respectively) loaded with azithromycin. To obtain MPs the oil-in-water emulsification method was used. The oil phase was prepared by dissolution of polymer and azithromycin in dichloromethane (DCM) to obtain a concentration of 2% w/v and 0.4% w/v, respectively. The water phase contained 8% poly(vinyl alcohol) as an emulsion stabiliser. The microparticles were prepared by dropwise addition of 3 ml of the oil phase to 20 ml of the water phase under constant magnetic stirring of 1500 rpm. The obtained emulsions were left on the magnetic stirrer for 4 h to evaporate DCM and form MPs. The MPs suspension was centrifuged at 15000 rpm followed by washing in ultrapure water three times. The purified microparticles were frozen and then freeze-dried. MPs size was measured using ImageJ software based on optical microscope images. The efficiency of azithromycin encapsulation was evaluated by high performance liquid chromatography (HPLC) with a diode array spectrophotometric detector. The degradation study was carried out by incubation of MPs in phosphate buffer saline (PBS) at 37 ° C. After 3, 24, 48, 72 and 96 h, the pH of PBS was measured and the mass of the remaining MPs was assessed. Antimicrobial properties of azithromycin-laded MPs was assessed by the Kirkby-Bauer test on MRSA strains.

Original languageEnglish
Title of host publicationProceedings of the 8th World Congress on Recent Advances in Nanotechnology, RAN 2023
EditorsWolfgang Ensinger, Josef Jampilek
PublisherAvestia Publishing
ISBN (Print)9781990800160
DOIs
Publication statusPublished - 2023
Event8th World Congress on Recent Advances in Nanotechnology, RAN 2023 - Lisbon, Portugal
Duration: 23 Mar 202325 Mar 2023

Publication series

NameWorld Congress on Recent Advances in Nanotechnology
ISSN (Electronic)2371-5308

Conference

Conference8th World Congress on Recent Advances in Nanotechnology, RAN 2023
Country/TerritoryPortugal
CityLisbon
Period23/03/2325/03/23

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 3 - Good Health and Well-being
    SDG 3 Good Health and Well-being

ASJC Scopus subject areas

  • Biotechnology
  • Biomedical Engineering
  • Mechanical Engineering
  • Management, Monitoring, Policy and Law
  • Pollution
  • Biomaterials
  • Modeling and Simulation
  • Histology

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