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Multifunctional Nanofibrous Dressing with Antimicrobial and Anti-Inflammatory Properties Prepared by Needle-Free Electrospinning

Overview
Journal Pharmaceutics
Publisher MDPI
Date 2021 Sep 28
PMID 34575602
Citations 9
Authors
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Abstract

An active wound dressing should address the main goals in wound treatment, which are improved wound healing and reduced infection rates. We developed novel multifunctional nanofibrous wound dressings with three active ingredients: chloramphenicol (CAM), beta-glucan (βG) and chitosan (CHI), of which βG and CHI are active nanofiber-forming biopolymers isolated from the cell walls of and from shrimp shells, respectively. To evaluate the effect of each active ingredient on the nanofibers' morphological features and bioactivity, nanofibers with both βG and CHI, only βG, only CHI and only copolymers, polyethylene oxide (PEO) and hydroxypropylmethylcellulose (HPMC) were fabricated. All four nanofiber formulations were also prepared with 1% CAM. The needle-free Nanospider technique allowed for the successful production of defect-free nanofibers containing all three active ingredients. The CAM-containing nanofibers had a burst CAM-release and a high absorption capacity. Nanofibers with all active ingredients (βG, CHI and CAM) showed a concentration-dependent anti-inflammatory activity, while maintaining the antimicrobial activity of CAM. The promising anti-inflammatory properties, together with the high absorption capacity and antimicrobial effect, make these multifunctional nanofibers promising as dressings in local treatment of infected and exuding wounds, such as burn wounds.

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References
1.
Stie M, Gatke J, Wan F, Chronakis I, Jacobsen J, Nielsen H . Swelling of mucoadhesive electrospun chitosan/polyethylene oxide nanofibers facilitates adhesion to the sublingual mucosa. Carbohydr Polym. 2020; 242:116428. DOI: 10.1016/j.carbpol.2020.116428. View

2.
Ousey K, Cutting K, Rogers A, Rippon M . The importance of hydration in wound healing: reinvigorating the clinical perspective. J Wound Care. 2016; 25(3):122, 124-30. DOI: 10.12968/jowc.2016.25.3.122. View

3.
Jeschke M, van Baar M, Choudhry M, Chung K, Gibran N, Logsetty S . Burn injury. Nat Rev Dis Primers. 2020; 6(1):11. PMC: 7224101. DOI: 10.1038/s41572-020-0145-5. View

4.
Peh K, Khan T, Chng H . Mechanical, bioadhesive strength and biological evaluations of chitosan films for wound dressing. J Pharm Pharm Sci. 2001; 3(3):303-11. View

5.
Boateng J, Catanzano O . Advanced Therapeutic Dressings for Effective Wound Healing--A Review. J Pharm Sci. 2015; 104(11):3653-3680. DOI: 10.1002/jps.24610. View