Chitosan is a positively charged natural polymer with several properties conducive to wound-healing applications, such as biodegradability, structural integrity, hydrophilicity, adhesiveness to tissue, and bacteriostatic potential. Along with other mechanical properties, some of the properties discussed in this review are antibacterial properties, mucoadhesive properties, biocompatibility, high fluid absorption capacity, and anti-inflammatory response. Chitosan forms stable complexes with oppositely charged polymers, arising from electrostatic interactions between (+) amino groups of chitosan and (-) groups of other polymers. These polyelectrolyte complexes (PECs) can be manufactured using various materials and methods, which brings a diversity of formulations and properties that can be optimized for specific wound healing as well as other applications. For example, chitosan-based PEC can be made into dressings/films, hydrogels, and membranes. There are various pros and cons associated with manufacturing the dressings; for instance, a layer-by-layer casting technique can optimize the nanoparticle release and affect the mechanical strength due to the formation of a heterostructure. Furthermore, chitosan's molecular weight and degree of deacetylation, as well as the nature of the negatively charged biomaterial with which it is cross-linked, are major factors that govern the mechanical properties and biodegradation kinetics of the PEC dressing. The use of chitosan in wound care products is forecasted to drive the growth of the global chitosan market, which is expected to increase by approximately 14.3% within the next decade. This growth is driven by products such as chitoderm-containing ointments, which provide scaffolding for skin cell regeneration. Despite significant advancements, there remains a critical gap in translating chitosan-based biomaterials from research to clinical applications.
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http://dx.doi.org/10.3390/jfb16020045 | DOI Listing |
PLoS One
March 2025
Faculty of Infectious and Tropical Diseases, London School of Hygiene and Tropical Medicine, London, United Kingdom.
The discovery of novel anti-leishmanial compounds is essential due to the limitations of current treatments and the lack of new drugs in development. In this study, we employed the Quasi Vivo 900 medium perfusion system (QV900, Kirkstall Ltd, UK) to simulate physiological fluid flow, allowing us to compare macrophage responses and therapeutic outcomes under dynamic versus static conditions. After 24 hours, phagocytosis and macropinocytosis decreased in all cell types under flow conditions compared to static cultures.
View Article and Find Full Text PDFACS Omega
March 2025
Department of Biology, Faculty of Science, Arak University, Arak 38156-8-8349, Iran.
Prolonged exposure to ultraviolet (UV) radiation can cause erythema, sunburn, inflammation, and even skin cancer. Sunscreen is highly effective in protecting against UV radiation. Hydrogels, due to their similarity to the skin's extracellular matrix, flexibility, and high water content, have been widely used for sunscreen applications.
View Article and Find Full Text PDFFood Res Int
April 2025
Jilin Provincial Key Laboratory of Nutrition and Functional Food, College of Food Science and Engineering, Jilin University, Changchun 130062, China.
Efficient oral coassembly strategies have attracted increasing attention for the preferable co-delivery of multiple nutraceuticals. Inspired by superior transport tendencies of the intestinal glucose transporter 2 (GLUT2) to fructose-modified biopolymers, this study fabricated the coassemblies consisting of fructose-modified chitosan (Fru-CS) shell and disulfonic acid-modified γ-cyclodextrin (BA-γ-CD) core to effectively co-deliver hydrophilic egg white oligopeptides (EWOP) and hydrophobic curcumin (Cur). The non-covalent interactions-driven coassemblies exhibited the admirable nanoscale colloidal features and nutraceuticals (EWOP/Cur) co-loading capacity (20.
View Article and Find Full Text PDFInt J Biol Macromol
March 2025
College of Material Science And Engineering, Inner Mongolia University of Science and Technology, Baotou 014010, PR China.
Nowadays, efficient harnessing of heavy metal contamination is an urgent environmental task. Herein, magnetic bio adsorbent FeO-graphene oxide-chitosan composite (FGOC) was constructed via one step solvothermal procedure for adsorptive recovery of Ni(II). Subsequently, interaction mechanism between FGOC and Ni(II) was deeply elucidated via combining adsorption fitting, the hard-soft acid-base (HSAB) theory calculation and spectroscopic analysis (XPS, UV-Vis and fluorescent emission spectra).
View Article and Find Full Text PDFSci Rep
March 2025
Department of Packaging Engineering, Henan University of Science and Technology, Luoyang, China.
In order to prepare a chitosan-based antibacterial film with excellent mechanical properties and study its properties, the tape casting method was used to prepare the composite film from chitosan, glycerin and thyme essential oil. Through single factor test and response surface optimization test, the tensile strength and elongation at break were used as response indicators to prepare the composite film with better mechanical properties, and the physical properties, water vapor permeability, solubility and bacteriostasis of the composite film were measured, and the characterization of the microstructure of the composite films. The results showed that the optimized composite film ratio was 1.
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