| Literature DB >> 31234361 |
Cristina Casadidio1, Dolores Vargas Peregrina2, Maria Rosa Gigliobianco3, Siyuan Deng4, Roberta Censi5, Piera Di Martino6.
Abstract
Huge amounts of chitin and chitosans can be found in the biosphere as important constituents of the exoskeleton of many organisms and as waste by worldwide seafood companies. Presently, politicians, environmentalists, and industrialists encourage the use of these marine polysaccharides as a renewable source developed by alternative eco-friendly processes, especially in the production of regular cosmetics. The aim of this review is to outline the physicochemical and biological properties and the different bioextraction methods of chitin and chitosan sources, focusing on enzymatic deproteinization, bacteria fermentation, and enzymatic deacetylation methods. Thanks to their biodegradability, non-toxicity, biocompatibility, and bioactivity, the applications of these marine polymers are widely used in the contemporary manufacturing of biomedical and pharmaceutical products. In the end, advanced cosmetics based on chitin and chitosans are presented, analyzing different therapeutic aspects regarding skin, hair, nail, and oral care. The innovative formulations described can be considered excellent candidates for the prevention and treatment of several diseases associated with different body anatomical sectors.Entities:
Keywords: Chitin; biodegradability; biomaterials; chitosan; cosmetics; green technology; marine cosmetic ingredients; marine green source; marine resources; polysaccharides
Year: 2019 PMID: 31234361 PMCID: PMC6627199 DOI: 10.3390/md17060369
Source DB: PubMed Journal: Mar Drugs ISSN: 1660-3397 Impact factor: 5.118
Figure 1Chemical structure of chitin (a) and chitosan (b) repeat units.
Figure 2Scheme of chitin and chitosan production following chemical methods.
Influence of DD and MW of polysaccharidic formulation on biological activities.
| Effect on Biological Activity | Physicochemical Property |
|---|---|
| Antimicrobial activity | ↑ DD and ↓ MW |
| Antioxidant activity | ↑ DD and ↓ MW |
| Mucoadhesive properties | ↑ DD and ↑ MW |
| Penetration enhancement properties | ↑ DD increased activity, MW is not discriminating |
Chitin and chitosans applications.
| Field | Examples | Ref. | |
|---|---|---|---|
| Industrial Applications | Cosmetics | Biodegradable, biocompatible and nontoxic chitosan microparticles encapsulating jabuticaba peel extract | [ |
| Modified chitosan microparticles containing rosmarinic acid for skin delivery formulations | [ | ||
| Nanoparticles of quaternized cyclodextrin-grafted chitosan associated with hyaluronic acid as promising skin penetration vehicles | [ | ||
| Preventive effect of chitosan oligosaccharide against UV-caused damage in hairless mouse dorsal skin | [ | ||
| Periodontal chitosan gels containing moxifloxacin hydrochloride | [ | ||
| Fluoride loaded chitosan nanoparticles in the prevention of dental caries | [ | ||
| Hydroxyapatite-chitosan sunscreen antibacterial gel for skin health care | [ | ||
| Chitosan and surface-deacetylated chitin nanofibrils induced hair growth | [ | ||
| Agriculture | Gum arabic/chitosan nanoparticles containing geraniol for pest management | [ | |
| Chitosan natural biopolymer as a growth stimulator of rice yield | [ | ||
| Chitosan modified Pt/SiO2 as catalyst for an agricultural synergistic agent | [ | ||
| Antifungal chitosan agent used to control | [ | ||
| Eco-friendly chitosan/basalt hydrogel as soil conditioner and booster of plants growth | [ | ||
| Food and Nutrition | Food packaging made by chitosan-based films with microparticles of olive pomace | [ | |
| Nisin-loaded chitosan-monomethyl fumaric acid nanoparticles as a direct food additive | [ | ||
| Chitosan-TiO2 nanocomposite film as antimicrobial active food packaging | [ | ||
| Chitosan as an alternative food preservative to formalin | [ | ||
| Fish-purified antioxidant peptide-loaded electrospun chitosan/PVA nanofibrous mat for food biopackaging applications | [ | ||
| Tripolyphosphate and chitosan nanoparticles for encapsulation of C, B9, and B12 vitamins | [ | ||
| Starch or chitosan-based matrices carrying thyme extract polyphenols as antioxidant films for food preservation | [ | ||
| Water Engineering – Waste Treatment | Graphene oxide-ionic liquid and magnetic chitosan in heavy metal ion pollution clean-up | [ | |
| Multifunctional nanocomposites of chitosan as contaminant water treatment material | [ | ||
| Antibacterial chitosan chloride-graphene oxide material and/with quartz sand filter media | [ | ||
| Chromatography | [ | ||
| [ | |||
| Chitosan bis(methylphenylcarbamate)-(isobutyrylamide) derivatives as chiral stationary phases for HPLC | [ | ||
| [ | |||
| Paper Industry | Bentonite microparticles/chitosan system for improving the acidic papermaking dry strengths | [ | |
| Chitosan/titanium dioxide nanocomposite as antibacterial protective coating for paper packaging | [ | ||
| Paper wet strength improved with chitosan-based additive using a dipping process | [ | ||
| Chitosan as antitermite in paper making | [ | ||
| Caseinate/chitosan films favor reduction in paper water vapor permeability | [ | ||
| Textile Industry | Series of chitosan-based waterborne polyurethane improve tear strength and antimicrobial activity of polyester cotton dyed and printed fabrics | [ | |
| Chitosan and herbal extract of | [ | ||
| Eco-friendly antimicrobial chitosan-based water dispersible polyurethanes finishes | [ | ||
| Chitin nanofibers for antibacterial finishing application | [ | ||
| Batteries | Chitosan networks crosslinked with citric acid or polymeric carboxylic acids as binders for silicon/graphite composite electrodes in lithium ion batteries | [ | |
| Molybdenum disulfide-coated nitrogen-doped mesoporous carbon sphere/sulfur composite cathode and carbon nanotube/chitosan modified separator promoting lithium sulfur batteries | [ | ||
| Chitosan/epoxidized natural rubber networks by crosslinking as a binder material | [ | ||
| Highly crystalline lithium titanate nanoparticles with N-doped carbon-coating and chitosan (as carbon and nitrogen source) | [ | ||
| Chitosan composite carbon material with high specific electrochemical performance of lead-carbon battery | [ | ||
| Biomedical and Pharmaceutical Applications | Tissue Engineering | Injectable carboxymethyl chitosan conjugated with α-cyclodextrin hydrogel complexed with poly(ethylene glycol) (PEG1000) | [ |
| Electrospun nanofibrous scaffolds containing poly(ε-caprolactone), chitosan, and polypyrrole for neural tissue engineering | [ | ||
| Alginate/chitosan hydrogel for transplantation of olfactory ectomesenchymal stem cells for sciatic nerve tissue engineering (rat model) | [ | ||
| Chitosan–vitamin C–lactic acid composite membrane decorated with glycerol and PEG | [ | ||
| Graphene oxide and amine-modified graphene oxide incorporated into chitosan-gelatin scaffold by covalent linking | [ | ||
| Magnesium oxide-poly(ε-caprolactone)-chitosan-based composite nanofiber by the electrospinning technique | [ | ||
| Scaffolds made with modified hydroxyapatite blended into chitosan-grafted-poly (methyl methacrylate) matrix | [ | ||
| Wound Healing | Collagen/chitosan gel composite supplemented with a cell-penetrating peptide (oligo-arginine R8) with an antibacterial activity | [ | |
| Silver nanoparticles encapsulation into chitosan-based membranes without altering the wound-healing ability | [ | ||
| Rosuvastatin calcium loaded into chitosan hydrochloride scaffolds based with/without mesenchymal stem cells | [ | ||
| Phenytoin nanocapsules and nanoemulsions formulated as chitosan hydrogels for cutaneous use in rats | [ | ||
| Electrospun antibacterial PVA/Chitosan/Starch nanofibrous mats | [ | ||
| Biocompatible and nontoxic PVA/chitosan/nano zinc oxide hydrogels | [ | ||
| Ophthalmology | Chitosan-covered calcium phosphate nanoparticles loaded with timolol and lisinopril | [ | |
| Topical chitosan-N-acetylcysteine for corneal damage in a rabbit model | [ | ||
| Chitosan-N-acetylcysteine (Lacrimera®) in in patients with moderate to severe dry eye disease | [ | ||
| Contact lenses made of poly(2-hydroxyethylmethacrylate) containing chitosan nanoparticles as dexamethasone sodium phosphate delivery system | [ | ||
| Timolol maleate imprinted copolymer of carboxymethyl chitosan-g-hydroxy ethyl methacrylate-g-polyacrylamide incorporated on a poly(2-hydroxyethyl methacrylate) p(HEMA) matrix for glaucoma | [ | ||
| N-Trimethyl Chitosan Nanoparticles loaded with flurbiprofen-hydroxyl propyl-β-cyclodextrin inclusion complex | [ | ||
| Layer-by-layer deposition of chitosan and alginate was used to control drug release from ophthalmic lens materials | [ | ||
| Vaccine | Inactivated avian influenza H5N1 virus vaccine encapsulated in chitosan nanoparticles in broiler chickens | [ | |
| Chitosan-coated poly(lactic-co-glycolic acid) (PLGA) microparticles for intranasal vaccine delivery of hepatitis B surface Antigen | [ | ||
| pH-sensitive microneedle chemically coated with inactivated polio vaccine and N-trimethyl chitosan chloride | [ | ||
| Glycol chitosan nanoparticles for mucosal intranasal administration of hepatitis B vaccine | [ | ||
| Folate-chitosan/ interferon-induced protein-10 gene nanoparticles and DC/tumor fusion vaccine enhanced anti-hepatocellular carcinoma effects in mice | [ | ||
| Drug Delivery | Chitosan-grafted-dihydrocaffeic acid and oxidized pullulan hydrogels | [ | |
| 2-chloro-N,N-diethylethylamine hydrochloride/chitosan pH-responsive nanoparticles as quercetin delivery system for breast cancer treatment | [ | ||
| pH-responsive Carboxymethyl chitosan nanoparticles for doxorubicin hydrochloride-controlled release at pH 4.5 | [ | ||
| Injectable visible light-cured glycol chitosan hydrogel incorporating paclitaxel-/β-cyclodextrin inclusion complex for ovarian cancer therapy | [ | ||
| Methyl methacrylate modified chitosan conjugate by a green method | [ | ||
| Gene Delivery | Quaternized chitins vector synthesized | [ | |
| Organosilane-functionalized chitosan nanoparticles as plox plasmid delivery system | [ | ||
| Chitosan-graft-polyethylenimine (PEI)-PEG gene carrier decorated with arginine-glycine-aspartate/twin-arginine translocation for sustained delivery of NT-3 protein growth factor for neural regeneration | [ | ||
| Targeting ligand conjugated chitosan–PEI copolymer/siRNA polyplexes for cancer therapy | [ | ||
| Liposome encapsulated chitosan nanoparticles for enhanced plasmid DNA delivery | [ |
Figure 3Scheme of chitin and chitosan production following biological methods.