Bio-Based Electrospun Fibers for Wound Healing
Abstract
:1. Introduction
2. Wound Healing
Wound Dressing
3. Electrospinning Process and Its Advantages for Wound Healing Applications
Effect of Electrospinning Parameters on Biological Applications
4. Multifunctional Wound Dressings
4.1. Drug Loaded Electrospun Wound Dressings
4.2. Electrospun Wound Dressings with Antibacterial Activity
4.3. Electrospun Wound Dressings Loaded with Bioactive Molecules
5. Application of Bio-Based Electrospun Fibers in Wound Healing
5.1. Application of Cellulose-Electrospun Nanofibers in Wound Healing (Including Its Composite)
5.2. Application of Chitosan Electrospun Fibers in Wound Healing
5.3. Application of PHA Electrospun Fibers in Wound Healing
5.4. Application of PLA-Based Electrospun Fibers in Wound Healing
6. Translational Approaches
6.1. Drug Delivery Electrospun Fibers
6.2. Clinical Trials of Electrospun Wound Dressings
7. Future Perspective
8. Conclusions
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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Electrospun Mesh | Incorporated Therapeutics | Function & Wound Type | References |
---|---|---|---|
Cellulose acetate (CA)/Manuka honey (MH) | - | Antibacterial activity for infection in the burn wounds | [37] |
CA/polyester urethane | Polyhexamethylene biguanide (PHMB) | Antimicrobial activity | [110] |
Chitosan/bacterial nano cellulose | - | Antimicrobial properties | [122] |
Chitosan/silk fibroin | - | Antibacterial properties Acute wounds | [121] |
Chitosan/sericin | - | Biocompatibility and antibacterial properties | [120] |
Chitosan/Poly (l-lactide) (PLLA) | Graphene oxide | Antimicrobial activities for chronic infected wounds | [50] |
Chitosan/keratin/polycaprolactone (PCL) | Aloevera extract | Anti-inflammatory, antibacterial, antiviral, and antioxidant properties for acute and burn wounds | [35] |
Chitosan/Polyvinyl alcohol (PVA) | Nanobioglass (nBG) | Biocompatibility, antibacterial activity and regeneration promotion effect for chronic wound | [5] |
Gelatin/Oleoyl chitosan | - | Large skin defects or chronic wounds | [123] |
Polyhydroxyalkanoate (PHA) | Dodecyltrimethylammonium chloride (DTAC) biocide | Antimicrobial effects for chronic wounds | [160] |
PHA | Graphene/decorated silver nanoparticles (GAg) | Antimicrobial activity for chronic wounds | [141] |
Poly (3-hydroxybutyrate-co-3-hydroxyvalerate) (PHBV) | Cerium Oxide Nanoparticle | Antioxidant and angiogenic properties Diabetic wounds | [8] |
PHBV | Cerium oxide nanoparticles (nCeO2) | Antioxidant and angiogenic properties for diabetic wounds | [8] |
PHBV | Curcumin | Antioxidant, anti-inflammatory, and antitumor properties chronic wounds including burns, diabetic foot ulcers, venous leg ulcers, and pressure ulcers | [39] |
PHBV/cellulose | ZnO nanocrystals | Antibacterial activity for acute and infected wounds | [154] |
Polylactides (PLA) | AgNPs | Antimicrobial activity for burn wounds and diabetic ulcers | [87] |
PLA | Curcumin, Enrofloxacin | Antioxidant activity, antimicrobial activity, and biocompatibility | [70] |
PLA | Doxycycline (DCH) | Antibacterial activity, Chronic wounds, diabetic wounds | [42] |
PLA | Silver (I) metal–organic framework Ag2[HBTC][im] | Antibacterial feature | [10] |
PLLA | Curcumin | Anti-inflammatory antioxidant effects | [166] |
PLA/hyperbranched polyglycerol (HPG) | Curcumin | Antioxidant, anti-inflammatory and anti-infective properties for acute and chronic wound | [31] |
PLA/PVA | Connective tissue growth factor (CTGF) | Diabetic wounds | [165] |
poly(lactic-co-glycolic acid) (PLGA)/gelatin | Recombinant human epidermal growth factor (rhEGF), gentamicin sulfate | - Antibacterial activity and rhEGF supply - Diabetic wound | [90] |
PLGA/polydopamine | Basic fibroblast growth factor (bFGF), ponericin G1 | Antibacterial and cell proliferation-promoting properties for skin tissue regeneration | [89] |
Product | Polymer | Device | Current Status | Case Studie or Clinical Trial Performed/Ongoing | References |
---|---|---|---|---|---|
Pathon | Polyurethane | Composite mesh, NO drug delivery | Clinical trial | Two double blind, randomized controlled clinical trials | [182,183] |
Tecophilic™ | Polyurethane-PEG | Photosensitizing-loaded mesh | Clinical trial | Comparative, 3-group based study over a total of 162 patients | [184] |
SurgiCLOT® | Dextran | Fibrin Sealant Patch | On the market | Clinical safety and performance study in UK and Norway, Clinical safety and performance study in India, Pre-clinical comparative study of bone bleeding treated with SurgiCLOT® and standard gauze, Pre-clinical Performance study of SurgiCLOT® compared to Dextran-only dressing | [181,185,186,187,188] |
SpinCare™ | Various electrospinnable polymers | Portable electrospinning wound dressing device | On the market | Donor site wound single case Partial thickness burns single case | [189,190,191] |
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Azimi, B.; Maleki, H.; Zavagna, L.; De la Ossa, J.G.; Linari, S.; Lazzeri, A.; Danti, S. Bio-Based Electrospun Fibers for Wound Healing. J. Funct. Biomater. 2020, 11, 67. https://doi.org/10.3390/jfb11030067
Azimi B, Maleki H, Zavagna L, De la Ossa JG, Linari S, Lazzeri A, Danti S. Bio-Based Electrospun Fibers for Wound Healing. Journal of Functional Biomaterials. 2020; 11(3):67. https://doi.org/10.3390/jfb11030067
Chicago/Turabian StyleAzimi, Bahareh, Homa Maleki, Lorenzo Zavagna, Jose Gustavo De la Ossa, Stefano Linari, Andrea Lazzeri, and Serena Danti. 2020. "Bio-Based Electrospun Fibers for Wound Healing" Journal of Functional Biomaterials 11, no. 3: 67. https://doi.org/10.3390/jfb11030067
APA StyleAzimi, B., Maleki, H., Zavagna, L., De la Ossa, J. G., Linari, S., Lazzeri, A., & Danti, S. (2020). Bio-Based Electrospun Fibers for Wound Healing. Journal of Functional Biomaterials, 11(3), 67. https://doi.org/10.3390/jfb11030067