Engineered Nanotechnology: An Effective Therapeutic Platform for the Chronic Cutaneous Wound
Abstract
:1. Introduction
2. Wound-Healing Paradigm
3. Impact of Biofilms on Wounds
4. Limitations in Wound Care
5. Nanoparticles as Antimicrobials
6. Nanoparticles in Chronic Wound Treatment
7. Nanoplatforms against Wound Biofilms
7.1. Organic Nanoplatforms
7.1.1. Nanoemulsions
7.1.2. Biopolymer NPs
7.1.3. Synthetic Polymer NPs
7.2. Inorganic Nanoplatforms
7.2.1. Metal NPs
Metal Oxide
Magnetic
7.2.2. Non-Metallic
8. Nanotechnology in Regeneration
8.1. Intrinsic Regenerative Properties
8.2. Transdermal Nanocarriers
8.3. Nano Scaffold Tissue Engineering
8.4. Nanotopography in Prevention of Biofilm
Mode of Action | Nanosystem | In Vivo Wound System | Effect | Reference |
---|---|---|---|---|
Intrinsic property | Fullerene derivatives | Phorbol 12-myristate 13-acetate- induced mouse wounds. | Accelerated wound healing with drastic re-epitheliation with scabbing along with new hair growth. | [236] |
Cerium Oxide NPs | 4mm diameter biopsy induced full-thickness dermal wounds in male C57BL/6 mice. | Antioxidant nature. Improved proliferation–migration of mice fibroblasts, human keratinocytes and vascular endothelial cells. Complete wound closure by 13th day. | [237] | |
Zinc oxide NPs | Full-thickness incisions in male Ncr nude mice. | Antimicrobial tissue adhesion. Proliferation of fibroblast cells and wound closure by the 8th day. | [238] | |
Levofloxacin nanoemulsion gel | Full-thickness incisions in S. aureus-infected Streptozotocin-induced diabetic rats. | Rapid wound contraction and epithelization. Reduced inflammatory cells and biocompatibility. High induction of collagen synthesis and CD31 and TGF-β intensity. | [239] | |
Nanocarriers | Polyamido amine (PAMAM) dendrimer-coated stem cell surface added with E-selectin. | Surgically induced cutaneous and corneal wounds. | Customized delivery of stem cells and homing of required healing tissues. Non-toxic biocompatible mechanism. Improved proangiogenic effects and neovasuclarization. | [240] |
rhEGF-loaded lipid NPs (LNPs) | Biopsy induced full-thickness wounds of 0.8 cm diameter among genetically diabetic db/db mice. | Higher encapsulation efficiency in solid LNPs than nanostructured LNPs. Topical administration enhances wound closure. Improved re-epithelialization. | [241] | |
NO-releasing hydrogel-glass composite | Biopsy-induced BALB/c mice full-thickness wound. | Wound closure by 12th day. Low inflammation, intact structural-morphological characteristics and elevated in vivo NO levels, neutrophil infiltration and angiogenesis. | [242] | |
Rosmaric acid-loaded chitosan nanoparticles incorporated in carbopol 940 hydrogel. | 2 cm2 area induced excision wound in Wistar rats. | Extended drug release up to 14 hrs. Complete wound closure by 21st day. Compatible with skin. | [243] | |
Nano Scaffolds | Chitosan–PVA nanofibers containing graphene. | 1 × 1 cm2 induced Male C57/BL mouse and 2 × 2 cm2-induced van Beveren rabbit excision wound model. | Healing by 15 and 10 days, respectively. | [244] |
Polyvinyl alcohol capped silver nanocomposites impregnated in chitosan-agarose matrix. | Excision wound in Wistar rats. | Biocompatible, bio effective, anti-inflammatory scaffold with angiogenic properties. Tissue regeneration efficiency by complete collagen and fibroblast development. A 95% healing within 9 days. | [245] | |
Poly lactic acid/chitosan nano scaffolds | Induced diabetic male rat model. | Biocompatible, biodegradable, moisture-retaining scaffold. Wound healing observed after 14th day. | [246] | |
Aloe vera-polycaprolactone nanoscaffold impregnated with green fluorescent protein labeled Wharton’s jelly of human umbilical cords or its conditioned medium. | Mice excisional and diabetic wound model. | Increased fibroblasts migration, secretion of fibronectin, superoxide dismutase, collagen I and III, elastin, keratinocyte markers and metalloproteinase-1 along with increased expression of ICAM-1, VEGF-A and TIMP-1. Rapid wound closure with increased hair follicles and sebaceous glands. | [212] |
9. Intelligent Nanotechnology
9.1. Wound Healing
9.1.1. Physically Responsive Nanomaterials
9.1.2. Chemically Responsive Nanomaterials
9.1.3. Bio-Responsive Nanomaterial
9.2. Anti-Microbial Wound Care
10. Advanced Nanotechnology
10.1. Wireless Monitoring
10.2. Artificial Intelligence
11. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Conflicts of Interest
References
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Mallick, S.; Nag, M.; Lahiri, D.; Pandit, S.; Sarkar, T.; Pati, S.; Nirmal, N.P.; Edinur, H.A.; Kari, Z.A.; Ahmad Mohd Zain, M.R.; et al. Engineered Nanotechnology: An Effective Therapeutic Platform for the Chronic Cutaneous Wound. Nanomaterials 2022, 12, 778. https://doi.org/10.3390/nano12050778
Mallick S, Nag M, Lahiri D, Pandit S, Sarkar T, Pati S, Nirmal NP, Edinur HA, Kari ZA, Ahmad Mohd Zain MR, et al. Engineered Nanotechnology: An Effective Therapeutic Platform for the Chronic Cutaneous Wound. Nanomaterials. 2022; 12(5):778. https://doi.org/10.3390/nano12050778
Chicago/Turabian StyleMallick, Suhasini, Moupriya Nag, Dibyajit Lahiri, Soumya Pandit, Tanmay Sarkar, Siddhartha Pati, Nilesh Prakash Nirmal, Hisham Atan Edinur, Zulhisyam Abdul Kari, Muhammad Rajaei Ahmad Mohd Zain, and et al. 2022. "Engineered Nanotechnology: An Effective Therapeutic Platform for the Chronic Cutaneous Wound" Nanomaterials 12, no. 5: 778. https://doi.org/10.3390/nano12050778
APA StyleMallick, S., Nag, M., Lahiri, D., Pandit, S., Sarkar, T., Pati, S., Nirmal, N. P., Edinur, H. A., Kari, Z. A., Ahmad Mohd Zain, M. R., & Ray, R. R. (2022). Engineered Nanotechnology: An Effective Therapeutic Platform for the Chronic Cutaneous Wound. Nanomaterials, 12(5), 778. https://doi.org/10.3390/nano12050778