Please wait a minute...
Frontiers of Materials Science

ISSN 2095-025X

ISSN 2095-0268(Online)

CN 11-5985/TB

Postal Subscription Code 80-974

2018 Impact Factor: 1.701

Front. Mater. Sci.    2024, Vol. 18 Issue (3) : 240691    https://doi.org/10.1007/s11706-024-0691-y
Design and fabrication of smart functional hydrogel wound dressing for diabetic foot ulcer
Yufei Wang1, Dandan Hou2, Hui Zhao3(), Xue Geng1, Xin Wu4(), Gaobiao Li4, Fei Sha4, Zengguo Feng1, Zongjian Liu5(), Lin Ye1()
1. School of Materials Science and Engineering, Beijing Institute of Technology, Beijing 100081, China
2. SINOPEC Beijing Research Institute of Chemical Industry, Beijing 100013, China
3. Department of Vascular Surgery, Beijing Luhe Hospital, Capital Medical University, Beijing 101100, China
4. Department of Vascular Surgery, Wangjing Hospital, China Academy of Chinese Medical Sciences, Beijing 100102, China
5. Beijing Rehabilitation Hospital, Capital Medical University, Beijing 100044, China
 Download: PDF(7113 KB)   HTML
 Export: BibTeX | EndNote | Reference Manager | ProCite | RefWorks
Abstract

Diabetic foot ulcer (DFU) often evolves into chronic wounds that resist healing over an extended period, sometimes necessitating amputation in severe cases. Traditional wound management approaches generally fail to control these chronic sores successfully. Thus, it arouses a huge demand in clinic for a novel wound dressing to treat DFU effectively. Hydrogel as an ideal delivery system exhibits excellent loading capacity and sustainable release behavior. It also boasts tunable physical and chemical properties adaptable to diverse biomedical scenarios, making it a suitable material for fabricating functional wound dressings to treat DFU. The hydrogel dressings are classified into hemostatic, antibacterial and anti-inflammatory, and healing-promoting hydrogel dressings by associating the pathogenesis of DFU in this paper. The design and fabrication strategies for the dressings, as well as their therapeutic effects in treating DFU, are extensively reviewed. Additionally, this paper highlights future perspectives of multifunctional hydrogel dressings in DFU treatment. This review aims to provide valuable references for material scientists to design and develop hydrogel wound dressings with enhanced capabilities for DFU treatment, and to further translate them into the clinic in the future.

Keywords hydrogel dressing      multifunction      design      fabrication      diabetic foot ulcer     
Corresponding Author(s): Hui Zhao,Xin Wu,Zongjian Liu,Lin Ye   
Issue Date: 06 August 2024
 Cite this article:   
Yufei Wang,Dandan Hou,Hui Zhao, et al. Design and fabrication of smart functional hydrogel wound dressing for diabetic foot ulcer[J]. Front. Mater. Sci., 2024, 18(3): 240691.
 URL:  
https://academic.hep.com.cn/foms/EN/10.1007/s11706-024-0691-y
https://academic.hep.com.cn/foms/EN/Y2024/V18/I3/240691
Fig.1  Four processes of wound healing in patients with DFU (Created with BioRender).
Fig.2  Natural polysaccharides and drug molecules for the construction of multifunctional hydrogel dressings (Created with BioRender).
Fig.3  The preparation process and the principle of composite gelatin/CS/Ag. Reproduced with permission from Ref. [91].
Fig.4  Preparation of antibiotics conjugated dextran-PEG hydrogel and synthesis of antibiotics conjugated PEG. Reproduced with permission from Ref. [100].
Fig.5  Synthesis procedures of the G-PAGL hydrogel further applications in DFU dressing and schematic diagram of the antibacterial mechanism. Reproduced with permission from Ref. [104].
Fig.6  Schematic diagram of GelMA/SFMA/MSN-RES/PDEVs hydrogel preparation and application: (a) schematic of the modification of the gelatin molecule with MA; (b) schematic modification of a silk fibroin molecule with GMA; (c) schematic showing the preparation of GelMA/SFMA/MSN-RES/PDEVs hydrogels used as a dressing for wounds in a diabetic mouse model. Reproduced with permission from Ref. [114].
Fig.7  Schematic diagram of the preparation of glucose-responsive metal–organic hydrogel and its mechanism of repairing diabetic skin wounds. Reproduced with permission from Ref. [123].
Fig.8  (a) Schematic diagram of the preparation of multifunctional hydrogel. (b) Schematic diagram of intelligent wound monitoring with multifunctional hydrogel as wound dressing, including wound recognition, real-time status monitoring, and personalized wound management. Reproduced with permission from Ref. [125].
Fig.9  The method of fabricating and processing hydrogel dressings for DFU (created with BioRender).
1 M, Narjis M, Noreen S Z, Safi et al.. Cross talk between complete blood count and progression of type II diabetes mellitus.Journal of King Saud University Science, 2021, 33(6): 101492
https://doi.org/10.1016/j.jksus.2021.101492
2 V W, Zhong D, Yu L, Zhao et al.. Achievement of guideline-recommended targets in diabetes care in China: a nationwide cross-sectional study.Annals of Internal Medicine, 2023, 176(8): 1037–1046
https://doi.org/10.7326/M23-0442
3 B J, Sumpio I, Mezghani E, Wang et al.. Experimental treatments in clinical trials for diabetic foot ulcers: wound healers in the pipeline.Expert Opinion on Investigational Drugs, 2023, 32(2): 95–99
https://doi.org/10.1080/13543784.2023.2178418
4 F M, Davis A, Kimball A, Boniakowski et al.. Dysfunctional wound healing in diabetic foot ulcers: new crossroads.Current Diabetes Reports, 2018, 18(1): 2
https://doi.org/10.1007/s11892-018-0970-z
5 A M Schmidt . Highlighting diabetes mellitus: the epidemic continues.Arteriosclerosis, Thrombosis, and Vascular Biology, 2018, 38(1): e1–e8
https://doi.org/10.1161/ATVBAHA.117.310221
6 V R, Güiza-Argüello V A, Solarte-David A V, Pinzón-Mora et al.. Current advances in the development of hydrogel-based wound dressings for diabetic foot ulcer treatment.Polymers, 2022, 14(14): 2764
https://doi.org/10.3390/polym14142764
7 A J Singer . Healing mechanisms in cutaneous wounds: tipping the balance.Tissue Engineering Part B: Reviews, 2022, 28(5): 1151–1167
https://doi.org/10.1089/ten.teb.2021.0114
8 X Y, Li X, Jing Z, Yu et al.. Diverse antibacterial treatments beyond antibiotics for diabetic foot ulcer therapy.Advanced Healthcare Materials, 2023, 12(23): 2300375
https://doi.org/10.1002/adhm.202300375
9 J V, Raghavan S Jhunjhunwala . Role of innate immune cells in chronic diabetic wounds.Journal of the Indian Institute of Science, 2023, 103(1): 249–271
https://doi.org/10.1007/s41745-022-00355-4
10 A, Caturano M, D’Angelo A, Mormone et al.. Oxidative stress in Type 2 diabetes: impacts from pathogenesis to lifestyle modifications.Current Issues in Molecular Biology, 2023, 45(8): 6651–6666
https://doi.org/10.3390/cimb45080420
11 H, Wang Z, Xu M, Zhao et al.. Advances of hydrogel dressings in diabetic wounds.Biomaterials Science, 2021, 9(5): 1530–1546
https://doi.org/10.1039/D0BM01747G
12 J, Yang Z, Chu Y, Jiang et al.. Multifunctional hyaluronic acid microneedle patch embedded by cerium/zinc-based composites for accelerating diabetes wound healing.Advanced Healthcare Materials, 2023, 12(24): 2300725
https://doi.org/10.1002/adhm.202300725
13 S, Gao W, Zhang X, Zhai et al.. An antibacterial and proangiogenic double-layer drug-loaded microneedle patch for accelerating diabetic wound healing.Biomaterials Science, 2023, 11(2): 533–541
https://doi.org/10.1039/D2BM01588A
14 M, Chang T T Nguyen . Strategy for treatment of infected diabetic foot ulcers.Accounts of Chemical Research, 2021, 54(5): 1080–1093
https://doi.org/10.1021/acs.accounts.0c00864
15 K, Glover A C, Stratakos A, Varadi et al.. 3D scaffolds in the treatment of diabetic foot ulcers: new trends vs conventional approaches.International Journal of Pharmaceutics, 2021, 599: 120423
https://doi.org/10.1016/j.ijpharm.2021.120423
16 A, Gupta M, Kowalczuk W, Heaselgrave et al.. The production and application of hydrogels for wound management: a review.European Polymer Journal, 2019, 111: 134–151
https://doi.org/10.1016/j.eurpolymj.2018.12.019
17 G D Winter . Formation of the scab and the rate of epithelization of superficial wounds in the skin of the young domestic pig.Nature, 1962, 193(4812): 293–294
https://doi.org/10.1038/193293a0
18 M, Kokabi M, Sirousazar Z M Hassan . PVA–clay nanocomposite hydrogels for wound dressing.European Polymer Journal, 2007, 43(3): 773–781
https://doi.org/10.1016/j.eurpolymj.2006.11.030
19 H Kim . Wound dressing materials: the essentials.Journal of Wound Management and Research, 2018, 14(2): 141–142
https://doi.org/10.22467/jwmr.2018.00458
20 H, Bai N, Kyu-Cheol Z, Wang et al.. Regulation of inflammatory microenvironment using a self-healing hydrogel loaded with BM-MSCs for advanced wound healing in rat diabetic foot ulcers.Journal of Tissue Engineering, 2020, 11: 2041731420947242
https://doi.org/10.1177/2041731420947242
21 S, Cascone G Lamberti . Hydrogel-based commercial products for biomedical applications: a review.International Journal of Pharmaceutics, 2020, 573: 118803
https://doi.org/10.1016/j.ijpharm.2019.118803
22 T C, Ho C C, Chang H P, Chan et al.. Hydrogels: properties and applications in biomedicine.Molecules, 2022, 27(9): 2902
https://doi.org/10.3390/molecules27092902
23 M, Meleties P, Katyal B, Lin et al.. Self-assembly of stimuli-responsive coiled-coil fibrous hydrogels.Soft Matter, 2021, 17(26): 6470–6476
https://doi.org/10.1039/D1SM00780G
24 T, Hiratani O, Kose W Y, Hamad et al.. Stable and sensitive stimuli-responsive anisotropic hydrogels for sensing ionic strength and pressure.Materials Horizons, 2018, 5(6): 1076–1081
https://doi.org/10.1039/C8MH00586A
25 L, Yang F, Liang X, Zhang et al.. Remodeling microenvironment based on MOFs-hydrogel hybrid system for improving diabetic wound healing.Chemical Engineering Journal, 2022, 427: 131506
https://doi.org/10.1016/j.cej.2021.131506
26 A, Kumar X, Wang K C, Nune et al.. Biodegradable hydrogel-based biomaterials with high absorbent properties for non-adherent wound dressing.International Wound Journal, 2017, 14(6): 1076–1087
https://doi.org/10.1111/iwj.12762
27 M, Zhang X, Qiao W, Han et al.. Alginate–chitosan oligosaccharide–ZnO composite hydrogel for accelerating wound healing.Carbohydrate Polymers, 2021, 266: 118100
https://doi.org/10.1016/j.carbpol.2021.118100
28 Y, Liang M, Li Y, Yang et al.. pH/glucose dual responsive metformin release hydrogel dressings with adhesion and self-healing via dual-dynamic bonding for athletic diabetic foot wound healing.ACS Nano, 2022, 16(2): 3194–3207
https://doi.org/10.1021/acsnano.1c11040
29 Y, Huang L, Mu X, Zhao et al.. Bacterial growth-induced tobramycin smart release self-healing hydrogel for Pseudomonas aeruginosa-infected burn wound healing.ACS Nano, 2022, 16(8): 13022–13036
https://doi.org/10.1021/acsnano.2c05557
30 X, Wang Y, Guo J, Li et al.. Tough wet adhesion of hydrogen-bond-based hydrogel with on-demand debonding and efficient hemostasis.ACS Applied Materials & Interfaces, 2022, 14(31): 36166–36177
https://doi.org/10.1021/acsami.2c10202
31 Y, Fu P, Ren F, Wang et al.. Mussel-inspired hybrid network hydrogel for continuous adhesion in water.Journal of Materials Chemistry B: Materials for Biology and Medicine, 2020, 8(10): 2148–2154
https://doi.org/10.1039/C9TB02863C
32 W, Shin J S, Kim H, Kim et al.. Material design for 3D multifunctional hydrogel structure preparation.Macromolecular Materials and Engineering, 2021, 306(5): 2100007
https://doi.org/10.1002/mame.202100007
33 M, Wang J, Hu Y, Ou et al.. Shape-recoverable hyaluronic acid–waterborne polyurethane hybrid cryogel accelerates hemostasis and wound healing.ACS Applied Materials & Interfaces, 2022, 14(15): 17093–17108
https://doi.org/10.1021/acsami.2c01310
34 D, Sun H, Wang J, Liu et al.. An enzyme cross-linked hydrogel as a minimally invasive arterial tissue sealing and anti-adhesion barrier.Nano Today, 2022, 44: 101467
https://doi.org/10.1016/j.nantod.2022.101467
35 Y, Liang J, He B Guo . Functional hydrogels as wound dressing to enhance wound healing.ACS Nano, 2021, 15(8): 12687–12722
https://doi.org/10.1021/acsnano.1c04206
36 X, Zhao Y, Liang B, Guo et al.. Injectable dry cryogels with excellent blood-sucking expansion and blood clotting to cease hemorrhage for lethal deep-wounds, coagulopathy and tissue regeneration.Chemical Engineering Journal, 2021, 403: 126329
https://doi.org/10.1016/j.cej.2020.126329
37 J E, Ávila-Quiroga A V, Pinzón-Mora V A, Solarte-David et al.. Innovation and new technologies in hydrogel wound dressings for treating diabetic foot ulcers: a twenty-year review.Cytotherapy, 2021, 23(5): S184–S188
https://doi.org/10.1016/S1465324921005958
38 R W, Cui L H, Zhang R Y, Ou et al.. Polysaccharide-based hydrogels for wound dressing: design considerations and clinical applications.Frontiers in Bioengineering and Biotechnology, 2022, 10: 845735
https://doi.org/10.3389/fbioe.2022.845735
39 N, Jain Y, Singh A, Nouri et al.. Assessment of healing capacity of glucose-responsive smart gels on the diabetic wound: a comprehensive review.Journal of Drug Delivery Science and Technology, 2024, 93: 105403
https://doi.org/10.1016/j.jddst.2024.105403
40 Y T, Li Y X, Leng Y, Liu et al.. Advanced multifunctional hydrogels for diabetic foot ulcer healing: active substances and biological functions.Journal of Diabetes, 2024, 16(4): e13537
https://doi.org/10.1111/1753-0407.13537
41 J L, Zhang C L, Liu X J, Li et al.. Application of photo-crosslinkable gelatin methacryloyl in wound healing.Frontiers in Bioengineering and Biotechnology, 2023, 11: 1303709
https://doi.org/10.3389/fbioe.2023.1303709
42 M, Farokhi F, Mottaghitalab Y, Fatahi et al.. Overview of silk fibroin use in wound dressings.Trends in Biotechnology, 2018, 36(9): 907–922
https://doi.org/10.1016/j.tibtech.2018.04.004
43 C M, DiPersio R, Zheng J, Kenney et al.. Integrin-mediated regulation of epidermal wound functions.Cell and Tissue Research, 2016, 365(3): 467–482
https://doi.org/10.1007/s00441-016-2446-2
44 S, Butenko H, Miwa Y, Liu et al.. Engineering immunomodulatory biomaterials to drive skin wounds toward regenerative healing.Cold Spring Harbor Perspectives in Biology, 2023, 15(5): a041242
https://doi.org/10.1101/cshperspect.a041242
45 Y, Gao Y, Kang T, Wang et al.. Alginate microspheres-collagen hydrogel, as a novel 3D culture system, enhanced skin wound healing of hUCMSCs in rats model.Colloids and Surfaces B: Biointerfaces, 2022, 219: 112799
https://doi.org/10.1016/j.colsurfb.2022.112799
46 C, Oliveira D, Sousa J A, Teixeira et al.. Polymeric biomaterials for wound healing.Frontiers in Bioengineering and Biotechnology, 2023, 11: 1136077
https://doi.org/10.3389/fbioe.2023.1136077
47 S R, Goldberg R F Diegelmann . Wound healing primer.Surgical Clinics of North America, 2010, 90(6): 1133–1146
https://doi.org/10.1016/j.suc.2010.08.003
48 B, Guo R, Dong Y, Liang et al.. Haemostatic materials for wound healing applications.Nature Reviews: Chemistry, 2021, 5(11): 773–791
https://doi.org/10.1038/s41570-021-00323-z
49 J X, Wang J H, He Y T, Yang et al.. Hemostatic, antibacterial, conductive and vascular regenerative integrated cryogel for accelerating the whole wound healing process.Chemical Engineering Journal, 2024, 479: 147577
https://doi.org/10.1016/j.cej.2023.147577
50 G C, Gurtner S, Werner Y, Barrandon et al.. Wound repair and regeneration.Nature, 2008, 453(7193): 314–321
https://doi.org/10.1038/nature07039
51 B B, Hsu W, Conway C M, Tschabrunn et al.. Clotting mimicry from robust hemostatic bandages based on self-assembling peptides.ACS Nano, 2015, 9(9): 9394–9406
https://doi.org/10.1021/acsnano.5b02374
52 D A, Hickman C L, Pawlowski U D S, Sekhon et al.. Biomaterials and advanced technologies for hemostatic management of bleeding.Advanced Materials, 2018, 30(4): 1700859
https://doi.org/10.1002/adma.201700859
53 C C N, Ayudhya S, Roy M, Thapaliya et al.. Roles of a mast cell–specific receptor MRGPRX2 in host defense and inflammation.Journal of Dental Research, 2020, 99(8): 882–890
https://doi.org/10.1177/0022034520919107
54 S W, Jere H, Abrahamse N N Houreld . Interaction of the AKT and β-catenin signalling pathways and the influence of photobiomodulation on cellular signalling proteins in diabetic wound healing.Journal of Biomedical Science, 2023, 30(1): 81
https://doi.org/10.1186/s12929-023-00974-8
55 H, Pan D, Fan Z, Duan et al.. Non-stick hemostasis hydrogels as dressings with bacterial barrier activity for cutaneous wound healing.Materials Science and Engineering C, 2019, 105: 110118
https://doi.org/10.1016/j.msec.2019.110118
56 E A, Grice H H, Kong S, Conlan et al.. Topographical and temporal diversity of the human skin microbiome.Science, 2009, 324(5931): 1190–1192
https://doi.org/10.1126/science.1171700
57 S Q, Li S J, Dong W G, Xu et al.. Antibacterial hydrogels.Advanced Science, 2018, 5(5): 1700527
https://doi.org/10.1002/advs.201700527
58 H, Poplimont A, Georgantzoglou M, Boulch et al.. Neutrophil swarming in damaged tissue is orchestrated by connexins and cooperative calcium alarm signals.Current Biology, 2020, 30(14): 2761–2776
https://doi.org/10.1016/j.cub.2020.05.030
59 Y, Liang Y, Liang H, Zhang et al.. Antibacterial biomaterials for skin wound dressing.Asian Journal of Pharmaceutical Sciences, 2022, 17(3): 353–384
https://doi.org/10.1016/j.ajps.2022.01.001
60 K, Musaie S, Abbaszadeh V, Nosrati-Siahmazgi et al.. Metal-coordination synthesis of a natural injectable photoactive hydrogel with antibacterial and blood-aggregating functions for cancer thermotherapy and mild-heating wound repair.Biomaterials Science, 2023, 11(7): 2486–2503
https://doi.org/10.1039/D2BM01965E
61 X, Xu Y, Zeng Z, Chen et al.. Chitosan-based multifunctional hydrogel for sequential wound inflammation elimination, infection inhibition, and wound healing.International Journal of Biological Macromolecules, 2023, 235: 123847
https://doi.org/10.1016/j.ijbiomac.2023.123847
62 A M, Soliman S, Das Ghafar N, Abd et al.. Role of microRNA in proliferation phase of wound healing.Frontiers in Genetics, 2018, 9: 38
https://doi.org/10.3389/fgene.2018.00038
63 L J, Stevens A Page-McCaw . A secreted MMP is required for reepithelialization during wound healing.Molecular Biology of the Cell, 2012, 23(6): 1068–1079
https://doi.org/10.1091/mbc.e11-09-0745
64 R, Zhang Y, Tian L, Pang et al.. Wound microenvironment-responsive protein hydrogel drug-loaded system with accelerating healing and antibacterial property.ACS Applied Materials & Interfaces, 2022, 14(8): 10187–10199
https://doi.org/10.1021/acsami.2c00373
65 A G, Maione A, Smith O, Kashpur et al.. Altered ECM deposition by diabetic foot ulcer-derived fibroblasts implicates fibronectin in chronic wound repair.Wound Repair and Regeneration, 2016, 24(4): 630–643
https://doi.org/10.1111/wrr.12437
66 Y, Yang T, Xia W, Zhi et al.. Promotion of skin regeneration in diabetic rats by electrospun core–sheath fibers loaded with basic fibroblast growth factor.Biomaterials, 2011, 32(18): 4243–4254
https://doi.org/10.1016/j.biomaterials.2011.02.042
67 P, Martin R Nunan . Cellular and molecular mechanisms of repair in acute and chronic wound healing.British Journal of Dermatology, 2015, 173(2): 370–378
https://doi.org/10.1111/bjd.13954
68 J P Yadav . Based on clinical research matrix metalloprotease (MMP) inhibitors to promote diabetic wound healing.Hormone and Metabolic Research, 2023, 55(11): 752–757
https://doi.org/10.1055/a-2171-5879
69 J A, Berlanga-Acosta G E, Guillén-Nieto N, Rodríguez-Rodríguez et al.. Cellular senescence as the pathogenic hub of diabetes-related wound chronicity.Frontiers in Endocrinology, 2020, 11: 573032
https://doi.org/10.3389/fendo.2020.573032
70 D, Liu P, Yang M, Gao et al.. NLRP3 activation induced by neutrophil extracellular traps sustains inflammatory response in the diabetic wound.Clinical Science, 2019, 133(4): 565–582
https://doi.org/10.1042/CS20180600
71 P, Bannon S, Wood T, Restivo et al.. Diabetes induces stable intrinsic changes to myeloid cells that contribute to chronic inflammation during wound healing in mice.Disease Models & Mechanisms, 2013, 6(6): 1434–1447
https://doi.org/10.1242/dmm.012237
72 H X, Teh S J, Phang M L, Looi et al.. Molecular pathways of NF-ĸB and NLRP3 inflammasome as potential targets in the treatment of inflammation in diabetic wounds: a review.Life Sciences, 2023, 334: 122228
https://doi.org/10.1016/j.lfs.2023.122228
73 Y T, Yang Y P, Liang J Y, Chen et al.. Mussel-inspired adhesive antioxidant antibacterial hemostatic composite hydrogel wound dressing via photo-polymerization for infected skin wound healing.Bioactive Materials, 2022, 8: 341–354
https://doi.org/10.1016/j.bioactmat.2021.06.014
74 L, Zhang Y, Zhang F, Ma et al.. A low-swelling and toughened adhesive hydrogel with anti-microbial and hemostatic capacities for wound healing.Journal of Materials Chemistry B: Materials for Biology and Medicine, 2022, 10(6): 915–926
https://doi.org/10.1039/D1TB01871J
75 M E, Smithmyer L A, Sawicki A M Kloxin . Hydrogel scaffolds as in vitro models to study fibroblast activation in wound healing and disease.Biomaterials Science, 2014, 2(5): 634–650
https://doi.org/10.1039/C3BM60319A
76 P, Thangavel B, Ramachandran R, Kannan et al.. Biomimetic hydrogel loaded with silk and l-proline for tissue engineering and wound healing applications.Journal of Biomedical Materials Research Part B: Applied Biomaterials, 2017, 105(6): 1401–1408
https://doi.org/10.1002/jbm.b.33675
77 M E, Smithmyer L A, Sawicki A M Kloxin . Hydrogel scaffolds as in vitro models to study fibroblast activation in wound healing and disease.Biomaterials Science, 2014, 2(5): 634–650
https://doi.org/10.1039/C3BM60319A
78 M J, Malone-Povolny S E, Maloney M H Schoenfisch . Nitric oxide therapy for diabetic wound healing.Advanced Healthcare Materials, 2019, 8(12): 1801210
https://doi.org/10.1002/adhm.201801210
79 N, Wang S, Zhao X, Tian et al.. Fabrication of microspheres containing coagulation factors by reverse microemulsion method for rapid hemostasis and wound healing.Colloids and Surfaces B: Biointerfaces, 2022, 218: 112742
https://doi.org/10.1016/j.colsurfb.2022.112742
80 J Y, Xu M, Su Z M, Jin et al.. Effects of natural brown cotton bleached gauze on wound healing.Materials, 2022, 15(6): 2070
https://doi.org/10.3390/ma15062070
81 J, Cheng J, Liu M, Li et al.. Hydrogel-based biomaterials engineered from natural-derived polysaccharides and proteins for hemostasis and wound healing.Frontiers in Bioengineering and Biotechnology, 2021, 9: 780187
https://doi.org/10.3389/fbioe.2021.780187
82 J, Liu J, Li F, Yu et al.. In situ forming hydrogel of natural polysaccharides through Schiff base reaction for soft tissue adhesive and hemostasis.International Journal of Biological Macromolecules, 2020, 147: 653–666
https://doi.org/10.1016/j.ijbiomac.2020.01.005
83 L, Qiao Y, Liang J, Chen et al.. Antibacterial conductive self-healing hydrogel wound dressing with dual dynamic bonds promotes infected wound healing.Bioactive Materials, 2023, 30: 129–141
https://doi.org/10.1016/j.bioactmat.2023.07.015
84 Y, Ouyang Y, Zhao X, Zheng et al.. Rapidly degrading and mussel-inspired multifunctional carboxymethyl chitosan/montmorillonite hydrogel for wound hemostasis.International Journal of Biological Macromolecules, 2023, 242: 124960
https://doi.org/10.1016/j.ijbiomac.2023.124960
85 M A, Khan M Mujahid . A review on recent advances in chitosan based composite for hemostatic dressings.International Journal of Biological Macromolecules, 2019, 124: 138–147
https://doi.org/10.1016/j.ijbiomac.2018.11.045
86 K P, Meldawati I, Syafruddin T, Tamrin et al.. Bioactive bacterial cellulose wound dressings for burns with collagen in-situ and chitosan ex-situ impregnation.International Journal of Biological Macromolecules, 2023, 230: 123118
https://doi.org/10.1016/j.ijbiomac.2022.123118
87 T C, Chou E, Fu C J, Wu et al.. Chitosan enhances platelet adhesion and aggregation.Biochemical and Biophysical Research Communications, 2003, 302(3): 480–483
https://doi.org/10.1016/S0006-291X(03)00173-6
88 W S, Liu C F, Yang R, Gao et al.. Polymer composite sponges with inherent antibacterial, hemostatic, inflammation-modulating and proregenerative performances for methicillin-resistant Staphylococcus aureus-infected wound healing.Advanced Healthcare Materials, 2021, 10(22): 2101247
https://doi.org/10.1002/adhm.202101247
89 F, Song Y, Kong C, Shao et al.. Chitosan-based multifunctional flexible hemostatic bio-hydrogel.Acta Biomaterialia, 2021, 136: 170–183
https://doi.org/10.1016/j.actbio.2021.09.056
90 L, Fan H, Yang J, Yang et al.. Preparation and characterization of chitosan/gelatin/PVA hydrogel for wound dressings.Carbohydrate Polymers, 2016, 146: 427–434
https://doi.org/10.1016/j.carbpol.2016.03.002
91 H, Ye J, Cheng K Yu . In situ reduction of silver nanoparticles by gelatin to obtain porous silver nanoparticle/chitosan composites with enhanced antimicrobial and wound-healing activity.International Journal of Biological Macromolecules, 2019, 121: 633–642
https://doi.org/10.1016/j.ijbiomac.2018.10.056
92 X S, Yu C, Cheng X, Peng et al.. A self-healing and injectable oxidized quaternized guar gum/carboxymethyl chitosan hydrogel with efficient hemostatic and antibacterial properties for wound dressing.Colloids and Surfaces B: Biointerfaces, 2022, 209: 112207
https://doi.org/10.1016/j.colsurfb.2021.112207
93 Z, Zheng S, Bian Z, Li et al.. Catechol modified quaternized chitosan enhanced wet adhesive and antibacterial properties of injectable thermo-sensitive hydrogel for wound healing.Carbohydrate Polymers, 2020, 249: 116826
https://doi.org/10.1016/j.carbpol.2020.116826
94 O M, Dragostin S K, Samal M, Dash et al.. New antimicrobial chitosan derivatives for wound dressing applications.Carbohydrate Polymers, 2016, 141: 28–40
https://doi.org/10.1016/j.carbpol.2015.12.078
95 C, Cheng H, Zhong Y, Zhang et al.. Bacterial responsive hydrogels based on quaternized chitosan and GQDs-ε-PL for chemo-photothermal synergistic anti-infection in diabetic wounds.International Journal of Biological Macromolecules, 2022, 210: 377–393
https://doi.org/10.1016/j.ijbiomac.2022.05.008
96 L, Qiao Y, Liang J, Chen et al.. Antibacterial conductive self-healing hydrogel wound dressing with dual dynamic bonds promotes infected wound healing.Bioactive Materials, 2023, 30: 129–141
https://doi.org/10.1016/j.bioactmat.2023.07.015
97 Y, Ren S, Ma D, Zhang et al.. Functionalized injectable hyaluronic acid hydrogel with antioxidative and photothermal antibacterial activity for infected wound healing.International Journal of Biological Macromolecules, 2022, 210: 218–232
https://doi.org/10.1016/j.ijbiomac.2022.05.024
98 Y, Jiang J, Wang H, Zhang et al.. Bio-inspired natural platelet hydrogels for wound healing.Science Bulletin, 2022, 67(17): 1776–1784
https://doi.org/10.1016/j.scib.2022.07.032
99 V, Silva F, Almeida J A, Carvalho et al.. Emergence of community-acquired methicillin-resistant Staphylococcus aureus EMRSA-15 clone as the predominant cause of diabetic foot ulcer infections in Portugal.European Journal of Clinical Microbiology & Infectious Diseases, 2020, 39(1): 179–186
https://doi.org/10.1007/s10096-019-03709-6
100 L, Wang X, Li T, Sun et al.. Dual-functional dextran-PEG hydrogel as an antimicrobial biomedical material.Macromolecular Bioscience, 2018, 18(2): 1700325
https://doi.org/10.1002/mabi.201700325
101 N, Masood R, Ahmed M, Tariq et al.. Silver nanoparticle impregnated chitosan-PEG hydrogel enhances wound healing in diabetes induced rabbits.International Journal of Pharmaceutics, 2019, 559: 23–36
https://doi.org/10.1016/j.ijpharm.2019.01.019
102 D S S M, Uppu J Haldar . Lipopolysaccharide neutralization by cationic–amphiphilic polymers through pseudoaggregate formation.Biomacromolecules, 2016, 17(3): 862–873
https://doi.org/10.1021/acs.biomac.5b01567
103 X, Wang R, Song M, Johnson et al.. An injectable chitosan-based self-healable hydrogel system as an antibacterial wound dressing.Materials, 2021, 14(20): 5956
https://doi.org/10.3390/ma14205956
104 H, Liu Z, Li Y, Zhao et al.. Novel diabetic foot wound dressing based on multifunctional hydrogels with extensive temperature-tolerant, durable, adhesive, and intrinsic antibacterial properties.ACS Applied Materials & Interfaces, 2021, 13(23): 26770–26781
https://doi.org/10.1021/acsami.1c05514
105 Y H, Xiong L J, Zhang Z P, Xiu et al.. Derma-like antibacterial polysaccharide gel dressings for wound care.Acta Biomaterialia, 2022, 148: 119–132
https://doi.org/10.1016/j.actbio.2022.06.018
106 X L, Qi X X, Ge X J, Chen et al.. An immunoregulation hydrogel with controlled hyperthermia-augmented oxygenation and ROS scavenging for treating diabetic foot ulcers.Advanced Functional Materials, 2024, 34: 2400289
https://doi.org/10.1002/adfm.202400489
107 J, Fujii T Osaki . Involvement of nitric oxide in protecting against radical species and autoregulation of M1-polarized macrophages through metabolic remodeling.Molecules, 2023, 28(2): 814
https://doi.org/10.3390/molecules28020814
108 H, Zhao Z, Lou Y, Chen et al.. Tea polyphenols (TPP) as a promising wound healing agent: TPP exerts multiple and distinct mechanisms at different phases of wound healing in a mouse model.Biomedicine and Pharmacotherapy, 2023, 166: 115437
https://doi.org/10.1016/j.biopha.2023.115437
109 M, Bi Y, Qin L, Wang et al.. The protective role of resveratrol in diabetic wound healing.Phytotherapy Research, 2023, 37(11): 5193–5204
https://doi.org/10.1002/ptr.7981
110 F, Farhat S S, Sohail F, Siddiqui et al.. Curcumin in wound healing — a bibliometric analysis.Life, 2023, 13(1): 143
https://doi.org/10.3390/life13010143
111 G G, Tekin B Deveci . Effects of gallic acid on gingival wounds.European Review for Medical and Pharmacological Sciences, 2023, 27(7): 2739–2744
https://doi.org/10.26355/eurrev_202304_31901
112 Z J, Liu S L, Zhang Y Y, Ran et al.. Nanoarchitectonics of tannic acid based injectable hydrogel regulate the microglial phenotype to enhance neuroplasticity for poststroke rehabilitation.Biomaterials Research, 2023, 27: 108
https://doi.org/10.1186/s40824-023-00444-0
113 Z J, Liu L, Ye J N, Xi et al.. Cyclodextrin polymers: structure, synthesis, and use as drug carriers.Progress in Polymer Science, 2021, 118: 101408
https://doi.org/10.1016/j.progpolymsci.2021.101408
114 W, Zhu Y, Dong P, Xu et al.. A composite hydrogel containing resveratrol-laden nanoparticles and platelet-derived extracellular vesicles promotes wound healing in diabetic mice.Acta Biomaterialia, 2022, 154: 212–230
https://doi.org/10.1016/j.actbio.2022.10.038
115 B, Zhao S, Zhu Y W, Liu et al.. Enriching and smart releasing curcumin via phenylboronic acid-anchored bioinspired hydrogel for diabetic wound healing.Advanced NanoBiomed Research, 2023, 3(5): 2200177
https://doi.org/10.1002/anbr.202200177
116 X, Cai Y, He L, Cai et al.. An injectable elastic hydrogel crosslinked with curcumin–gelatin nanoparticles as a multifunctional dressing for the rapid repair of bacterially infected wounds.Biomaterials Science, 2023, 11(9): 3227–3240
https://doi.org/10.1039/D2BM02126A
117 Q, Zong S, Zhou J, Ye et al.. Aliphatic polycarbonate-based hydrogel dressing for wound healing.Journal of Drug Delivery Science and Technology, 2023, 79: 104083
https://doi.org/10.1016/j.jddst.2022.104083
118 T, Chen X, Guo Y, Huang et al.. Bletilla striata polysaccharide–waterborne polyurethane hydrogel as a wound dressing.Journal of Biomaterials Science: Polymer Edition, 2023, 34(9): 1157–1170
https://doi.org/10.1080/09205063.2022.2157673
119 Y, Lu C, Jia C, Gong et al.. A hydrogel system containing molybdenum-based nanomaterials for wound healing.Nano Research, 2023, 16(4): 5368–5375
https://doi.org/10.1007/s12274-022-5255-9
120 J, Peng H, Zhao C, Tu et al.. In situ hydrogel dressing loaded with heparin and basic fibroblast growth factor for accelerating wound healing in rat.Materials Science and Engineering C, 2020, 116: 111169
https://doi.org/10.1016/j.msec.2020.111169
121 Y, Xiao H, Zhao X, Ma et al.. Hydrogel dressing containing basic fibroblast growth factor accelerating chronic wound healing in aged mouse model.Molecules, 2022, 27(19): 6361
https://doi.org/10.3390/molecules27196361
122 X D, Jing Y, Sun Y, Liu et al.. Alginate/chitosan-based hydrogel loaded with gene vectors to deliver polydeoxyribonucleotide for effective wound healing.Biomaterials Science, 2021, 9(16): 5533–5541
https://doi.org/10.1039/D1BM00911G
123 J, Yang W N, Zeng P, Xu et al.. Glucose-responsive multifunctional metal–organic drug-loaded hydrogel for diabetic wound healing.Acta Biomaterialia, 2022, 140: 206–218
https://doi.org/10.1016/j.actbio.2021.11.043
124 B, Zhang Y J, Lv C G, Yu et al.. Au–Pt nanozyme-based multifunctional hydrogel dressing for diabetic wound healing.Biomaterials Advances, 2022, 137: 212869
https://doi.org/10.1016/j.bioadv.2022.212869
125 L, Wang M, Zhou T, Xu et al.. Multifunctional hydrogel as wound dressing for intelligent wound monitoring.Chemical Engineering Journal, 2022, 433: 134625
https://doi.org/10.1016/j.cej.2022.134625
126 Y, Jiang A A, Trotsyuk S, Niu et al.. Wireless, closed-loop, smart bandage with integrated sensors and stimulators for advanced wound care and accelerated healing.Nature Biotechnology, 2023, 41(5): 652–662
https://doi.org/10.1038/s41587-022-01528-3
127 M, Cardinal D E, Eisenbud D G Armstrong . Wound shape geometry measurements correlate to eventual wound healing.Wound Repair and Regeneration, 2009, 17(2): 173–178
https://doi.org/10.1111/j.1524-475X.2009.00464.x
128 G C, Li S J, Li L L, Zhang et al.. Construction of biofunctionalized anisotropic hydrogel micropatterns and their effect on Schwann cell behavior in peripheral nerve regeneration.ACS Applied Materials & Interfaces, 2019, 11(41): 37397–37410
https://doi.org/10.1021/acsami.9b08510
129 S Y, Chen Y X, Zhao X L, Yan et al.. PAM/GO/gel/SA composite hydrogel conduit with bioactivity for repairing peripheral nerve injury.Journal of Biomedical Materials Research Part A, 2019, 107(6): 1273–1283
https://doi.org/10.1002/jbm.a.36637
130 L, Zhao L, Niu H, Liang et al.. pH and glucose dual-responsive injectable hydrogels with insulin and fibroblasts as bioactive dressings for diabetic wound healing.ACS Applied Materials & Interfaces, 2017, 9(43): 37563–37574
https://doi.org/10.1021/acsami.7b09395
131 X X, Lei J J, Hu C Y, Zou et al.. Multifunctional two-component in-situ hydrogel for esophageal submucosal dissection for mucosa uplift, postoperative wound closure and rapid healing.Bioactive Materials, 2023, 27: 461–473
https://doi.org/10.1016/j.bioactmat.2023.04.015
132 J X, Zhang H F, Dong X Z, Jing et al.. Injectable in situ photocrosslinked hydrogel dressing for infected wound healing.ACS Applied Bio Materials, 2023, 6(5): 1992–2002
https://doi.org/10.1021/acsabm.3c00205
133 A T, Yayehrad E A, Siraj M, Matsabisa et al.. 3D printed drug loaded nanomaterials for wound healing applications.Regenerative Therapy, 2023, 24: 361–376
https://doi.org/10.1016/j.reth.2023.08.007
134 X, Ma F, Gao W, Su et al.. Multifunctional injectable hydrogel promotes functional recovery after stroke by modulating microglial polarization, angiogenesis and neuroplasticity.Chemical Engineering Journal, 2023, 464: 142520
https://doi.org/10.1016/j.cej.2023.142520
135 J H, Teoh S M, Tay J, Fuh et al.. Fabricating scalable, personalized wound dressings with customizable drug loadings via 3D printing.Journal of Controlled Release, 2022, 341: 80–94
https://doi.org/10.1016/j.jconrel.2021.11.017
136 M, Alizadehgiashi C R, Nemr M, Chekini et al.. Multifunctional 3D-printed wound dressings.ACS Nano, 2021, 15(7): 12375–12387
https://doi.org/10.1021/acsnano.1c04499
[1] Miao QIN, Mengjie XU, Lulu NIU, Yizhu CHENG, Xiaolian NIU, Jinlong KONG, Xiumei ZHANG, Yan WEI, Di HUANG. Multifunctional modification of Fe3O4 nanoparticles for diagnosis and treatment of diseases: A review[J]. Front. Mater. Sci., 2021, 15(1): 36-53.
[2] Zhiyu ZHANG, Lixia HU, Hui ZHANG, Liping YU, Yunxiao LIANG. Large-sized nano-TiO2/SiO2 mesoporous nanofilm-constructed macroporous photocatalysts with excellent photocatalytic performance[J]. Front. Mater. Sci., 2020, 14(2): 163-176.
[3] Fang LIU, Xiangping JIANG, Chao CHEN, Xin NIE, Xiaokun HUANG, Yunjing CHEN, Hao HU, Chunyang SU. Structural, electrical and photoluminescence properties of Er3+-doped SrBi4Ti4O15--Bi4Ti3O12 inter-growth ceramics[J]. Front. Mater. Sci., 2019, 13(1): 99-106.
[4] Jiangli XUE, Maosong MO, Zhuming LIU, Dapeng YE, Zhihua CHENG, Tong XU, Liangti QU. A general synthesis strategy for the multifunctional 3D polypyrrole foam of thin 2D nanosheets[J]. Front. Mater. Sci., 2018, 12(2): 105-117.
[5] Yalin JIANG,Xiangping JIANG,Chao CHEN,Yunjing CHEN,Xingan JIANG,Na TU. Photoluminescence and electrical properties of Er3+-doped Na0.5Bi4.5Ti4O15--Bi4Ti3O12 inter-growth ferroelectrics ceramics[J]. Front. Mater. Sci., 2017, 11(1): 51-58.
[6] Qilin WEI,Feiyang XU,Xingjian XU,Xue GENG,Lin YE,Aiying ZHANG,Zengguo FENG. The multifunctional wound dressing with core–shell structured fibers prepared by coaxial electrospinning[J]. Front. Mater. Sci., 2016, 10(2): 113-121.
[7] Xing-an JIANG,Xiang-ping JIANG,Chao CHEN,Na TU,Yun-jing CHEN,Ban-chao ZHANG. Photoluminescence and electrical properties of Eu3+-doped Na0.5Bi4.5Ti4O15-based ferroelectrics under blue light excitation[J]. Front. Mater. Sci., 2016, 10(1): 31-37.
[8] Hai WANG, Yu-Liang ZHAO, Guang-Jun NIE. Multifunctional nanoparticle systems for combined chemo- and photothermal cancer therapy[J]. Front Mater Sci, 2013, 7(2): 118-128.
[9] Hui-Yun ZHOU, Ling-Juan JIANG, Yan-Ping ZHANG, Jun-Bo LI. β-Cyclodextrin inclusion complex: preparation, characterization, and its aspirin release in vitro[J]. Front Mater Sci, 2012, 6(3): 259-267.
[10] De-Bao LIU, Ming-Fang CHEN, Xin-Yu YE, . Fabrication and corrosion behavior of HA/Mg-Zn biocomposites[J]. Front. Mater. Sci., 2010, 4(2): 139-144.
[11] Guo-hui ZHU, Xue-hui ZHANG, Wei-min MAO, . Development in high-grade dual phase steels with low C and Si design[J]. Front. Mater. Sci., 2009, 3(4): 442-446.
[12] Yong-feng LIANG, Jun-pin LIN, Feng YE, Yan-li WANG, Lai-qi ZHANG, Guo-liang CHEN. Processing of Fe-6.5wt.%Si alloy foils by cold rolling[J]. Front Mater Sci Chin, 2009, 3(3): 329-332.
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed