| POLYMERS AND POLYMER MATRIX COMPOSITES |
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| Research Progress on the Preparation Strategies and Applications of Electrospun Nanofiber-based Hydrogel Wound Dressings |
| HOU Kexin1, LIU Jianhong2, YANG Kun1, DING Sheng1, CHENG Yali1, WANG Zaixi1, LI Fan1,*
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1 Systems Engineering Institute, Academy of Military Sciences, People's Liberation Army, Tianjin 300161, China 2 School of Textile Science and Engineering, Tiangong University, Tianjin 300387, China |
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Abstract Hydrogels are a promising type of wound dressing due to their excellent hydrophilicity, high swelling rate, and three-dimensional porous structure. However, using pure hydrogels can lead to the limited functionality and application in wound dressings because of the difficulty of simulating the complex three-dimensional micro-nanofiber structure of the extracellular matrix. In recent years, electrospun nanofiber-based hydrogel wound dressings have combined the advantages of electrospun nanofibers and hydrogels, offering customizable three-dimensional spatial structures, large specific surface area, high porosity, enhanced mechanical properties, and improved biofunctionality, expanding their applications. This review summarizes the preparation strategies of electrospun nanofiber-based hydrogel wound dressings, including sol-gelatinization, electrostatic spraying, lamination, dispersion, 3D printing, and direct electrostatic spinning method. It then discusses their characteristics and applications, and finally summarizes and outlines the future research directions in this field.
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Published: 10 January 2026
Online: 2026-01-09
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1 Zhao X H, Chen X Y, Yuk H, et al. Parada G. Chemical Reviews, 2021, 121(8), 4309. 2 Fijul Kabir S M, Sikdar P P, Haque B, et al. Progress in Biomaterials, 2018, 7(3), 153. 3 Liu Y M. Fabrication of GelMa composite nanofibrous hydrogel for wound dressings. Master's Thesis, Donghua University, China, 2021 (in Chinese). 刘玉敏. GelMA复合纳米纤维水凝胶敷料的制备及性能研究. 硕士学位论文, 东华大学, 2021. 4 Chang P, Guo K, Li S, Wang H T, et al. Small, 2024, 20(11), 2208001. 5 Yang Z M. Construction and properties of N-halamine antibacterial wound healing dressings. Ph. D. Thesis, Jiangnan University, China, 2023 (in Chinese). 杨振铭. 基于GelMA的卤胺抗菌伤口敷料的构筑及性能研究. 博士学位论文, 江南大学, 2023. 6 Ghosh T, Das T, Purwar R. Polymer Engineering and Science, 2021, 61(7), 1887. 7 Abasalizadeh F, Moghaddam S V, Alizadeh E, et al. Journal of Biological Engineering, 2020, 14(1), 22. 8 Lu X Y. Construction and functional applications of elastic electrospun nanofibrous hydrogels. Ph.D. Thesis, Donghua University, China, 2023 (in Chinese). 卢绪燕. 弹性静电纺纳米纤维基水凝胶的构建及其功能化应用研究. 博士学位论文, 东华大学, 2023. 9 Miguel S P, Figueira D R, Simoes D, et al. Colloids and Surfaces B, 2018, 169, 60. 10 Li Q, Chen R, Cui T T, et al. Advanced Healthcare Materials, 2024, 13, 2304321. 11 Si Y F, Shi S, Hu J L. Matter, 2024, 7(4), 1373. 12 Azarniya A, Tamjid E, Eslahi N, et al. International Journal of Biological Macromolecules, 2019, 134, 280. 13 Ekaputra A K, Prestwich G D, Cool S M, et al. Biomaterials, 2011, 32(32), 8108. 14 Deepthi S, Jeevitha K, Sundaram M N, et al. Chemical Engineering Journal, 2015, 260, 478. 15 Zhang M M, Xu S X, Du C, et al. Colloids and Surfaces B, 2023, 222, 113119. 16 Deepthi S, Sundaram M N, Kadavan J D, et al. Carbohydrate Polymers, 2016, 153, 492. 17 Wang T Y, Bruggeman K F, Kauhausen J A, et al. Biomaterials, 2016, 74, 898. 18 Chen Y J, Qin H L, Mensaha A, et al. Composites Part B, 2021, 222, 109071. 19 Karimi S, Bagher Z, Najmoddin N, et al. International Journal of Biological Macromolecules, 2021, 167, 796. 20 Wang M, Xiong L, Hua W K, et al. Chemical Engineering Journal, 2018, 348, 95. 21 Zhang T, Xu H, Zhang Y G, et al. Materials & Design, 2022, 218, 110711. 22 Arumugam M, Murugesan B, Chinnalagu D, et al. Journal of Polymers and the Environment, 2024, 32(6), 2797. 23 Yin X Q, Wen Y, Li Y J, et al. Frontiers in Chemistry, 2018, 6, 490. 24 Lu Z, Cui J J, Liu F K, et al. Advanced Healthcare Materials, 2024, 13(10), 2303499. 25 Zhang Y L, Ruan K P, Zhou K, et al. Advanced Materials, 2023, 35(16), 2211642. 26 Tavakoli M, Al-Musawi M H, Kalali A, et al. International Journal of Biological Macromolecules, 2024, 265, 130954. 27 Miguel S P, Cabral C S D, Moreira A F. Colloids and Surfaces B, 2019, 181, 994. 28 Guo W R, Li Z, Liu B, et al. Progress in Chemistry, 2024, 36(6), 914 (in Chinese). 郭婉茹, 李政, 刘兵, 等. 化学进展, 2024, 36(6), 914. 29 Homayoni H, Ravandi S A H, Valizadeh M. Carbohydrate Polymers, 2009, 77(3), 656. 30 Brenner E K, Schiffman J D, Thompson E A, et al. Carbohydrate Polymers, 2012, 87(1), 926. 31 Matthews J, Wnek G, Simpson D G, et al. Biomacromolecules, 2002, 3, 232. 32 Yang G, Lin H, Rothrauff B B, et al. Acta Biomaterialia, 2016, 35, 68. 33 Cay A, Miraftab M. Journal of Applied Polymer Science, 2013, 129(6), 3140. 34 Wang M, Li X, Hua W K, et al. ACS Applied Materials & Interfaces, 2016, 8(36), 23995. 35 Lv H, Wang X Q, Fu Q X, et al. Journal of Colloid and Interface Science, 2017, 506, 442. 36 Tonsomboon K, Oyen M L. Journal of The Mechanical Behavior of Biomedical Materials, 2013, 21, 185. 37 Liu X, Liu Y, Du J, et al. Engineered Regeneration, 2021, 2, 63. 38 Molnar K, Jedlovszky-Hajdu A, Zrinyi M, et al. Macromolecular Rapid Communications, 2017, 38, 1. 39 Li S J, Zhang C D. Textile Research Journal, 2020(2), 20 (in Chinese). 李思捷, 张彩丹. 纺织学报, 2020(2), 20. 40 Tsegay F, Hisham M, Elsherif M, et al. Molecules, 2023, 28(3), 1339. 41 Hong L, Qiu P, Niu S N, et al. Advanced Fiber Materials, 2024, 6(5), 1413. 42 Peng Y Y, Lyu D, Luo F, et al. Polymer Bulletin, 2024(6), 713 (in Chinese). 彭园园, 吕丹, 罗锋, 等. 高分子通报, 2024(6), 713. 43 Shi Z J, Gao X, Ullah M W, et al. Biomaterials, 2016, 111, 40. 44 Bhattarai N, Gunn J, Zhang M Q. Advanced Drug Delivery Reviews, 2010, 62(1), 83. 45 Mendibil U, Ruiz-Hernandez R, Retegi-Carrion S, et al. International Journal of Molecular Sciences, 2020, 21(15), 5447. 46 Rippa A L, Kalabusheva E P, Vorotelyak E A. Cells, 2019, 8(6), 607. 47 Li D W, Dong X Y, Liu X, et al. Carbohydrate Polymers, 2024, 329, 121687. 48 Ailincai D, Cibotaru S, Anisiei A, et al. Carbohydrate Polymers, 2023, 318, 121135. 49 Zhong H L, Huang J, Luo M C, et al. Nano Research, 2023, 16, 599. 50 Zhang H, Sun L Y, Guo J H, et al. Research, 2023, 8, 129. 51 Zhang C D, Yang X, Yu L D, et al. Materials & Design, 2024, 239, 112818. |
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