Kan Ji, Hanlu Chen, Yang Su, Bing Yuan, Zhenfei Song, Kai Zhang, Guochao Zhang, Yang Hu, Feng Duan and Fu-Jian Xu
{"title":"一种含有氧氟沙星和阳离子微粒的热敏波洛沙姆水凝胶,用于抗菌和止血。","authors":"Kan Ji, Hanlu Chen, Yang Su, Bing Yuan, Zhenfei Song, Kai Zhang, Guochao Zhang, Yang Hu, Feng Duan and Fu-Jian Xu","doi":"10.1039/D5BM00375J","DOIUrl":null,"url":null,"abstract":"<p >Traditional hemostatic materials often fall short of meeting clinical demands in terms of both hemostasis and antibacterial efficiency. The use of cationic materials in the antibacterial and hemostatic fields has garnered significant attention. However, designing materials that effectively balance these two properties remains a critical challenge in the development of hemostatic materials. In this context, a dual-functional hydrogel (F-QMS-OX) was developed by incorporating cationic starch microparticles (QMS) and ofloxacin into a thermosensitive poloxamer hydrogel with optimized loading content. After verifying the synergistic antibacterial effect of QMS and ofloxacin, <em>in vitro</em> experiments demonstrated that the concentration of ofloxacin within the hydrogel played a crucial role in determining its hemostatic and antibacterial properties. Among the tested formulations, the F-QMS-OX1 hydrogel, which contained the optimal (lowest) ofloxacin loading, achieved an exceptional balance between hemostasis and antibacterial activity. The underlying mechanism was identified as the regulation of blood cell/protein–hydrogel (surface) interactions for accelerating hemostasis. Furthermore, the F-QMS-OX1 hydrogel exhibited superior hemostatic performance in a femoral-artery-injury model and on-demand removal of hydrogel from wounds due to its thermo-responsive properties. The developed dual-functional hydrogel holds significant promise for future medical applications in clinical hemostasis and anti-infection wound care.</p>","PeriodicalId":65,"journal":{"name":"Biomaterials Science","volume":" 11","pages":" 3048-3057"},"PeriodicalIF":5.7000,"publicationDate":"2025-04-10","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"A thermosensitive poloxamer hydrogel with ofloxacin and cationic microparticles for antibacterial and hemostatic applications†\",\"authors\":\"Kan Ji, Hanlu Chen, Yang Su, Bing Yuan, Zhenfei Song, Kai Zhang, Guochao Zhang, Yang Hu, Feng Duan and Fu-Jian Xu\",\"doi\":\"10.1039/D5BM00375J\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<p >Traditional hemostatic materials often fall short of meeting clinical demands in terms of both hemostasis and antibacterial efficiency. The use of cationic materials in the antibacterial and hemostatic fields has garnered significant attention. However, designing materials that effectively balance these two properties remains a critical challenge in the development of hemostatic materials. In this context, a dual-functional hydrogel (F-QMS-OX) was developed by incorporating cationic starch microparticles (QMS) and ofloxacin into a thermosensitive poloxamer hydrogel with optimized loading content. After verifying the synergistic antibacterial effect of QMS and ofloxacin, <em>in vitro</em> experiments demonstrated that the concentration of ofloxacin within the hydrogel played a crucial role in determining its hemostatic and antibacterial properties. Among the tested formulations, the F-QMS-OX1 hydrogel, which contained the optimal (lowest) ofloxacin loading, achieved an exceptional balance between hemostasis and antibacterial activity. The underlying mechanism was identified as the regulation of blood cell/protein–hydrogel (surface) interactions for accelerating hemostasis. Furthermore, the F-QMS-OX1 hydrogel exhibited superior hemostatic performance in a femoral-artery-injury model and on-demand removal of hydrogel from wounds due to its thermo-responsive properties. 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A thermosensitive poloxamer hydrogel with ofloxacin and cationic microparticles for antibacterial and hemostatic applications†
Traditional hemostatic materials often fall short of meeting clinical demands in terms of both hemostasis and antibacterial efficiency. The use of cationic materials in the antibacterial and hemostatic fields has garnered significant attention. However, designing materials that effectively balance these two properties remains a critical challenge in the development of hemostatic materials. In this context, a dual-functional hydrogel (F-QMS-OX) was developed by incorporating cationic starch microparticles (QMS) and ofloxacin into a thermosensitive poloxamer hydrogel with optimized loading content. After verifying the synergistic antibacterial effect of QMS and ofloxacin, in vitro experiments demonstrated that the concentration of ofloxacin within the hydrogel played a crucial role in determining its hemostatic and antibacterial properties. Among the tested formulations, the F-QMS-OX1 hydrogel, which contained the optimal (lowest) ofloxacin loading, achieved an exceptional balance between hemostasis and antibacterial activity. The underlying mechanism was identified as the regulation of blood cell/protein–hydrogel (surface) interactions for accelerating hemostasis. Furthermore, the F-QMS-OX1 hydrogel exhibited superior hemostatic performance in a femoral-artery-injury model and on-demand removal of hydrogel from wounds due to its thermo-responsive properties. The developed dual-functional hydrogel holds significant promise for future medical applications in clinical hemostasis and anti-infection wound care.
期刊介绍:
Biomaterials Science is an international high impact journal exploring the science of biomaterials and their translation towards clinical use. Its scope encompasses new concepts in biomaterials design, studies into the interaction of biomaterials with the body, and the use of materials to answer fundamental biological questions.