负载丁香酚的皂石/乳铁蛋白水凝胶用于耐甲氧西林金黄色葡萄球菌感染的慢性皮肤伤口愈合

IF 2.4 3区 医学 Q2 DERMATOLOGY Journal of tissue viability Pub Date : 2024-05-16 DOI:10.1016/j.jtv.2024.05.006
Ruigang Zhou , Wenhai Zhang , Yufei Zhang , Xiqian Wu , Junjie Huang , Ruonan Bo , Mingjiang Liu , Jie Yu , Jingui Li
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引用次数: 0

摘要

严重的细菌感染会导致伤口愈合过程旷日持久,从而给病人的健康带来巨大风险。因此,开发一种具有强大生物活性的多功能水凝胶敷料势在必行,因为它具有加快伤口愈合和提高临床治疗效果的潜力。在此背景下,本研究以青石(LAP)和乳铁蛋白(LF)为基本成分,并添加丁香酚(EG),配制出一种可注射的多功能水凝胶。这种水凝胶是利用静电相互作用原理,通过简单的一锅混合方法制成的。制成的 LAP/LF/EG2% 复合水凝胶可以方便地注射,有效地解决不规则的伤口几何形状。注射后,水凝胶会持续释放乳铁蛋白和丁香酚,减轻不必要的氧化应激,消除细菌感染。这种协调作用最终加速了伤口愈合,特别是在 MRSA 感染伤口的情况下。重要的是,LAP/LF/EG2% 水凝胶具有值得称道的品质,包括出色的注射性、强大的抗氧化特性和良好的止血功能。此外,水凝胶组合物在保持良好的细胞相容性的同时,还能显著促进细胞迁移。此外,这种水凝胶还对可怕的耐多药 MRSA 细菌具有显著的杀菌效果。最重要的是,这种水凝胶配方能迅速止血,抑制细菌增殖,促进血管生成、胶原沉积和再上皮化过程,从而明显加快受 MRSA 感染伤口的愈合。因此,本研究采用的创新水凝胶材料是一种很有前景的敷料,可促进细菌感染伤口的愈合和组织再生。
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Laponite/lactoferrin hydrogel loaded with eugenol for methicillin-resistant Staphylococcus aureus-infected chronic skin wound healing

Severe bacterial infections can give rise to protracted wound healing processes, thereby posing a significant risk to a patient's well-being. Consequently, the development of a versatile hydrogel dressing possessing robust bioactivity becomes imperative, as it holds the potential to expedite wound healing and yield enhanced clinical therapeutic outcomes. In this context, the present study involves the formulation of an injectable multifunctional hydrogel utilizing laponite (LAP) and lactoferrin (LF) as foundational components and loaded with eugenol (EG). This hydrogel is fabricated employing a straightforward one-pot mixing approach that leverages the principle of electrostatic interaction. The resulting LAP/LF/EG2% composite hydrogel can be conveniently injected to address irregular wound geometries effectively. Once administered, the hydrogel continually releases lactoferrin and eugenol, mitigating unwarranted oxidative stress and eradicating bacterial infections. This orchestrated action culminates in the acceleration of wound healing specifically in the context of MRSA-infected wounds. Importantly, the LAP/LF/EG2% hydrogel exhibits commendable qualities including exceptional injectability, potent antioxidant attributes, and proficient hemostatic functionality. Furthermore, the hydrogel composition notably encourages cellular migration while maintaining favorable cytocompatibility. Additionally, the hydrogel manifests noteworthy bactericidal efficacy against the formidable multidrug-resistant MRSA bacterium. Most significantly, this hydrogel formulation distinctly expedites the healing of MRSA-infected wounds by promptly inducing hemostasis, curbing bacterial proliferation, and fostering angiogenesis, collagen deposition, and re-epithelialization processes. As such, the innovative hydrogel material introduced in this investigation emerges as a promising dressing for the facilitation of bacterial-infected wound healing and consequent tissue regeneration.

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来源期刊
Journal of tissue viability
Journal of tissue viability DERMATOLOGY-NURSING
CiteScore
3.80
自引率
16.00%
发文量
110
审稿时长
>12 weeks
期刊介绍: The Journal of Tissue Viability is the official publication of the Tissue Viability Society and is a quarterly journal concerned with all aspects of the occurrence and treatment of wounds, ulcers and pressure sores including patient care, pain, nutrition, wound healing, research, prevention, mobility, social problems and management. The Journal particularly encourages papers covering skin and skin wounds but will consider articles that discuss injury in any tissue. Articles that stress the multi-professional nature of tissue viability are especially welcome. We seek to encourage new authors as well as well-established contributors to the field - one aim of the journal is to enable all participants in tissue viability to share information with colleagues.
期刊最新文献
Advancing burn wound healing with an innovative in situ gelling probiotic microparticle formulation employing quality by design (QbD) principles. Corrigendum to "Factors associated with adherence to prevention guidelines of pressure injuries among Jordanian nurses in critical care units", [Journal of Tissue Viability, 34(1), February 2025, 100853]. The role of biomaterials-based scaffolds in advancing skin tissue construct. Application of infrared thermography for predicting pressure injury healing: A prospective study. Diabetic foot ulcer related pain and its impact on health-related quality of life.
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