姜黄素纳米复合给药体系的制备及其对皮肤损伤的治疗效果。

IF 5.3 3区 化学 Q1 POLYMER SCIENCE
Gels Pub Date : 2025-09-11 DOI:10.3390/gels11090727
Ye Jin, Yuzhou Liu, Ying Wang, Xintong Liu, Qixuan Yu, Da Liu, Ning Cui
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引用次数: 0

摘要

背景:皮肤损伤,如慢性伤口和炎症性皮肤病,由于经皮给药效率低和局部浓度不足,往往面临治疗效果的限制。姜黄素(CUR)是一种具有抗炎和抗氧化特性的天然化合物,已被证明具有修复皮肤损伤的潜力;但其理化特性阻碍了其临床应用。本研究构建了一种新型的纳米复合给药体系:载胶束纳米复合凝胶(CUR-M-DMNs-Gel)。采用复合体系实现CUR的高效增溶和增强透皮渗透,从而为治疗皮肤病提供了一种新的配方方法。方法:莪术负载胶束(CUR- m)以莪术为核心活性成分,具有抗炎、抗氧化等多种药理作用。TPGS作为胶束载体,不仅通过其两亲性结构增强CUR的溶解度和稳定性,而且促进药物在体内的吸收和运输。在可溶解微针(DMNs)中,PVP K30通过聚合物链的缠结形成稳定的三维网络结构,保证了足够的机械强度有效穿透皮肤屏障。同时,PVP K90具有较高的分子量,增强了背衬的支撑力和韧性,防止在使用过程中断针。透明质酸(HA)的加入改善了针尖处的保湿性和粘附性,确保了负载的CUR-M在皮肤内的逐渐溶解和释放。在载凝胶凝胶(CUR-M-Gel)中,PVP K30通过链缠结和氢键相互作用增加了凝胶的粘附力和内聚力。酒石酸精确调节pH值,调节交联密度;甘油为凝胶提供持久的保湿环境;氯化铝增强了机械稳定性和药物控释能力;NP-700优化了系统内的色散特性和兼容性。结果:体外实验表明,curr - m - dmns - gel复合体系具有增强的透皮渗透能力,其累积透皮效率显著超过单组分配方。在小鼠皮肤缺损模型中,CUR-M-DMNs-Gel促进胶原沉积,有效抑制炎症因子(TNF-α、IL-6、IL-1β)的表达。在小鼠皮肤光老化模型中,CUR-M-DMNs-Gel可显著降低真皮厚度,减轻弹性纤维损伤,抑制炎症反应。结论:curr - m - dmns - gel系统可通过皮下定位促进创面愈合,达到长期持续疗效。这种创新的方法为皮肤损伤的治疗提供了新的见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Preparation of Curcumin Nanocomposite Drug Delivery System and Its Therapeutic Efficacy on Skin Injury.

Background: Skin injuries, such as chronic wounds and inflammatory skin diseases, often face limitations in treatment efficacy due to the low efficiency of transdermal drug delivery and insufficient local concentrations. Curcumin (CUR), a natural compound with anti-inflammatory and antioxidant properties, has demonstrated potential in the repair of skin damage; however, its clinical application is hindered by its physicochemical characteristics. This study constructs a novel nanocomposite drug delivery system: CUR-loaded micellar nanocomposite gel (CUR-M-DMNs-Gel). A composite system is used to achieve the efficient solubilization and enhanced transdermal permeation of CUR, thereby providing a novel formulation approach for the treatment of skin diseases. Methods: CUR-loaded micellar (CUR-M) utilizes CUR as the core active ingredient, which possesses multiple pharmacological effects including anti-inflammatory and antioxidant properties. TPGS serves as a micellar carrier that not only enhances the solubility and stability of CUR through its amphiphilic structure but also facilitates drug absorption and transport within the body. In dissolvable microneedles (DMNs), PVP K30 forms a stable three-dimensional network structure through entanglement of polymer chains, ensuring sufficient mechanical strength for effective penetration of the skin barrier. Meanwhile, PVP K90, with its higher molecular weight, enhances the backing's support and toughness to prevent needle breakage during application. The incorporation of hyaluronic acid (HA) improves both the moisture retention and adhesion properties at the needle tips, ensuring gradual dissolution and release of loaded CUR-M within the skin. In CUR-loaded micellar gel (CUR-M-Gel), PVP K30 increases both adhesive and cohesive forces in the gel through chain entanglement and hydrogen-bonding interactions. Tartaric acid precisely regulates pH levels to adjust crosslinking density; glycerol provides a long-lasting moisturizing environment for the gel; aluminum chloride enhances mechanical stability and controlled drug-release capabilities; NP-700 optimizes dispersion characteristics and compatibility within the system. Results: In vitro experiments demonstrated that the CUR-M-DMNs-Gel composite system exhibited enhanced transdermal penetration, with a cumulative transdermal efficiency significantly surpassing that of single-component formulations. In the mouse skin defect model, CUR-M-DMNs-Gel facilitated collagen deposition and effectively inhibited the expression of inflammatory cytokines (TNF-α, IL-6, and IL-1β). In the mouse skin photoaging model, CUR-M-DMNs-Gel markedly reduced dermal thickness, alleviated damage to elastic fibers, and suppressed inflammatory responses. Conclusions: The CUR-M-DMNs-Gel system can enhance wound healing through subcutaneous localization, achieving long-term sustained efficacy. This innovative approach offers new insights into the treatment of skin injuries.

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来源期刊
Gels
Gels POLYMER SCIENCE-
CiteScore
4.70
自引率
19.60%
发文量
707
审稿时长
11 weeks
期刊介绍: The journal Gels (ISSN 2310-2861) is an international, open access journal on physical (supramolecular) and chemical gel-based materials. Our aim is to encourage scientists to publish their experimental and theoretical results in as much detail as possible. Therefore, there is no restriction on the maximum length of the papers, and full experimental details must be provided so that the results can be reproduced. Short communications, full research papers and review papers are accepted formats for the preparation of the manuscripts. Gels aims to serve as a reference journal with a focus on gel materials for researchers working in both academia and industry. Therefore, papers demonstrating practical applications of these materials are particularly welcome. Occasionally, invited contributions (i.e., original research and review articles) on emerging issues and high-tech applications of gels are published as special issues.
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