Suppr超能文献

根皮苷传递体经皮给药系统的设计、优化与体内评价。

Phloretin Transfersomes for Transdermal Delivery: Design, Optimization, and In Vivo Evaluation.

机构信息

State Key Laboratory of Research & Development of Characteristic Qin Medicine Resources (Cultivation), and Shaanxi Key Laboratory of Chinese Medicine Fundamentals and New Drugs Research, and Shaanxi Collaborative Innovation Center of Chinese Medicinal Resources Industrialization, Shaanxi University of Chinese Medicine, Xi'an 712046, China.

Yulin Hospital of Traditional Chinese Medicine, Yulin 719000, China.

出版信息

Molecules. 2023 Sep 24;28(19):6790. doi: 10.3390/molecules28196790.

Abstract

BACKGROUND

Phloretin (Phl) is a flavonoid compound that contains multiple phenolic hydroxyl groups. It is found in many plants, such as apple leaves, lychee pericarp, and begonia, and has various biological activities, such as antioxidant and anticancer effects. The strong hydrogen bonding between Phl molecules results in poor water solubility and low bioavailability, and thus the scope of the clinical application of Phl is limited. Therefore, it is particularly important to improve the water solubility of Phl for its use to further combat or alleviate skin aging and oxidative damage and develop antioxidant products for the skin. The purpose of this study was to develop and evaluate a phloretin transfersome gel (PTG) preparation for transdermal drug delivery to improve the bioavailability of the drug and delay aging.

METHODS

Phloretin transfersomes (Phl-TFs) were prepared and optimized by the thin-film dispersion-ultrasonication method. Phl-TFs were characterized by transmission electron microscopy (TEM), differential scanning calorimetry (DSC), Fourier transform infrared (FTIR) spectroscopy, and X-ray diffraction (XRD). The Log P method was used to determine the solubility of the Phl-TFs. The skin penetration ability of the prepared PTG was evaluated using the Franz diffusion cell method. In addition, the in vivo pharmacokinetics of PTG were studied in rats, and an antioxidant activity investigation was conducted using a D-gal rat model.

RESULTS

Phl-TFs were successfully prepared with a Soybean Phosphatidylcholine (SPC)/CHOL ratio of 2.7:1 /, a phloretin concentration of 1.3 mg/mL, a hydration time of 46 min, an ultrasound time of 5 min, and an ultrasound power of 180 W. The Log P was 2.26, which was significantly higher than that of phloretin ( < 0.05, paired test). The results of the in vitro penetration test demonstrated that the cumulative skin penetration of the Phl-TFs after 24 h was 842.73 ± 20.86 μg/cm. The data from an in vivo pharmacokinetic study showed that the C and AUC of PTG were 1.39- and 1.97-fold higher than those of the phloretin solution gel (PSG), respectively ( < 0.05, paired test). The experimental results in aging rats showed that PTG had a better antioxidant effect.

CONCLUSIONS

Phl-TFs and PTG preparations with a good shape, safety, and stability were successfully prepared. In vivo pharmacokinetics and preliminary antioxidant experiments further verified the transdermal penetration and antioxidant activity of the phloretin transdermal drug delivery preparation, providing an experimental basis for its further development.

摘要

背景

根皮苷(Phl)是一种含有多个酚羟基的类黄酮化合物。它存在于许多植物中,如苹果叶、荔枝果皮和秋海棠,具有多种生物活性,如抗氧化和抗癌作用。Phl 分子之间的强氢键导致其水溶性差、生物利用度低,因此 Phl 的临床应用范围有限。因此,提高 Phl 的水溶性对于进一步对抗或缓解皮肤衰老和氧化损伤以及开发皮肤抗氧化产品非常重要。本研究旨在开发和评价一种根皮苷传递体凝胶(PTG)制剂,用于透皮给药,以提高药物的生物利用度并延缓衰老。

方法

采用薄膜分散-超声法制备根皮苷传递体(Phl-TFs),并对其进行优化。采用透射电子显微镜(TEM)、差示扫描量热法(DSC)、傅里叶变换红外光谱(FTIR)和 X 射线衍射(XRD)对 Phl-TFs 进行表征。采用 Log P 法测定 Phl-TFs 的溶解度。采用 Franz 扩散池法评价制备的 PTG 的透皮能力。此外,在大鼠体内进行了 PTG 的药代动力学研究,并采用 D-半乳糖大鼠模型进行了抗氧化活性研究。

结果

成功制备了 SPC/CHOL 比为 2.7:1/、Phl 浓度为 1.3mg/mL、水合时间为 46min、超声时间为 5min、超声功率为 180W 的 Phl-TFs。Log P 为 2.26,明显高于 Phl(<0.05,配对 t 检验)。体外渗透试验结果表明,Phl-TFs 在 24h 后累积皮肤渗透量为 842.73±20.86μg/cm。体内药代动力学研究结果表明,PTG 的 C 和 AUC 分别是 Phl 溶液凝胶(PSG)的 1.39 倍和 1.97 倍(<0.05,配对 t 检验)。在衰老大鼠的实验结果表明,PTG 具有更好的抗氧化作用。

结论

成功制备了形态、安全性和稳定性良好的 Phl-TFs 和 PTG 制剂。体内药代动力学和初步抗氧化实验进一步验证了 Phl 经皮给药制剂的透皮渗透和抗氧化活性,为其进一步开发提供了实验依据。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9241/10574780/cf99fa379359/molecules-28-06790-g001.jpg

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验