盐酸雷洛昔芬脂质纳米胶囊经皮水凝胶的研制与优化。

IF 3.4 Q2 PHARMACOLOGY & PHARMACY Therapeutic delivery Pub Date : 2025-02-01 Epub Date: 2025-01-29 DOI:10.1080/20415990.2025.2457312
Shashank Chaturvedi, Arushi Gaur, Anuj Garg
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引用次数: 0

摘要

目的:研制并优化盐酸雷洛昔芬脂质纳米胶囊水凝胶的透皮给药工艺。方法:采用33 Box-Behnken设计和数值优化方法,获得最佳配方。随后,采用相转温法制备了优化后的盐酸雷洛昔芬脂质纳米胶囊,并对其理化性质进行了表征。此外,将优化后的脂质纳米胶囊装入水凝胶中,并对其流变学、涂抹性、离体皮肤渗透、沉积和刺激进行了评估。结果:数值优化得到理想值为0.852,预测误差小的最优公式。优化后的配方具有良好的包封率(79.56±2.34%)、纳米尺寸(56.68±1.2 nm)、单分散性(PDI = 0.176±0.2)、球形形貌和良好的药物赋形剂相容性。盐酸雷洛昔芬脂质纳米胶囊水凝胶具有剪切变薄、持续给药、皮肤相容性好、渗透性(2倍)和保留率(3.37)显著高于对照组。结论:成功研制了盐酸雷洛昔芬脂质纳米胶囊水凝胶,具有良好的皮肤渗透性、滞留性和外用相容性。该制剂可能克服与盐酸雷洛昔芬口服递送相关的挑战,包括低生物利用度。
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Development and optimization of raloxifene hydrochloride loaded lipid nanocapsule based hydrogel for transdermal delivery.

Aim: Development and optimization of raloxifene hydrochloride loaded lipid nanocapsule hydrogel for transdermal delivery.

Method: A 33 Box-Behnken Design and numerical optimization was performed to obtain the optimized formulation. Subsequently, the optimized raloxifene hydrochloride loaded lipid nanocapsule was developed using phase inversion temperature and characterized for physicochemical properties. Furthermore, the optimized lipid nanocapsule was loaded into a hydrogel and evaluated for rheology, spreadability, ex-vivo skin permeation, deposition and irritation.

Results: The numerical optimization suggested an optimal formula with desirability value of 0.852 and low prediction errors. The optimized formulation showed good % drug entrapment efficiency (79.56 ± 2.34%), nanometer size (56.68 ± 1.2 nm), monodisperse nature (PDI = 0.176 ± 0.2), spherical morphology and good drug-excipient compatibility. The raloxifene hydrochloride loaded lipid nanocapsule hydrogel showed shear thinning properties, sustained drug delivery, dermal compatibility and significantly higher permeability (2-fold), retention (3.37) for raloxifene hydrochloride compared to the control.

Conclusion: The present study showed a successful development of raloxifene hydrochloride loaded lipid nanocapsule hydrogel with improved skin permeation, retention, and good topical compatibility. This formulation may overcome the challenges associated with raloxifene hydrochloride oral delivery including low bioavailability.

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来源期刊
Therapeutic delivery
Therapeutic delivery PHARMACOLOGY & PHARMACY-
CiteScore
5.50
自引率
0.00%
发文量
25
期刊介绍: Delivering therapeutics in a way that is right for the patient - safe, painless, reliable, targeted, efficient and cost effective - is the fundamental aim of scientists working in this area. Correspondingly, this evolving field has already yielded a diversity of delivery methods, including injectors, controlled release formulations, drug eluting implants and transdermal patches. Rapid technological advances and the desire to improve the efficacy and safety profile of existing medications by specific targeting to the site of action, combined with the drive to improve patient compliance, continue to fuel rapid research progress. Furthermore, the emergence of cell-based therapeutics and biopharmaceuticals such as proteins, peptides and nucleotides presents scientists with new and exciting challenges for the application of therapeutic delivery science and technology. Successful delivery strategies increasingly rely upon collaboration across a diversity of fields, including biology, chemistry, pharmacology, nanotechnology, physiology, materials science and engineering. Therapeutic Delivery recognizes the importance of this diverse research platform and encourages the publication of articles that reflect the highly interdisciplinary nature of the field. In a highly competitive industry, Therapeutic Delivery provides the busy researcher with a forum for the rapid publication of original research and critical reviews of all the latest relevant and significant developments, and focuses on how the technological, pharmacological, clinical and physiological aspects come together to successfully deliver modern therapeutics to patients. The journal delivers this essential information in concise, at-a-glance article formats that are readily accessible to the full spectrum of therapeutic delivery researchers.
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