局部递送治疗银屑病的新策略:纳米载体和能量驱动方法。

Expert opinion on drug delivery Pub Date : 2025-04-01 Epub Date: 2025-03-02 DOI:10.1080/17425247.2025.2472968
Cheng-Yu Lin, Zih-Chan Lin, Yen-Tzu Chang, Tsai-Jie Lin, Jia-You Fang
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引用次数: 0

摘要

银屑病的特点是表皮角质形成细胞的异常分化和过度增生。这种情况对有效给药提出了重大挑战。除了克服皮肤的厚度外,局部治疗还必须克服皮肤屏障复杂的疏水和亲水特性。纳米载体技术的最新进展,包括能量驱动方法和穿透角质层的微针,提供了通过定制物理化学特性来增强药物渗透的有希望的策略。使用谷歌Scholar、PubMed和ScienceDirect数据库进行文献检索。涵盖领域:本综述重点介绍了银屑病治疗的新型局部给药方法的最新研究,解决了当前的治疗方案及其局限性。我们提供了化学纳米配方的全面概述,并探讨了提高递送率的物理策略。此外,我们讨论了各种配方的优点,可以携带不同类型的有效载荷,为患者提供不同的症状管理策略。综述了传统治疗方法,重点介绍了纳米颗粒设计和新型大分子药物的进展。这包括以核糖核酸(RNA)为基础的治疗,以保护大分子药物在体内不被快速清除。专家意见:我们认为,智能设计方法可以提高整个交付应用程序的有效性,同时允许治疗策略的准确性,最终改善患者的治疗效果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Novel strategies in topical delivery for psoriasis treatment: nanocarriers and energy-driven approaches.

Introduction: Psoriasis is characterized by abnormal differentiation and hyperproliferation of epidermal keratinocytes. This condition presents significant challenges for effective drug delivery. In addition to overcoming the thickness of the skin, topical treatments must navigate the complex hydrophobic and hydrophilic properties of the skin barrier. Recent advancements in nanocarrier technologies, including energy-driven methods and microneedles that penetrate the stratum corneum, present promising strategies for enhancing drug permeation through tailored physicochemical properties. A literature search was performed using the databases of Google Scholar, PubMed, and ScienceDirect.

Areas covered: This review highlights recent studies on novel topical delivery methods for psoriasis treatment, addressing current therapeutic options and their limitations. We provide a comprehensive overview of chemical nanoformulations and explore physical strategies to improve delivery rates. Furthermore, we discuss the advantages of various formulations that can carry different types of payloads, offering patients diverse strategies for symptom management. The review covers conventional treatments, emphasizing advancements in nanoparticle design and novel macromolecular drugs. This includes Ribonucleic acid (RNA)-based therapies that protect macromolecular drugs from rapid clearance in the body.

Expert opinion: We argue that intelligent design approaches can enhance efficacy across delivery applications while allowing for precision in treatment strategies, ultimately improving patient outcomes.

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