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传递体:最新进展、作用机制、广泛应用、临床试验及专利

Transfersomes: Recent Advances, Mechanisms, Exhaustive Applications, Clinical Trials, and Patents.

作者信息

Manchanda Deeksha, Makhija Manish, Pandey Parijat, Sharma Manu

机构信息

Department of Pharmacy, Banasthali Vidyapith University, Rajasthan - 304022, India.

Department of Pharmaceutical Sciences, Indira Gandhi University, Meerpur, Rewari - 123401, Haryana, India.

出版信息

Curr Drug Deliv. 2025;22(2):215-230. doi: 10.2174/0115672018295038240209055444.

Abstract

A feasible nano transdermal delivery system generally intends to have specific ideal and distinct characteristics primarily for safety, clinical efficacy, and boosted therapeutic index. The delivery of drugs, particularly macromolecules, across the skin is one of the most strenuous obstacles in front of pharmaceutical scientists. Technology advancement has provided some opportunities to overcome this difficulty by utilising microneedle arrays, ablation, laser methods etc. However, associated uneasiness, painful sensation, and higher cost of therapies limit their day-today use. Therefore, researchers have focused on developing alternate carriers like ultra-deformable liposomes, also termed transfersomes. Transfersomes are composed of a lipid bilayer containing phospholipids and an edge activator to facilitate drug delivery via transdermal route to deeper layers of skin and for higher systemic bioavailability. The bilayer structure of transfersomes allows ease of encapsulation of both hydrophilic and lipophilic drugs with higher permeability than typical liposomes. Therefore, among various vesicular systems, transfersomes have developed much interest in targeted and sustained drug delivery. The current review primarily emphasizes critical aspects of transfersomes, including their applications, clinical trial studies, and patents found in various literature sources.

摘要

一个可行的纳米透皮给药系统通常旨在具备特定的理想且独特的特性,主要是为了安全性、临床疗效和提高治疗指数。药物,尤其是大分子药物透过皮肤的递送是制药科学家面临的最艰巨的障碍之一。技术进步通过利用微针阵列、消融、激光方法等提供了一些克服这一困难的机会。然而,相关的不适感、疼痛感以及较高的治疗成本限制了它们的日常使用。因此,研究人员专注于开发替代载体,如超可变形脂质体,也称为传递体。传递体由含有磷脂的脂质双层和边缘激活剂组成,以促进药物通过透皮途径递送至皮肤深层并实现更高的全身生物利用度。传递体的双层结构使得亲水性和亲脂性药物都易于包封,且通透性高于典型脂质体。因此,在各种囊泡系统中,传递体在靶向和持续药物递送方面引起了极大的兴趣。本综述主要强调传递体的关键方面,包括它们在各种文献来源中的应用、临床试验研究和专利。

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