College of Pharmacy, The Ohio State University, Columbus, OH 43210, USA.
William G. Lowrie Department of Chemical and Biomolecular Engineering, The Ohio State University, Columbus, OH 43210, USA.
Molecules. 2022 Mar 17;27(6):1943. doi: 10.3390/molecules27061943.
Lipid-based nanoparticles (LBNPs) are biocompatible and biodegradable vesicles that are considered to be one of the most efficient drug delivery platforms. Due to the prominent advantages, such as long circulation time, slow drug release, reduced toxicity, high transfection efficiency, and endosomal escape capacity, such synthetic nanoparticles have been widely used for carrying genetic therapeutics, particularly nucleic acids that can be applied in the treatment for various diseases, including congenital diseases, cancers, virus infections, and chronic inflammations. Despite great merits and multiple successful applications, many extracellular and intracellular barriers remain and greatly impair delivery efficacy and therapeutic outcomes. As such, the current state of knowledge and pitfalls regarding the gene delivery and construction of LBNPs will be initially summarized. In order to develop a new generation of LBNPs for improved delivery profiles and therapeutic effects, the modification strategies of LBNPs will be reviewed. On the basis of these developed modifications, the performance of LBNPs as therapeutic nanoplatforms have been greatly improved and extensively applied in immunotherapies, including infectious diseases and cancers. However, the therapeutic applications of LBNPs systems are still limited due to the undesirable endosomal escape, potential aggregation, and the inefficient encapsulation of therapeutics. Herein, we will review and discuss recent advances and remaining challenges in the development of LBNPs for nucleic acid-based immunotherapy.
基于脂质的纳米颗粒(LBNP)是生物相容性和可生物降解的囊泡,被认为是最有效的药物递送平台之一。由于具有显著的优势,如长循环时间、缓慢的药物释放、降低毒性、高转染效率和内体逃逸能力,这些合成纳米颗粒已被广泛用于携带基因治疗药物,特别是可以应用于治疗各种疾病的核酸,包括先天性疾病、癌症、病毒感染和慢性炎症。尽管有很多优点和多个成功的应用,但是许多细胞外和细胞内的障碍仍然存在,极大地影响了药物的传递效率和治疗效果。因此,将首先总结关于基因传递和 LBNP 构建的当前知识状态和陷阱。为了开发新一代具有改善传递特性和治疗效果的 LBNP,将回顾 LBNP 的修饰策略。基于这些已开发的修饰,LBNP 的性能作为治疗性纳米平台得到了极大的改善,并广泛应用于免疫治疗,包括传染病和癌症。然而,由于不理想的内体逃逸、潜在的聚集和治疗药物的低效包封,LBNP 系统的治疗应用仍然受到限制。本文将综述和讨论基于核酸的免疫治疗中 LBNP 发展的最新进展和仍然存在的挑战。