The School of Chemistry , The University of Melbourne , Parkville , Victoria , Australia , 3010.
Drug Delivery, Disposition and Dynamics, Monash Institute of Pharmaceutical Sciences , Monash University , Parkville , Victoria , Australia , 3052.
Bioconjug Chem. 2019 Feb 20;30(2):263-272. doi: 10.1021/acs.bioconjchem.8b00732. Epub 2018 Dec 5.
Many emerging therapies rely on the delivery of biological cargo into the cytosol. Nanoparticle delivery systems hold great potential to deliver these therapeutics but are hindered by entrapment and subsequent degradation in acidic compartments of the endo/lysosomal pathway. Engineering polymeric delivery systems that are able to escape the endosome has significant potential to address this issue. However, the development of safe and effective delivery systems that can reliably deliver cargo to the cytosol is still a challenge. Greater understanding of the properties that govern endosomal escape and how it can be quantified is important for the development of more efficient nanoparticle delivery systems. This Topical Review highlights the current understanding of the mechanisms by which nanoparticles escape the endosome, and the emerging techniques to improve the quantification of endosomal escape.
许多新兴疗法依赖于将生物有效载荷递送到细胞质中。纳米颗粒递送系统具有很大的潜力来递送这些治疗剂,但受到内体/溶酶体途径中酸性隔室中捕获和随后降解的阻碍。能够逃避内涵体的工程聚合物递送系统具有解决此问题的巨大潜力。然而,开发能够将货物可靠递送到细胞质的安全有效的递送系统仍然是一个挑战。更好地了解控制内涵体逃逸的特性以及如何对其进行定量对于开发更有效的纳米颗粒递送系统非常重要。本专题评论强调了当前对纳米颗粒逃避内涵体的机制的理解,以及改善内涵体逃逸定量的新兴技术。