Liu Jing, Guo Mengyu, Chen Chunying
CAS Key Laboratory for Biomedical Effects of Nanomaterials and Nanosafety and CAS Center for Excellence in Nanoscience, National Center for Nanoscience and Technology of China, Beijing 100190, China.
CAS Key Laboratory for Biomedical Effects of Nanomaterials and Nanosafety and CAS Center for Excellence in Nanoscience, National Center for Nanoscience and Technology of China, Beijing 100190, China; GBA National Institute for Nanotechnology Innovation, Guangzhou 510700, China; Research Unit of Nanoscience and Technology, Chinese Academy of Medical Sciences, Beijing 100730, China.
Adv Drug Deliv Rev. 2022 Jul;186:114318. doi: 10.1016/j.addr.2022.114318. Epub 2022 May 6.
Controllable nano-assembly with stimuli-responsive groups is emerging as a powerful strategy to generate theranostic nanosystems that meet unique requirements in modern medicine. However, this prospective field is still in a proof-of-concept stage due to the gaps in our understanding of complex-(nano-assemblies)-complex-(biosystems) interactions. Indeed, stimuli-responsive assembly-disassembly is, in and of itself, a process of nano-bio interactions, the key steps for biological fate and functional activity of nano-assemblies. To provide a comprehensive understanding of these interactions in this review, we first propose a 4W1H principle (Where, When, What, Which and How) to delineate the relevant dynamic biological processes, behaviour and fate of nano-assemblies. We further summarize several key parameters that govern effective nano-bio interactions. The effects of these kinetic parameters on ADMET processes (absorption, distribution, metabolism, excretion and transformation) are then discussed. Furthermore, we provide an overview of the challenges facing the evaluation of nano-bio interactions of assembled nanodrugs. We finally conclude with future perspectives on safe-by-design and application-driven-design of nano-assemblies. This review will highlight the dynamic biological and physicochemical parameters of nano-bio interactions and bridge discrete concepts to build a full spectrum understanding of the biological outcomes of nano-assemblies. These principles are expected to pave the way for future development and clinical translation of precise, safe and effective nanomedicines with intelligent theranostic features.
具有刺激响应基团的可控纳米组装正成为一种强大的策略,用于构建满足现代医学独特需求的治疗诊断纳米系统。然而,由于我们对复杂的(纳米组装体)-复杂的(生物系统)相互作用理解不足,这个有前景的领域仍处于概念验证阶段。事实上,刺激响应性组装-拆卸本身就是一个纳米-生物相互作用的过程,是纳米组装体生物学命运和功能活性的关键步骤。为了在本综述中全面理解这些相互作用,我们首先提出一个4W1H原则(何处、何时、何物、哪些以及如何)来描述纳米组装体相关的动态生物学过程、行为和命运。我们进一步总结了几个控制有效纳米-生物相互作用的关键参数。然后讨论了这些动力学参数对ADMET过程(吸收、分布、代谢、排泄和转化)的影响。此外,我们概述了评估组装纳米药物纳米-生物相互作用所面临的挑战。我们最后以纳米组装体的设计安全性和应用驱动设计的未来展望作为总结。本综述将突出纳米-生物相互作用的动态生物学和物理化学参数,并衔接离散的概念,以全面理解纳米组装体的生物学结果。这些原则有望为具有智能治疗诊断功能的精确、安全和有效的纳米药物的未来发展和临床转化铺平道路。