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一种用于未来癌症疗法的研究、开发和监管的纳米医学结构-活性框架。

A Nanomedicine Structure-Activity Framework for Research, Development, and Regulation of Future Cancer Therapies.

机构信息

Department of Biology, University of Waterloo, 200 University Ave. W, Waterloo, Ontario N2L 3G1, Canada.

Department of Medical Physics, Grand River Regional Cancer Centre, Kitchener, Ontario N2G 1G3, Canada.

出版信息

ACS Nano. 2022 Nov 22;16(11):17497-17551. doi: 10.1021/acsnano.2c06337. Epub 2022 Nov 2.

Abstract

Despite their clinical success in drug delivery applications, the potential of theranostic nanomedicines is hampered by mechanistic uncertainty and a lack of science-informed regulatory guidance. Both the therapeutic efficacy and the toxicity of nanoformulations are tightly controlled by the complex interplay of the nanoparticle's physicochemical properties and the individual patient/tumor biology; however, it can be difficult to correlate such information with observed outcomes. Additionally, as nanomedicine research attempts to gradually move away from large-scale animal testing, the need for computer-assisted solutions for evaluation will increase. Such models will depend on a clear understanding of structure-activity relationships. This review provides a comprehensive overview of the field of cancer nanomedicine and provides a knowledge framework and foundational interaction maps that can facilitate future research, assessments, and regulation. By forming three complementary maps profiling nanobio interactions and pathways at different levels of biological complexity, a clear picture of a nanoparticle's journey through the body and the therapeutic and adverse consequences of each potential interaction are presented.

摘要

尽管在药物输送应用中取得了临床成功,但治疗诊断纳米医学的潜力受到机制不确定性和缺乏科学指导监管的阻碍。纳米制剂的治疗效果和毒性都受到纳米颗粒理化性质与个体患者/肿瘤生物学之间复杂相互作用的严格控制;然而,将这些信息与观察到的结果联系起来可能很困难。此外,随着纳米医学研究逐渐摆脱大规模动物试验,对用于评估的计算机辅助解决方案的需求将会增加。此类模型将依赖于对结构-活性关系的清晰理解。本综述全面概述了癌症纳米医学领域,并提供了一个知识框架和基础相互作用图,以促进未来的研究、评估和监管。通过形成三个互补的图谱,分别对不同复杂程度的纳米生物相互作用和途径进行描述,呈现了纳米颗粒在体内的迁移路径以及每种潜在相互作用的治疗和不良反应的清晰画面。

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