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新兴的纳米医学增强/增强型纳米动力疗法超越传统光动力疗法。

Emerging Nanomedicine-Enabled/Enhanced Nanodynamic Therapies beyond Traditional Photodynamics.

机构信息

Medmaterial Research Center, Jiangsu University Affiliated People's Hospital, Zhenjiang, 212002, P. R. China.

Institute of Diagnostic and Interventional Radiology, Shanghai Jiao Tong University Affiliated Sixth People's Hospital, Shanghai, 200233, China.

出版信息

Adv Mater. 2021 Mar;33(12):e2005062. doi: 10.1002/adma.202005062. Epub 2021 Feb 9.

DOI:10.1002/adma.202005062
PMID:33565157
Abstract

The rapid knowledge growth of nanomedicine and nanobiotechnology enables and promotes the emergence of distinctive disease-specific therapeutic modalities, among which nanomedicine-enabled/augmented nanodynamic therapy (NDT), as triggered by either exogenous or endogenous activators on nanosensitizers, can generate reactive radicals for accomplishing efficient disease nanotherapies with mitigated side effects and endowed disease specificity. As one of the most representative modalities of NDT, traditional light-activated photodynamics suffers from the critical and unsurmountable issues of the low tissue-penetration depth of light and the phototoxicity of the photosensitizers. To overcome these obstacles, versatile nanomedicine-enabled/augmented NDTs have been explored for satisfying varied biomedical applications, which strongly depend on the physicochemical properties of the involved nanomedicines and nanosensitizers. These distinctive NDTs refer to sonodynamic therapy (SDT), thermodynamic therapy (TDT), electrodynamic therapy (EDT), piezoelectric dynamic therapy (PZDT), pyroelectric dynamic therapy (PEDT), radiodynamic therapy (RDT), and chemodynamic therapy (CDT). Herein, the critical roles, functions, and biological effects of nanomedicine (e.g., sonosensitizing, photothermal-converting, electronic, piezoelectric, pyroelectric, radiation-sensitizing, and catalytic properties) for enabling the therapeutic procedure of NDTs, are highlighted and discussed, along with the underlying therapeutic principle and optimization strategy for augmenting disease-therapeutic efficacy and biosafety. The present challenges and critical issues on the clinical translations of NDTs are also discussed and clarified.

摘要

纳米医学和纳米生物技术的快速知识增长使得独特的针对特定疾病的治疗方式得以出现和发展,其中,纳米敏化剂的外源性或内源性激活物触发的纳米动力疗法(NDT)可以产生反应性自由基,从而实现高效的疾病纳米治疗,同时减轻副作用并赋予疾病特异性。作为 NDT 最具代表性的方式之一,传统的光激活光动力疗法受到光的组织穿透深度低和光敏剂光毒性的关键和不可逾越的问题的限制。为了克服这些障碍,已经探索了各种基于纳米医学的增强型 NDT,以满足不同的生物医学应用,这些应用强烈依赖于所涉及的纳米医学和纳米敏化剂的物理化学性质。这些独特的 NDT 包括声动力疗法(SDT)、热力学疗法(TDT)、电动动力疗法(EDT)、压电动力疗法(PZDT)、热释电动力疗法(PEDT)、放射动力疗法(RDT)和化学动力疗法(CDT)。本文重点讨论和讨论了纳米医学(如声敏化、光热转化、电子、压电、热释电、辐射敏化和催化特性)在实现 NDT 治疗过程中的关键作用、功能和生物学效应,以及增强疾病治疗效果和生物安全性的潜在治疗原理和优化策略。还讨论和阐明了 NDT 临床转化面临的挑战和关键问题。

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