Chelushkin Pavel S, Shakirova Julia R, Kritchenkov Ilya S, Baigildin Vadim A, Tunik Sergey P
Institute of Chemistry, St. Petersburg State University, Universitetskii pr., 26, 198504, St. Petersburg, Russia.
Dalton Trans. 2022 Jan 25;51(4):1257-1280. doi: 10.1039/d1dt03077a.
Application of NIR (near-infrared) emitting transition metal complexes in biomedicine is a rapidly developing area of research. Emission of this class of compounds in the "optical transparency windows" of biological tissues and the intrinsic sensitivity of their phosphorescence to oxygen resulted in the preparation of several commercial oxygen sensors capable of deep (up to whole-body) and quantitative mapping of oxygen gradients suitable for experimental studies. In addition to this achievement, the last decade has also witnessed the increased growth of successful alternative applications of NIR phosphors that include (i) site-specific and visualization of sophisticated biological models ranging from 3D cell cultures to intact animals; (ii) sensing of various biologically relevant analytes, such as pH, reactive oxygen and nitrogen species, RedOx agents, ; (iii) and several therapeutic applications such as photodynamic (PDT), photothermal (PTT), and photoactivated cancer (PACT) therapies as well as their combinations with other therapeutic and imaging modalities to yield new variants of combined therapies and theranostics. Nevertheless, emerging applications of these compounds in experimental biomedicine and their implementation as therapeutic agents practically applicable in PDT, PTT, and PACT face challenges related to a critically important improvement of their photophysical and physico-chemical characteristics. This review outlines the current state of the art and achievements of the last decade and stresses the most promising trends, major development prospects, and challenges in the design of NIR phosphors suitable for biomedical applications.
近红外(NIR)发光过渡金属配合物在生物医学中的应用是一个快速发展的研究领域。这类化合物在生物组织的“光学透明窗口”中的发射以及其磷光对氧气的固有敏感性,促使人们制备了几种能够进行深度(直至全身)和定量绘制适合实验研究的氧梯度的商业氧传感器。除了这一成果外,过去十年还见证了近红外磷光体成功替代应用的增长,包括(i)对从3D细胞培养到完整动物等复杂生物模型的位点特异性和可视化;(ii)对各种生物相关分析物的传感,如pH值、活性氧和氮物种、氧化还原剂等;(iii)以及几种治疗应用,如光动力(PDT)、光热(PTT)和光活化癌症(PACT)疗法,以及它们与其他治疗和成像方式的组合,以产生联合疗法和治疗诊断学的新变体。然而,这些化合物在实验生物医学中的新兴应用以及它们作为可实际应用于PDT、PTT和PACT的治疗剂的实施面临着与其光物理和物理化学特性的至关重要的改进相关的挑战。本综述概述了当前的技术水平和过去十年的成就,并强调了适合生物医学应用的近红外磷光体设计中最有前景的趋势、主要发展前景和挑战。