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金属配位效应对二吡咯并嘧啶类光增敏剂光物理性质的影响。

Metal Coordination Effects on the Photophysics of Dipyrrinato Photosensitizers.

机构信息

Molecular Photonics Group, Van 't Hoff Institute for Molecular Sciences, University of Amsterdam, P.O. Box 94157, 1090 GD Amsterdam, The Netherlands.

Medicinal Chemistry, Trinity Translational Medicine Institute, Trinity Centre for Health Sciences, Trinity College Dublin, The University of Dublin St James's Hospital, D08 RX0X Dublin, Ireland.

出版信息

Molecules. 2022 Oct 17;27(20):6967. doi: 10.3390/molecules27206967.

Abstract

Within this work, we review the metal coordination effect on the photophysics of metal dipyrrinato complexes. Dipyrrinato complexes are promising candidates in the search for alternative transition metal photosensitizers for application in photodynamic therapy (PDT). These complexes can be activated by irradiation with light of a specific wavelength, after which, cytotoxic reactive oxygen species (ROS) are generated. The metal coordination allows for the use of the heavy atom effect, which can enhance the triplet generation necessary for generation of ROS. Additionally, the flexibility of these complexes for metal ions, substitutions and ligands allows the possibility to tune their photophysical properties. A general overview of the mechanism of photodynamic therapy and the properties of the triplet photosensitizers is given, followed by further details of dipyrrinato complexes described in the literature that show relevance as photosensitizers for PDT. In particular, the photophysical properties of Re(I), Ru(II), Rh(III), Ir(III), Zn(II), Pd(II), Pt(II), Ni(II), Cu(II), Ga(III), In(III) and Al(III) dipyrrinato complexes are discussed. The potential for future development in the field of (dipyrrinato)metal complexes is addressed, and several new research topics are suggested throughout this work. We propose that significant advances could be made for heteroleptic bis(dipyrrinato)zinc(II) and homoleptic bis(dipyrrinato)palladium(II) complexes and their application as photosensitizers for PDT.

摘要

在这项工作中,我们回顾了金属配位效应对金属二吡咯并甲烷配合物光物理性质的影响。二吡咯并甲烷配合物是寻找用于光动力疗法(PDT)的替代过渡金属光敏剂的有前途的候选物。这些配合物可以通过用特定波长的光照射来激活,之后会产生细胞毒性的活性氧(ROS)。金属配位允许使用重原子效应,这可以增强生成 ROS 所需的三重态生成。此外,这些配合物对于金属离子、取代基和配体的灵活性使得可以调整它们的光物理性质。本文首先概述了光动力疗法的机制和三重态光敏剂的性质,然后详细介绍了文献中描述的二吡咯并甲烷配合物,这些配合物作为 PDT 的光敏剂具有相关性。特别讨论了 Re(I)、Ru(II)、Rh(III)、Ir(III)、Zn(II)、Pd(II)、Pt(II)、Ni(II)、Cu(II)、Ga(III)、In(III) 和 Al(III)二吡咯并甲烷配合物的光物理性质。探讨了(二吡咯并甲烷)金属配合物领域的未来发展潜力,并在本文中提出了几个新的研究课题。我们提出,对于异双核双(二吡咯并甲烷)锌(II)和同核双(二吡咯并甲烷)钯(II)配合物及其作为 PDT 光敏剂的应用,可能会取得重大进展。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f85c/9610856/01fa0fb56058/molecules-27-06967-g001.jpg

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