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具有肿瘤靶向特性的环金属化钯纳米结构在活体小鼠中的光学和超分子性质:量子力学解释

Optical and Supramolecular Properties of Cyclometalated Palladium Nanostructures with Tumor Targeting Properties in Living Mice: A Quantum Mechanics Interpretation.

作者信息

Zazza Costantino, Sanna Nico, Borocci Stefano, Grandinetti Felice

机构信息

Department for Innovation in Biological, Agro-food and Forest systems (DIBAF), Università della Tuscia, L.go dell'Università, s.n.c., 01100, Viterbo, Italy.

Istituto per la Scienza e Tecnologia dei Plasmi (ISTP) del CNR, Via G. Amendola 122/D, 70126, Bari, Italy.

出版信息

Chemphyschem. 2024 Dec 2;25(23):e202400420. doi: 10.1002/cphc.202400420. Epub 2024 Sep 21.

Abstract

The recent discovery that metallophilic interactions between cyclometalated palladium supramolecular nanostructures - with efficient tumour accumulation rate in a skin melanoma model - maintain excellent photodynamic properties even in a hypoxic microenvironment has inspired the present study focused on the theoretical predictions of optical properties of the bis-cyclometalated palladium compound in different contexts. More specifically, structural and UV/Vis absorption properties of both monomeric and dimeric forms of this anticancer drug are well reproduced with a Time-Dependent Density Functional Theoretical (TD-DFT) approach based on Exchange-Correlation (XC) hybrid functionals in conjunction with conductor-like and polarization solvation effects. A further novelty is represented by a fine investigation of the supramolecular interactions between the different subunits of the drug via dispersion force correction and Quantum Theory of Atoms in Molecules (QTAIM). This contribution while supporting the photoexcitation properties derived in laboratory following the self-assembly of monomeric units when passing from dimethyl sulfoxide (DMSO) to a HO/DMSO mixture at 298 K, shed some light on the nature of the chemical interactions modulating the formation of nano-size aggregates.

摘要

最近发现,在皮肤黑色素瘤模型中具有高效肿瘤积累率的环金属化钯超分子纳米结构之间的亲金属相互作用,即使在缺氧微环境中也能保持优异的光动力特性,这激发了本研究关注双环金属化钯化合物在不同环境下光学性质的理论预测。更具体地说,基于包含导体类和极化溶剂化效应的交换相关(XC)杂化泛函的含时密度泛函理论(TD-DFT)方法,很好地再现了这种抗癌药物单体和二聚体形式的结构及紫外/可见吸收特性。通过色散力校正和分子中的原子量子理论(QTAIM)对药物不同亚基之间的超分子相互作用进行精细研究,这是另一个新颖之处。这一贡献在支持从二甲基亚砜(DMSO)转变为298K下的HO/DMSO混合物时单体单元自组装后在实验室中获得的光激发特性的同时,也揭示了调节纳米尺寸聚集体形成的化学相互作用的本质。

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