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具有光生物活性的钌(II)二元化合物的激发态动力学在生物相关环境中发生改变。

Excited State Dynamics of a Photobiologically Active Ru(II) Dyad Are Altered in Biologically Relevant Environments.

作者信息

Reichardt Christian, Schneider Kilian R A, Sainuddin Tariq, Wächtler Maria, McFarland Sherri A, Dietzek Benjamin

机构信息

Leibniz Institute of Photonic Technology (IPHT) , Albert-Einstein-Straße 9, 07745 Jena, Germany.

Institute of Physical Chemistry and Abbe Center of Photonics, Friedrich-Schiller-University Jena , Helmholtzweg 4, 07743 Jena, Germany.

出版信息

J Phys Chem A. 2017 Aug 3;121(30):5635-5644. doi: 10.1021/acs.jpca.7b04670. Epub 2017 Jul 25.

Abstract

In this study femtosecond and nanosecond time-resolved transient absorption spectroscopy was used to investigate the influence of ionic strength and complexity on the excited state dynamics of a Ru(II)-based metal-organic dyad. The bis-heteroleptic complex [Ru(bpy)(ippy)] (1), where bpy = 2,2'-bipyridine and ippy = 2-(1-pyrenyl-1H-imidazo[4,5-f][1,10]phenanthroline, is a potent photosensitizer for in vitro photodynamic therapy (PDT) and photodynamic inactivation (PDI) of microorganisms owing to a long-lived triplet excited state derived from a metal-to-ligand charge-transfer (MLCT) state that is equilibrium with an intraligand (IL) state. The prolonged lifetime provides ample opportunity for bimolecular quenching of this state by oxygen; thus singlet oxygen (O) sensitization is very efficient. In simple aqueous solution, fast cooling within the MLCT manifold is followed by energy transfer to an IL state, which is facilitated by rotation of a pyrenyl unit about the imidazo-pyrenyl (ip) coannular bond. For solutions of 1 in high ionic strength simulated biological fluid (SBF), a more physiologically relevant solvent that contains a complex mixture of ions at pH 7.4, femtosecond studies revealed an additional excited state, possibly based on an ion-ligand interaction. This new state appearing in high ionic strength SBF was not observable in water, simple buffers, or low ionic strength SBF. These photoinduced dynamics were also affected by the presence of biomolecules such as DNA in simple buffer, whereby relaxation on the picosecond time scale was accelerated from 39 to 18 ps with DNA intercalation by 1. The increased rate of coplanarization of the pyrene and the imidazole units was attributed to DNA-induced conformational restriction of the pyrenyl unit relative to the ip bond. Quantitative changes to excited state decay rates of 1 in solutions of high ionic strength were also observed when probed on the microsecond time scale. Notably, the thermalized excited state decay pathways were altered substantially with DNA intercalation, with access to some states being completely blocked. Experimentally, this manifested in the absence of the slowest microsecond decay channel, which is normally observed for 1 in solution. The quantitative and qualitative observations from this study highlight the importance of employing biologically relevant solvents and potential biomolecule targets when the excited state dynamics and photophysical properties (under cell-free conditions) responsible for the potent photobiological effects are assessed in the context of photodynamic therapy and photodynamic inactivation.

摘要

在本研究中,利用飞秒和纳秒时间分辨瞬态吸收光谱研究了离子强度和复杂性对基于钌(II)的金属有机二元体系激发态动力学的影响。双杂配络合物[Ru(bpy)(ippy)](1),其中bpy = 2,2'-联吡啶,ippy = 2-(1-芘基-1H-咪唑并[4,5-f][1,10]菲咯啉,由于源自金属到配体电荷转移(MLCT)态且与配体内(IL)态处于平衡的长寿命三重激发态,是用于体外光动力疗法(PDT)和微生物光动力失活(PDI)的有效光敏剂。延长的寿命为该态被氧进行双分子猝灭提供了充足机会;因此单线态氧(O)敏化非常有效。在简单水溶液中,在MLCT流形内快速冷却后接着是能量转移到IL态,这通过芘基单元围绕咪唑-芘基(ip)共环键的旋转而促进。对于在高离子强度模拟生物流体(SBF)中的1的溶液,一种在pH 7.4含有复杂离子混合物的更具生理相关性的溶剂,飞秒研究揭示了一种额外的激发态,可能基于离子-配体相互作用。这种在高离子强度SBF中出现的新态在水中、简单缓冲液或低离子强度SBF中不可观察到。这些光诱导动力学也受到简单缓冲液中诸如DNA等生物分子存在的影响,由此通过1进行DNA插入时皮秒时间尺度上的弛豫从39 ps加速到18 ps。芘和咪唑单元共面化速率的增加归因于DNA诱导的芘基单元相对于ip键的构象限制。当在微秒时间尺度上探测时,也观察到高离子强度溶液中1的激发态衰减速率的定量变化。值得注意的是,热化的激发态衰减途径随着DNA插入而显著改变,一些态的通道完全被阻断。在实验上,这表现为不存在最慢的微秒衰减通道,该通道通常在溶液中的1中观察到。本研究的定量和定性观察突出了在光动力疗法和光动力失活的背景下评估负责有效光生物学效应的激发态动力学和光物理性质(在无细胞条件下)时采用生物相关溶剂和潜在生物分子靶标的重要性。

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