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靶向线粒体的双光子激活精密分子光敏剂。

Two-photon activated precision molecular photosensitizer targeting mitochondria.

作者信息

Mariz Inês F A, Pinto Sandra N, Santiago Ana M, Martinho José M G, Recio Javier, Vaquero Juan J, Cuadro Ana M, Maçôas Ermelinda

机构信息

Centro de Química Estrutural (CQE) and Institute of Molecular Sciences (IMS), Instituto Superior Técnico, Universidade de Lisboa, 1049-001, Lisboa, Portugal.

Institute for Bioengineering and Biosciences (IBB) Instituto Superior Técnico, Universidade de Lisboa, Av. Rovisco Pais, 1049-001, Lisboa, Portugal.

出版信息

Commun Chem. 2021 Oct 7;4(1):142. doi: 10.1038/s42004-021-00581-4.

Abstract

Mitochondria metabolism is an emergent target for the development of novel anticancer agents. It is amply recognized that strategies that allow for modulation of mitochondrial function in specific cell populations need to be developed for the therapeutic potential of mitochondria-targeting agents to become a reality in the clinic. In this work, we report dipolar and quadrupolar quinolizinium and benzimidazolium cations that show mitochondria targeting ability and localized light-induced mitochondria damage in live animal cells. Some of the dyes induce a very efficient disruption of mitochondrial potential and subsequent cell death under two-photon excitation in the Near-infrared (NIR) opening up possible applications of azonia/azolium aromatic heterocycles as precision photosensitizers. The dipolar compounds could be excited in the NIR due to a high two-photon brightness while exhibiting emission in the red part of the visible spectra (600-700 nm). Interaction with the mitochondria leads to an unexpected blue-shift of the emission of the far-red emitting compounds, which we assign to emission from the locally excited state. Interaction and possibly aggregation at the mitochondria prevents access to the intramolecular charge transfer state responsible for far-red emission.

摘要

线粒体代谢是新型抗癌药物开发的一个新兴靶点。人们充分认识到,为了使线粒体靶向药物的治疗潜力在临床上成为现实,需要开发能够调节特定细胞群体中线粒体功能的策略。在这项工作中,我们报道了偶极和四极喹嗪鎓和苯并咪唑鎓阳离子,它们在活的动物细胞中表现出线粒体靶向能力和局部光诱导的线粒体损伤。在近红外(NIR)的双光子激发下,一些染料能非常有效地破坏线粒体电位并随后导致细胞死亡,这为氮杂环/氮鎓芳香杂环作为精确光敏剂开辟了可能的应用。由于具有高二光子亮度,偶极化合物可以在近红外区域被激发,同时在可见光谱的红色部分(600 - 700 nm)发射。与线粒体的相互作用导致远红发射化合物的发射出现意外的蓝移,我们将其归因于局部激发态的发射。在线粒体处的相互作用以及可能的聚集阻止了分子内电荷转移态的形成,而该状态是负责远红发射的。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e5b5/9814857/615ccd9f3aac/42004_2021_581_Fig1_HTML.jpg

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