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首页> 外文期刊>Chemical Reviews >Mitochondria-Targeted Triphenylphosphonium-Based Compounds: Syntheses, Mechanisms of Action, and Therapeutic and Diagnostic Applications
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Mitochondria-Targeted Triphenylphosphonium-Based Compounds: Syntheses, Mechanisms of Action, and Therapeutic and Diagnostic Applications

机译:线粒体靶向三苯基膦鏻的化合物:合成,作用机制和治疗和诊断应用

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摘要

Mitochondria are recognized as one of the most important targets for new drug design in cancer, cardiovascular, and neurological diseases. Currently, the most effective way to deliver drugs specifically to mitochondria is by covalent linking a lipophilic cation such as an alkyltriphenylphosphonium moiety to a pharmacophore of interest. Other delocalized lipophilic cations, such as rhodamine, natural and synthetic mitochondria-targeting peptides, and nanoparticle vehicles, have, also been used for mitochondrial delivery of small molecules. Depending on the approach used, and the cell and mitochondrial membrane potentials, more than 1000-fold higher mitochondrial concentration can be achieved. Mitochondrial targeting has been developed to study mitochondrial physiology and dysfunction and the interaction between mitochondria and other subcellular organelles and for treatment of a variety of diseases such as neurodegeneration and cancer. In this Review, we discuss efforts to target small-molecule compounds to mitochondria for probing mitochondria function, as. diagnostic tools and potential therapeutics. We describe the physicochemical basis for mitochondrial accumulation of lipophilic cations, synthetic chemistry strategies to target compounds to mitochondria, mitochondrial probes, and sensors, and examples of mitochondrial targeting of bioactive compounds. Finally, we review published attempts to apply mitochondria-targeted agents for the treatment of cancer and neurodegenerative diseases.
机译:线粒体被认为是癌症,心血管和神经疾病的新药物设计中最重要的目标之一。目前,特异性地向线粒体提供药物的最有效方法是通过将亲脂性阳离子如烷基三苯基鏻部分与感兴趣的药物联系起来。其他分层化的亲脂性阳离子,例如罗丹明,天然和合成线粒体靶向肽,以及纳米颗粒车也已用于小分子的线粒体递送。取决于所使用的方法,和细胞和线粒体膜电位,可以实现超过1000倍的线粒体浓度。已经开发了线粒体靶向,以研究线粒体生理和功能障碍以及线粒体和其他亚细胞细胞器之间的相互作用,并用于治疗各种疾病,如神经变性和癌症。在本综述中,我们讨论旨在靶向线粒体的小分子化合物,用于探测线粒体功能,如。诊断工具和潜在的治疗方法。我们描述了对脂质化阳离子,靶向化合物的合成化学策略对线粒体,线粒体探针和传感器的影响的物理化学基础,以及生物活性化合物的线粒体靶向的实例。最后,我们审查发布的试图施用线粒体靶向药物以治疗癌症和神经变性疾病。

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  • 来源
    《Chemical Reviews》 |2017年第15期|共78页
  • 作者单位

    Med Coll Wisconsin Dept Biophys 8701 Watertown Plank Rd Milwaukee WI 53226 USA;

    Med Coll Wisconsin Dept Biophys 8701 Watertown Plank Rd Milwaukee WI 53226 USA;

    Lodz Univ Technol Inst Appl Radiat Chem Ul Wroblewskiego 15 PL-93590 Lodz Poland;

    Aix Marseille Univ CNRS ICR UMR 7273 F-13013 Marseille France;

    Aix Marseille Univ CNRS ICR UMR 7273 F-13013 Marseille France;

    Med Coll Wisconsin Dept Biophys 8701 Watertown Plank Rd Milwaukee WI 53226 USA;

    Med Coll Wisconsin Dept Biophys 8701 Watertown Plank Rd Milwaukee WI 53226 USA;

    Cardiovasc Fdn Colombia Biotechnol Labs Translat Biomed Res Grp Carrera 5a 6-33 Santander 681003 Colombia;

    Med Coll Wisconsin Dept Biophys 8701 Watertown Plank Rd Milwaukee WI 53226 USA;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学;
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