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Targeting Mitochondria by Zn(II)N-Alkylpyridylporphyrins: The Impact of Compound Sub-Mitochondrial Partition on Cell Respiration and Overall Photodynamic Efficacy

机译:Zn(II)N-烷基吡啶基卟啉靶向线粒体:复合线粒体亚分区对细胞呼吸和整体光动力功效的影响。

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摘要

Mitochondria play a key role in aerobic ATP production and redox control. They harness crucial metabolic pathways and control cell death mechanisms, properties that make these organelles essential for survival of most eukaryotic cells. Cancer cells have altered cell death pathways and typically show a shift towards anaerobic glycolysis for energy production, factors which point to mitochondria as potential culprits in cancer development. Targeting mitochondria is an attractive approach to tumor control, but design of pharmaceutical agents based on rational approaches is still not well established. The aim of this study was to investigate which structural features of specially designed Zn(II)N-alkylpyridylporphyrins would direct them to mitochondria and to particular mitochondrial targets. Since Zn(II)N-alkylpyridylporphyrins can act as highly efficient photosensitizers, their localization can be confirmed by photodamage to particular mitochondrial components. Using cultured LS174T adenocarcinoma cells, we found that subcellular distribution of Zn-porphyrins is directed by the nature of the substituents attached to the meso pyridyl nitrogens at the porphyrin ring. Increasing the length of the aliphatic chain from one carbon (methyl) to six carbons (hexyl) increased mitochondrial uptake of the compounds. Such modifications also affected sub-mitochondrial distribution of the Zn-porphyrins. The amphiphilic hexyl derivative (ZnTnHex-2-PyP) localized in the vicinity of cytochrome c oxidase complex, causing its inactivation during illumination. Photoinactivation of critical cellular targets explains the superior efficiency of the hexyl derivative in causing mitochondrial photodamage, and suppressing cellular respiration and survival. Design of potent photosensitizers and redox-active scavengers of free radicals should take into consideration not only selective organelle uptake and localization, but also selective targeting of critical macromolecular structures.
机译:线粒体在有氧ATP产生和氧化还原控制中起关键作用。它们利用关键的代谢途径并控制细胞死亡机制,这些特性使这些细胞器对于大多数真核细胞的生存至关重要。癌细胞改变了细胞死亡途径,通常表现出向厌氧糖酵解的转化以产生能量,这些因素表明线粒体是癌症发展的潜在元凶。靶向线粒体是控制肿瘤的一种有吸引力的方法,但是基于合理方法的药物设计仍然没有很好的建立。这项研究的目的是研究专门设计的Zn(II)N-烷基吡啶基卟啉的哪些结构特征将其引导至线粒体和特定的线粒体靶标。由于Zn(II)N-烷基吡啶基卟啉可以充当高效的光敏剂,因此可以通过对特定线粒体组分的光损伤来确认它们的定位。使用培养的LS174T腺癌细胞,我们发现Zn-卟啉的亚细胞分布是由在卟啉环上与中吡啶基氮原子相连的取代基的性质决定的。脂族链的长度从一个碳(甲基)增加到六个碳(己基)会增加化合物的线粒体吸收。此类修饰也影响锌卟啉的线粒体下分布。两亲己基衍生物(ZnTnHex-2-PyP)位于细胞色素c氧化酶复合物附近,导致其在光照过程中失活。关键细胞靶标的光灭活解释了己基衍生物在引起线粒体光损伤,抑制细胞呼吸和存活方面的卓越功效。自由基的有效光敏剂和氧化还原活性清除剂的设计不仅应考虑选择性细胞器的摄取和定位,还应考虑对关键大分子结构的选择性靶向。

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