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米诺环素通过抑制腺嘌呤核苷酸转位酶来发挥解偶联和抑制线粒体呼吸的作用。

Minocycline exerts uncoupling and inhibiting effects on mitochondrial respiration through adenine nucleotide translocase inhibition.

机构信息

Grupo de Neurofarmacología, IDINE-UCLM, Albacete, Spain.

出版信息

Pharmacol Res. 2012 Jan;65(1):120-8. doi: 10.1016/j.phrs.2011.08.007. Epub 2011 Aug 22.

Abstract

The present study was aimed to provide a better understanding of the mitochondria-targeted actions of minocycline (MC), a second-generation tetracycline which has cytoprotective effects. Although the specific mechanisms underlying its activity remained elusive, considerable amounts of data indicated mitochondria as the primary pharmacological target of MC. Previous reports have shown that MC affects the oxygen-uptake rate by isolated mitochondria in different respiratory states. Here, we report on the effect of MC, in the range 50-200μM, on mitochondrial respiration. State 3 respiration titration with carboxyatractyloside revealed that MC inhibits the adenine nucleotide translocase. Furthermore, we analyze MC channel-forming capacity in the lipid membrane bilayer. Our results confirmed the crucial role of Δψ and showed a dependence on Ca(2+) for MC to have an effect on mitochondria. Our data also indicated that outer and inner mitochondrial membranes contribute differently to this effect, involving the presence of Δψ (the inner membrane) and VDAC (the outer membrane). Data from three isosmotic media indicate that MC does not increase the permeability of the inner membrane to protons or potassium. In addition, by using mitoplasts and ruthenium red, we showed that Ca(2+) uptake is not involved in the MC effect, suggesting involvement of VDAC in the MC interaction with the outer membrane. Our data contribute to unravel the mechanisms behind the mitochondria-targeted activity of the cytoprotective drug MC.

摘要

本研究旨在更好地了解米诺环素(MC)的线粒体靶向作用,米诺环素是一种具有细胞保护作用的第二代四环素。虽然其确切的作用机制仍不清楚,但大量数据表明,MC 的主要药理靶点是线粒体。先前的报告表明,MC 影响不同呼吸状态下分离线粒体的耗氧量。在这里,我们报告了 MC(50-200μM)对线粒体呼吸的影响。用羧基三脉苷进行的状态 3 呼吸滴定表明,MC 抑制腺嘌呤核苷酸转位酶。此外,我们还分析了 MC 在脂质膜双层中的成孔能力。我们的结果证实了 Δψ 的关键作用,并表明 MC 对线粒体的作用依赖于 Ca2+。我们的数据还表明,内外膜对这种效应的贡献不同,涉及到 Δψ(内膜)和 VDAC(外膜)的存在。来自三种等渗介质的数据表明,MC 不会增加内膜对质子或钾的通透性。此外,通过使用mitoplasts 和钌红,我们表明 Ca2+摄取不参与 MC 效应,这表明 VDAC 参与了 MC 与外膜的相互作用。我们的数据有助于揭示细胞保护药物 MC 的线粒体靶向活性的背后机制。

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