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Minocycline and Doxycycline but not Other Tetracycline-Derived Compounds Protect Liver Cells from Chemical Hypoxia and Ischemia/Reperfusion Injury by Inhibition of the Mitochondrial Calcium Uniporter

机译:米诺环素和强力霉素但不是其他四环素衍生的化合物通过抑制线粒体钙单向转运蛋白来保护肝脏细胞免受化学性低氧和缺血/再灌注损伤。

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摘要

Minocycline, a tetracycline-derived compound, mitigates damage caused by ischemia/reperfusion (I/R) injury. Here, 19 tetracycline-derived compounds were screened in comparison to minocycline for their ability to protect hepatocytes against damage from chemical hypoxia and I/R injury. Cultured rat hepatocytes were incubated with 50 μM of each tetracycline-derived compound 20 min prior to exposure to 500 μM iodoacetic acid plus 1 mM KCN (chemical hypoxia). In other experiments, hepatocytes were incubated in anoxic Krebs-Ringer-Hepes buffer (KRH) at pH 6.2 for 4 h prior to reoxygenation at pH 7.4 (simulated I/R). Tetracycline-derived compounds were added 20 min prior to reperfusion. Ca2+ uptake was measured in isolated rat liver mitochondria incubated with Fluo-5N. Cell killing after 120 min of chemical hypoxia measured by propidium iodide (PI) fluorometery was 87%, which decreased to 28% and 42% with minocycline and doxycycline, respectively. After I/R, cell killing at 120 min decreased from 79% with vehicle to 43% and 49% with minocycline and doxycycline. No other tested compound decreased killing. Minocycline and doxycycline also inhibited mitochondrial Ca2+ uptake and suppressed the Ca2+-induced mitochondrial permeability transition (MPT), the penultimate cause of cell death in reperfusion injury. Ru360, a specific inhibitor of the mitochondrial calcium uniporter (MCU), also decreased cell killing after hypoxia and I/R and blocked mitochondrial Ca2+ uptake and the MPT. Other proposed mechanisms, including mitochondrial depolarization and matrix metalloprotease inhibition could not account for cytoprotection. Taken together, these results indicate that minocycline and doxycycline are cytoprotective by way of inhibition of MCU.
机译:Minocycline是一种四环素衍生的化合物,可减轻缺血/再灌注(I / R)损伤引起的损害。在这里,与米诺环素相比,筛选了19种四环素衍生的化合物,它们具有保护肝细胞免受化学性缺氧和I / R损伤的损害的能力。将培养的大鼠肝细胞与50μM每种四环素衍生的化合物孵育20分钟,然后再暴露于500μM碘乙酸加1 mM KCN(化学低氧)。在其他实验中,将肝细胞在pH 6.2的缺氧Krebs-Ringer-Hepes缓冲液(KRH)中孵育4小时,然后在pH 7.4复氧(模拟I / R)。在再灌注前20分钟加入四环素衍生的化合物。在与Fluo-5N孵育的分离的大鼠肝线粒体中测量了Ca 2 + 的吸收。碘化丙啶(PI)荧光光度计测得的化学缺氧120分钟后,细胞杀伤率为87%,米诺环素和强力霉素分别降至28%和42%。 I / R后,在120分钟时的细胞杀伤率从媒介物的79%降低至米诺环素和强力霉素的43%和49%。没有其他测试化合物可以降低杀伤力。米诺环素和强力霉素也抑制线粒体Ca 2 + 的摄取,并抑制Ca 2 + 诱导的线粒体通透性转变(MPT),这是再灌注损伤中细胞死亡的第二大原因。线粒体钙单向转运蛋白(MCU)的特异性抑制剂Ru360在缺氧和I / R后也能降低细胞杀伤力,并阻止线粒体Ca 2 + 吸收和MPT。其他提议的机制,包括线粒体去极化和基质金属蛋白酶抑制,不能解释细胞保护作用。综上所述,这些结果表明米诺环素和强力霉素通过抑制MCU具有细胞保护作用。

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