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Phosphorylation of Cytochrome c Threonine 28 Regulates Electron Transport Chain Activity in Kidney

机译:细胞色素c苏氨酸28的磷酸化调节肾脏中的电子运输链活性。

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摘要

Mammalian cytochrome c (Cytc) plays a key role in cellular life and death decisions, functioning as an electron carrier in the electron transport chain and as a trigger of apoptosis when released from the mitochondria. However, its regulation is not well understood. We show that the major fraction of Cytc isolated from kidneys is phosphorylated on Thr28, leading to a partial inhibition of respiration in the reaction with cytochrome c oxidase. To further study the effect of Cytc phosphorylation in vitro, we generated T28E phosphomimetic Cytc, revealing superior behavior regarding protein stability and its ability to degrade reactive oxygen species compared with wild-type unphosphorylated Cytc. Introduction of T28E phosphomimetic Cytc into Cytc knock-out cells shows that intact cell respiration, mitochondrial membrane potential (ΔΨm), and ROS levels are reduced compared with wild type. As we show by high resolution crystallography of wild-type and T28E Cytc in combination with molecular dynamics simulations, Thr28 is located at a central position near the heme crevice, the most flexible epitope of the protein apart from the N and C termini. Finally, in silico prediction and our experimental data suggest that AMP kinase, which phosphorylates Cytc on Thr28 in vitro and colocalizes with Cytc to the mitochondrial intermembrane space in the kidney, is the most likely candidate to phosphorylate Thr28 in vivo. We conclude that Cytc phosphorylation is mediated in a tissue-specific manner and leads to regulation of electron transport chain flux via “controlled respiration,” preventing ΔΨm hyperpolarization, a known cause of ROS and trigger of apoptosis.
机译:哺乳动物细胞色素c(Cytc)在细胞的生死决定中起着关键作用,在从线粒体释放时,在电子传输链中充当电子载体,并引发细胞凋亡。但是,对其调节尚不十分了解。我们发现,从肾脏分离出的Cytc的大部分在Thr 28 上被磷酸化,从而导致与细胞色素c氧化酶反应中呼吸的部分抑制。为了进一步研究Cytc磷酸化的体外作用,我们生成了T28E磷酸化Cytc,与野生型未磷酸化Cytc相比,它在蛋白质稳定性及其降解活性氧的能力方面表现出优异的表现。将T28E拟磷酸化Cytc引入Cytc敲除细胞表明,与野生型相比,完整的细胞呼吸作用,线粒体膜电位(ΔΨm)和ROS水平降低。正如我们通过野生型和T28E Cytc的高分辨率晶体学结合分子动力学模拟所显示的那样,Thr 28 位于血红素缝隙附近的中央位置,血红素缝隙是蛋白质中最灵活的表位,除了N和C终点。最后,在计算机模拟中和我们的实验数据表明,AMP激酶最可能是使Thr磷酸化的候选人,AMP激酶在体外使Thr 28 上的Cytc磷酸化并与Cytc共定位于肾脏的线粒体膜间空间。体内 28 。我们得出结论,Cyt c 磷酸化是以组织特异性方式介导的,并通过“受控呼吸”导致电子运输链通量的调节,从而防止ΔΨm超极化(ROS的已知原因和凋亡触发)。

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