Depleting Cellular Retinoic Acid Binding Protein 1 Impairs UPRmt

Chin-Wen Wei, Thomas Lerdall, Fatimah Najjar, Li-Na Wei
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Abstract

Mitochondrial dysfunction underlines neurodegenerative diseases which are mostly characterized by progressive degeneration of neurons. We previously reported that Cellular retinoic acid Binding protein 1 (Crabp1) knockout (CKO) mice spontaneously developed age-dependent motor degeneration, with defects accumulated in spinal motor neurons (MNs), the only cell type in spinal cord that expresses CRABP1. Here we uncovered that mitochondrial DNA (mtDNA) content and the expression of genes involved in respiration were significantly reduced in CKO mouse spinal cord, accompanied by significantly elevated reactive oxygen species (ROS) and unfolded protein load, indicating that CRABP1 deficiency caused mitochondrial dysfunction. Further analyses of spinal cord tissues revealed significant reduction in the expression and activity of superoxide dismutase 2 (SOD2), as well as defected mitochondrial unfolded protein response (UPRmt) pathway, specifically an increase in ATF5 mRNA but not its protein level, which suggested failure in the translational response of ATF5 in CKO. Consistently, eukaryotic initiation factor-2α, (eIF2α) phosphorylation was reduced in CKO spinal cord. In a CRABP1 knockdown MN1 model, siCrabp1-MN1, we validated the cell-autonomous function of CRABP1 in modulating the execution of UPRmt. This study reveals a new functional role for CRABP1 in the execution of mitochondrial stress response, that CRABP1 modulates eIF2α phosphorylation thereby contributing to ATF5 translational response that is needed to mitigate mitochondria stress.
消耗细胞维甲酸结合蛋白1损害UPRmt
线粒体功能障碍强调神经退行性疾病,其主要特征是神经元的进行性变性。我们之前报道过细胞维甲酸结合蛋白1 (Crabp1)敲除(CKO)小鼠自发发生年龄依赖性运动变性,脊髓运动神经元(MNs)中积累缺陷,脊髓中唯一表达Crabp1的细胞类型。本研究发现,CKO小鼠脊髓线粒体DNA (mtDNA)含量和呼吸相关基因表达显著降低,同时活性氧(ROS)和未折叠蛋白负荷显著升高,表明CRABP1缺失导致线粒体功能障碍。对脊髓组织的进一步分析显示,超氧化物歧化酶2 (SOD2)的表达和活性显著降低,线粒体未折叠蛋白反应(UPRmt)途径也存在缺陷,特别是ATF5 mRNA的表达增加,但其蛋白水平未增加,这表明ATF5在CKO中的翻译反应失败。与此一致,真核起始因子-2α (eIF2α)磷酸化在CKO脊髓中降低。在CRABP1敲低MN1模型siCrabp1-MN1中,我们验证了CRABP1在调节UPRmt执行中的细胞自主功能。本研究揭示了CRABP1在线粒体应激反应中的新功能作用,即CRABP1调节eIF2α磷酸化,从而促进缓解线粒体应激所需的ATF5翻译反应。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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