Malinouski Mikalai, Hasan Nesrin M, Zhang Yan, Seravalli Javier, Lin Jie, Avanesov Andrei, Lutsenko Svetlana, Gladyshev Vadim N
1] Genetics Division, Department of Medicine, Brigham and Women's Hospital and Harvard Medical School, Boston, Massachusetts 02115, USA [2] Department of Biochemistry, University of Nebraska-Lincoln, Lincoln, Nebraska 68588, USA.
Department of Physiology, Johns Hopkins University, Baltimore, Maryland 21205, USA.
Nat Commun. 2014;5:3301. doi: 10.1038/ncomms4301.
Trace elements are essential for human metabolism and dysregulation of their homoeostasis is associated with numerous disorders. Here we characterize mechanisms that regulate trace elements in human cells by designing and performing a genome-wide high-throughput siRNA/ionomics screen, and examining top hits in cellular and biochemical assays. The screen reveals high stability of the ionomes, especially the zinc ionome, and yields known regulators and novel candidates. We further uncover fundamental differences in the regulation of different trace elements. Specifically, selenium levels are controlled through the selenocysteine machinery and expression of abundant selenoproteins; copper balance is affected by lipid metabolism and requires machinery involved in protein trafficking and post-translational modifications; and the iron levels are influenced by iron import and expression of the iron/haeme-containing enzymes. Our approach can be applied to a variety of disease models and/or nutritional conditions, and the generated data set opens new directions for studies of human trace element metabolism.
微量元素对人体新陈代谢至关重要,其体内稳态失调与多种疾病相关。在此,我们通过设计并进行全基因组高通量siRNA/离子组学筛选,并在细胞和生化分析中研究筛选出的关键靶点,来阐明人类细胞中调节微量元素的机制。该筛选揭示了离子组的高度稳定性,尤其是锌离子组,并产生了已知的调节因子和新的候选因子。我们进一步发现了不同微量元素调节机制的根本差异。具体而言,硒水平通过硒代半胱氨酸机制和丰富的硒蛋白表达来控制;铜平衡受脂质代谢影响,需要参与蛋白质运输和翻译后修饰的机制;铁水平受铁摄入和含铁血红素酶表达的影响。我们的方法可应用于多种疾病模型和/或营养状况,所生成的数据集为人类微量元素代谢研究开辟了新方向。