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酵母中铁缺乏与恢复:一种定量蛋白质组学方法。

Iron Deficiency and Recovery in Yeast: A Quantitative Proteomics Approach.

机构信息

Department of Cell Biology, Harvard Medical School, Boston, Massachusetts 02155, United States.

Brigham and Women's Hospital, Boston, Massachusetts 02115, United States.

出版信息

J Proteome Res. 2021 May 7;20(5):2751-2761. doi: 10.1021/acs.jproteome.1c00035. Epub 2021 Apr 2.

Abstract

Iron is an essential element for life, as it is critical for oxygen transport, cellular respiration, DNA synthesis, and metabolism. Disruptions in iron metabolism have been associated with several complex diseases like diabetes, cancer, infection susceptibility, neurodegeneration, and others; however, the molecular mechanisms linking iron metabolism with these diseases are not fully understood. A commonly used model to study iron deficiency (ID) is yeast, . Here, we used quantitative (phospho)proteomics to explore the early (4 and 6 h) and late (12 h) response to ID. We showed that metabolic pathways like the Krebs cycle, amino acid, and ergosterol biosynthesis were affected by ID. In addition, during the late response, several proteins related to the ubiquitin-proteasome system and autophagy were upregulated. We also explored the proteomic changes during a recovery period after 12 h of ID. Several proteins recovered their steady-state levels, but some others, such as cytochromes, did not recover during the time tested. Additionally, we showed that autophagy is active during ID, and some of the degraded proteins during ID can be rescued using KO strains for several key autophagy genes. Our results highlight the complex proteome changes occurring during ID and recovery. This study constitutes a valuable data set for researchers interested in iron biology, offering a temporal proteomic data set for ID, as well as a compendium the proteomic changes associated with episodes of iron recovery.

摘要

铁是生命必需的元素,因为它对氧气运输、细胞呼吸、DNA 合成和代谢至关重要。铁代谢紊乱与糖尿病、癌症、感染易感性、神经退行性变等多种复杂疾病有关;然而,将铁代谢与这些疾病联系起来的分子机制尚未完全阐明。酵母是研究铁缺乏症 (ID) 的常用模型,。在这里,我们使用定量(磷酸化)蛋白质组学来探索 ID 的早期(4 和 6 h)和晚期(12 h)反应。我们表明,代谢途径如三羧酸循环、氨基酸和麦角固醇生物合成受到 ID 的影响。此外,在晚期反应中,与泛素-蛋白酶体系统和自噬相关的几种蛋白质被上调。我们还在 ID 后 12 h 的恢复期间探索了蛋白质组的变化。一些蛋白质恢复了它们的稳态水平,但其他一些蛋白质,如细胞色素,在测试时间内没有恢复。此外,我们表明自噬在 ID 期间是活跃的,并且在 ID 期间降解的一些蛋白质可以使用 KO 菌株用于几个关键自噬基因来挽救。我们的研究结果强调了 ID 和恢复期间发生的复杂蛋白质组变化。本研究为研究铁生物学的研究人员提供了有价值的数据,提供了 ID 的时间蛋白质组数据集,以及与铁恢复事件相关的蛋白质组变化汇编。

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