Helsinki Institute of Life Science, HiLIFE, University of Helsinki, 00790 Helsinki, Finland; Faculty of Biological and Environmental Sciences, University of Helsinki, 00790 Helsinki, Finland.
Institute of Biochemistry, ETH Zurich, 8093 Zurich, Switzerland.
Mol Cell. 2023 Sep 21;83(18):3360-3376.e11. doi: 10.1016/j.molcel.2023.08.015. Epub 2023 Sep 11.
Aging is associated with progressive phenotypic changes. Virtually all cellular phenotypes are produced by proteins, and their structural alterations can lead to age-related diseases. However, we still lack comprehensive knowledge of proteins undergoing structural-functional changes during cellular aging and their contributions to age-related phenotypes. Here, we conducted proteome-wide analysis of early age-related protein structural changes in budding yeast using limited proteolysis-mass spectrometry (LiP-MS). The results, compiled in online ProtAge catalog, unraveled age-related functional changes in regulators of translation, protein folding, and amino acid metabolism. Mechanistically, we found that folded glutamate synthase Glt1 polymerizes into supramolecular self-assemblies during aging, causing breakdown of cellular amino acid homeostasis. Inhibiting Glt1 polymerization by mutating the polymerization interface restored amino acid levels in aged cells, attenuated mitochondrial dysfunction, and led to lifespan extension. Altogether, this comprehensive map of protein structural changes enables identifying mechanisms of age-related phenotypes and offers opportunities for their reversal.
衰老是与进行性表型变化相关的。几乎所有的细胞表型都是由蛋白质产生的,它们的结构改变可能导致与年龄相关的疾病。然而,我们仍然缺乏对细胞衰老过程中发生结构-功能变化的蛋白质以及它们对与年龄相关的表型的贡献的全面了解。在这里,我们使用有限蛋白酶解-质谱(LiP-MS)对芽殖酵母中早期与年龄相关的蛋白质结构变化进行了全蛋白质组分析。结果在在线 ProtAge 目录中进行了编译,揭示了翻译、蛋白质折叠和氨基酸代谢调节剂的功能变化与年龄相关。从机制上讲,我们发现折叠的谷氨酸合酶 Glt1 在衰老过程中聚合形成超分子自组装体,导致细胞氨基酸动态平衡的破坏。通过突变聚合界面抑制 Glt1 聚合,可恢复衰老细胞中的氨基酸水平,减弱线粒体功能障碍,并延长寿命。总的来说,这个蛋白质结构变化的综合图谱使我们能够确定与年龄相关的表型的机制,并为其逆转提供了机会。