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鉴定支持哺乳动物细胞耐寒性的基因:来自冬眠动物的启示。

Identification of genes supporting cold resistance of mammalian cells: lessons from a hibernator.

机构信息

Graduate School of Environmental Sciences, Hokkaido University, Sapporo, Japan.

Institute of Low Temperature Science, Hokkaido University, Sapporo, Japan.

出版信息

Cell Death Dis. 2024 Sep 19;15(9):685. doi: 10.1038/s41419-024-07059-w.

Abstract

Susceptibility of human cells to cold stress restricts the use of therapeutic hypothermia and long-term preservation of organs at low temperatures. In contrast, cells of mammalian hibernators possess remarkable cold resistance, but little is known about the molecular mechanisms underlying this phenomenon. In this study, we conducted a gain-of-function screening of genes that confer cold resistance to cold-vulnerable human cells using a cDNA library constructed from the Syrian hamster, a mammalian hibernator, and identified Gpx4 as a potent suppressor of cold-induced cell death. Additionally, genetic deletion of or pharmacological inhibition of Gpx4 revealed that Gpx4 is necessary for suppressing lipid peroxidation specifically under cold in hamster cell lines. Genetic disruption of other ferroptosis-suppressing pathways, namely biopterin synthesis and mitochondrial or plasma membrane CoQ reduction pathways, also accelerated cold-induced cell death under Gpx4 dysfunction. Collectively, ferroptosis-suppressing pathways protect the cells of a mammalian hibernator from cold-induced cell death and the augmentation of these pathways renders cold resistance to cells of non-hibernators, including humans.

摘要

人类细胞对冷应激的敏感性限制了治疗性低温和低温下器官长期保存的应用。相比之下,哺乳动物冬眠动物的细胞具有显著的耐寒性,但对这种现象背后的分子机制知之甚少。在这项研究中,我们使用从叙利亚仓鼠(一种哺乳动物冬眠动物)构建的 cDNA 文库,对赋予人类脆弱细胞耐寒性的基因进行了功能获得性筛选,鉴定出 Gpx4 是一种有效的冷诱导细胞死亡抑制剂。此外,Gpx4 的基因缺失或药理学抑制表明,Gpx4 是在仓鼠细胞系中特异性抑制冷诱导的脂质过氧化所必需的。其他铁死亡抑制途径(即生物喋呤合成以及线粒体或质膜 CoQ 还原途径)的遗传破坏也加速了 Gpx4 功能障碍下的冷诱导细胞死亡。总之,铁死亡抑制途径保护哺乳动物冬眠动物的细胞免受冷诱导的细胞死亡,而这些途径的增强赋予了非冬眠动物(包括人类)对冷的抗性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/803e/11413375/1a5c6da6bcf3/41419_2024_7059_Fig1_HTML.jpg

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