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本文引用的文献

1
Sphingolipid signaling mediates iron toxicity.鞘脂信号转导介导铁毒性。
Cell Metab. 2012 Jul 3;16(1):90-6. doi: 10.1016/j.cmet.2012.06.004.
2
Replicative and chronological aging in Saccharomyces cerevisiae.酿酒酵母的复制性和时序性衰老。
Cell Metab. 2012 Jul 3;16(1):18-31. doi: 10.1016/j.cmet.2012.06.002.
3
Yeast 5 - an expanded reconstruction of the Saccharomyces cerevisiae metabolic network.酵母5 - 酿酒酵母代谢网络的扩展重建。
BMC Syst Biol. 2012 Jun 4;6:55. doi: 10.1186/1752-0509-6-55.
4
Regulation of sphingolipid synthesis through Orm1 and Orm2 in yeast.酵母中通过 Orm1 和 Orm2 调节神经酰胺合成。
J Cell Sci. 2012 May 15;125(Pt 10):2428-35. doi: 10.1242/jcs.100578. Epub 2012 Feb 10.
5
Down-regulating sphingolipid synthesis increases yeast lifespan.下调鞘脂合成可延长酵母寿命。
PLoS Genet. 2012 Feb;8(2):e1002493. doi: 10.1371/journal.pgen.1002493. Epub 2012 Feb 2.
6
Metabolic remodeling in iron-deficient fungi.缺铁真菌中的代谢重塑
Biochim Biophys Acta. 2012 Sep;1823(9):1509-20. doi: 10.1016/j.bbamcr.2012.01.012. Epub 2012 Jan 27.
7
Sphingoid bases and the serine catabolic enzyme CHA1 define a novel feedforward/feedback mechanism in the response to serine availability.鞘氨醇碱基和丝氨酸分解代谢酶 CHA1 在响应丝氨酸可用性中定义了一个新的前馈/反馈机制。
J Biol Chem. 2012 Mar 16;287(12):9280-9. doi: 10.1074/jbc.M111.313445. Epub 2012 Jan 25.
8
Protein kinase Ypk1 phosphorylates regulatory proteins Orm1 and Orm2 to control sphingolipid homeostasis in Saccharomyces cerevisiae.蛋白激酶 Ypk1 磷酸化调节蛋白 Orm1 和 Orm2,以控制酿酒酵母中的鞘脂类物质稳态。
Proc Natl Acad Sci U S A. 2011 Nov 29;108(48):19222-7. doi: 10.1073/pnas.1116948108. Epub 2011 Nov 11.
9
Pil1, an eisosome organizer, plays an important role in the recruitment of synaptojanins and amphiphysins to facilitate receptor-mediated endocytosis in yeast.Pil1,一个出芽后微管组织者,在衔接蛋白和衔接蛋白相关蛋白招募到酵母中以促进受体内吞的过程中扮演着重要的角色。
Eur J Cell Biol. 2011 Oct;90(10):825-33. doi: 10.1016/j.ejcb.2011.06.006. Epub 2011 Aug 26.
10
Role for Sit4p-dependent mitochondrial dysfunction in mediating the shortened chronological lifespan and oxidative stress sensitivity of Isc1p-deficient cells.Sit4p 依赖性线粒体功能障碍在介导 Isc1p 缺失细胞缩短的时序寿命和氧化应激敏感性中的作用。
Mol Microbiol. 2011 Jul;81(2):515-27. doi: 10.1111/j.1365-2958.2011.07714.x. Epub 2011 Jun 28.

当酵母细胞进入稳定期时,铁、葡萄糖和内因子会改变鞘脂的组成。

Iron, glucose and intrinsic factors alter sphingolipid composition as yeast cells enter stationary phase.

作者信息

Lester Robert L, Withers Bradley R, Schultz Megan A, Dickson Robert C

机构信息

Department of Molecular and Cellular Biochemistry and the Lucille Markey Cancer Center, University of Kentucky College of Medicine, Lexington, KY 40536, USA.

出版信息

Biochim Biophys Acta. 2013 Apr;1831(4):726-36. doi: 10.1016/j.bbalip.2012.12.012. Epub 2012 Dec 31.

DOI:10.1016/j.bbalip.2012.12.012
PMID:23286903
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3594326/
Abstract

Survival of Saccharomyces cerevisiae cells, like most microorganisms, requires switching from a rapidly dividing to a non-dividing or stationary state. To further understand how cells navigate this switch, we examined sphingolipids since they are key structural elements of membranes and also regulate signaling pathways vital for survival. During and after the switch to a non-dividing state there is a large increase in total free and sphingolipid-bound long chain-bases and an even larger increase in free and bound C20-long-chain bases, which are nearly undetectable in dividing cells. These changes are due to intrinsic factors including Orm1 and Orm2, ceramide synthase, Lcb4 kinase and the Tsc3 subunit of serine palmitoyltransferase as well as extrinsic factors including glucose and iron. Lowering the concentration of glucose, a form of calorie restriction, decreases the level of LCBs, which is consistent with the idea that reducing the level of some sphingolipids enhances lifespan. In contrast, iron deprivation increases LCB levels and decreases long term survival; however, these phenomena may not be related because iron deprivation disrupts many metabolic pathways. The correlation between increased LCBs and shorter lifespan is unsupported at this time. The physiological rise in LCBs that we observe may serve to modulate nutrient transporters and possibly other membrane phenomena that contribute to enhanced stress resistance and survival in stationary phase.

摘要

与大多数微生物一样,酿酒酵母细胞的存活需要从快速分裂状态转变为非分裂或静止状态。为了进一步了解细胞如何完成这种转变,我们研究了鞘脂,因为它们是细胞膜的关键结构成分,还调节对存活至关重要的信号通路。在转变为非分裂状态的过程中及之后,总游离及与鞘脂结合的长链碱大幅增加,而游离及结合的C20长链碱增加得更多,这些在分裂细胞中几乎检测不到。这些变化归因于包括Orm1和Orm2、神经酰胺合酶、Lcb4激酶以及丝氨酸棕榈酰转移酶的Tsc3亚基等内在因素,以及包括葡萄糖和铁等外在因素。降低葡萄糖浓度(一种热量限制形式)会降低LCB的水平,这与降低某些鞘脂水平可延长寿命的观点一致。相反,缺铁会增加LCB水平并降低长期存活率;然而,这些现象可能并无关联,因为缺铁会扰乱许多代谢途径。目前尚无证据支持LCB增加与寿命缩短之间的相关性。我们观察到的LCB生理性升高可能有助于调节营养转运蛋白以及可能有助于增强静止期应激抗性和存活的其他膜相关现象。