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本文引用的文献

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Conceptualization of molecular findings by mining gene annotations.通过挖掘基因注释对分子研究结果进行概念化。
BMC Proc. 2013 Dec 20;7(Suppl 7):S2. doi: 10.1186/1753-6561-7-S7-S2.
2
Identification of C18:1-phytoceramide as the candidate lipid mediator for hydroxyurea resistance in yeast.鉴定 C18:1-植物神经酰胺作为酵母中羟基脲耐药的候选脂质介体。
J Biol Chem. 2013 Jun 14;288(24):17272-84. doi: 10.1074/jbc.M112.444802. Epub 2013 Apr 25.
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Cell density-dependent reduction of dihydroceramide desaturase activity in neuroblastoma cells.神经母细胞瘤细胞中二氢神经酰胺去饱和酶活性的细胞密度依赖性降低。
J Lipid Res. 2012 May;53(5):918-928. doi: 10.1194/jlr.M019075. Epub 2012 Feb 29.
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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。
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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.
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Detecting novel associations in large data sets.在大型数据集 中检测新的关联。
Science. 2011 Dec 16;334(6062):1518-24. doi: 10.1126/science.1205438.
7
Many ceramides.许多神经酰胺。
J Biol Chem. 2011 Aug 12;286(32):27855-62. doi: 10.1074/jbc.R111.254359. Epub 2011 Jun 21.
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A view on sphingolipids and disease.关于神经鞘脂类与疾病的观点。
Chem Phys Lipids. 2011 Sep;164(6):590-606. doi: 10.1016/j.chemphyslip.2011.04.013. Epub 2011 May 6.
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Merged consensus clustering to assess and improve class discovery with microarray data.合并共识聚类评估和改进微阵列数据的分类发现。
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Adaptive response and tolerance to weak acids in Saccharomyces cerevisiae: a genome-wide view.酿酒酵母对弱酸的适应性反应和耐受性:全基因组视角。
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通过系统扰动和系统生物学分析揭示了不同神经酰胺种类在酵母中的独特信号作用。

Distinct signaling roles of ceramide species in yeast revealed through systematic perturbation and systems biology analyses.

机构信息

1Department of Biochemistry and Molecular Biology, Medical University of South Carolina, Charleston, SC 29445, USA.

出版信息

Sci Signal. 2013 Oct 29;6(299):rs14. doi: 10.1126/scisignal.2004515.

DOI:10.1126/scisignal.2004515
PMID:24170935
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3974757/
Abstract

Ceramide, the central molecule of sphingolipid metabolism, is an important bioactive molecule that participates in various cellular regulatory events and that has been implicated in disease. Deciphering ceramide signaling is challenging because multiple ceramide species exist, and many of them may have distinct functions. We applied systems biology and molecular approaches to perturb ceramide metabolism in the yeast Saccharomyces cerevisiae and inferred causal relationships between ceramide species and their potential targets by combining lipidomic, genomic, and transcriptomic analyses. We found that during heat stress, distinct metabolic mechanisms controlled the abundance of different groups of ceramide species and provided experimental support for the importance of the dihydroceramidase Ydc1 in mediating the decrease in dihydroceramides during heat stress. Additionally, distinct groups of ceramide species, with different N-acyl chains and hydroxylations, regulated different sets of functionally related genes, indicating that the structural complexity of these lipids produces functional diversity. The transcriptional modules that we identified provide a resource to begin to dissect the specific functions of ceramides.

摘要

神经酰胺是鞘脂代谢的核心分子,是一种重要的生物活性分子,参与各种细胞调节事件,并与疾病有关。解析神经酰胺信号转导具有挑战性,因为存在多种神经酰胺物种,其中许多可能具有不同的功能。我们应用系统生物学和分子方法在酵母酿酒酵母中扰动神经酰胺代谢,并通过脂质组学、基因组学和转录组学分析将神经酰胺物种与其潜在靶标之间的因果关系推断出来。我们发现,在热应激期间,不同的代谢机制控制着不同组神经酰胺物种的丰度,并为二氢神经酰胺酶 Ydc1 在介导热应激期间二氢神经酰胺减少的重要性提供了实验支持。此外,不同组的神经酰胺物种,具有不同的酰基链和羟基化,调节不同的功能相关基因集,表明这些脂质的结构复杂性产生了功能多样性。我们鉴定的转录模块为开始剖析神经酰胺的特定功能提供了资源。