神经酰胺合成酶2缺失小鼠的深层鞘脂组学和代谢组学分析揭示了复杂的通路特异性作用。

IF 5 2区 医学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY
Jeongah Oh, Sneha Muralidharan, Qing Zhao, Johannes Scholz, Iris D Zelnik, Shani Blumenreich, Tammar Joseph, Tamir Dingjan, Pradeep Narayanaswamy, Hyungwon Choi, Heiko Hayen, Federico Torta, Anthony H Futerman
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引用次数: 0

摘要

鞘脂组包含数千种结构独特的鞘脂(SL)。这种巨大的多样性是由不同的长链碱基(LCBs)、n-酰基链和头基组合而成的。在哺乳动物中,lcb通过六种神经酰胺合成酶(CerS1-6)与不同的脂肪酸(从C14到C32,饱和度不同)n -酰化,生成二氢神经酰胺(DHCer),每种cer对确定链长的酰基辅酶As具有特异性。CerS2合成了超长链(VLC) DHCer,而缺失CerS2的小鼠表现出多种病理。现在,我们扩展了先前对小鼠鞘脂组的分析,研究了18种不同组织中的264个SL个体,建立了野生型和CerS2缺失小鼠的广泛SL组织图谱。虽然许多SL水平的变化与之前报道的相似,但在CerS2缺失的小鼠组织中观察到一些意想不到的发现,例如大脑中神经酰胺1-磷酸水平下降,肺中C26-SL水平增加,而含有t18:0- lcb(植物鞘氨酸)的神经酰胺水平没有变化。此外,对其他代谢物水平的分析揭示了至少六种主要代谢途径的变化,包括一些影响SL代谢的途径。总之,这些数据突出了在CerS2耗竭时脂质组和代谢组发生的复杂变化,表明鞘脂如何与许多其他途径相连,并且在确定组织病理与一种或其他特定SL物种之间的关系时必须小心。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Deep sphingolipidomic and metabolomic analyses of ceramide synthase 2 null mice reveal complex pathway-specific effects.

The sphingolipidome contains thousands of structurally distinct sphingolipid (SL) species. This enormous diversity is generated by the combination of different long-chain-bases (LCBs), N-acyl chains and head groups. In mammals, LCBs are N-acylated with different fatty acids (from C14 to C32, with different degrees of saturation) by six ceramide synthases (CerS1-6) to generate dihydroceramides (DHCer), with each CerS exhibiting specificity towards acyl-Coenzyme As of defined chain length. CerS2 synthesizes very-long-chain (VLC) DHCer, and mice in which CerS2 has been deleted display a number of pathologies. We now expand previous analyses of the mouse sphingolipidome by examining 264 individual SL species in 18 different tissues, building an extensive SL tissue atlas of wild type and CerS2 null mice. While many of the changes in SL levels were similar to those reported earlier, a number of unexpected findings in CerS2 null mouse tissues were observed, such as the decrease in ceramide 1-phosphate levels in the brain, the increase in C26-SL levels in the lung and no changes in levels of ceramides containing t18:0-LCBs (phytosphinganine). Furthermore, analysis of levels of other metabolites revealed changes in at least six major metabolic pathways, including some that impinge upon the SL metabolism. Together, these data highlight the complex changes that occur in the lipidome and metabolome upon depletion of CerS2, indicating how sphingolipids are connected to many other pathways and that care must be taken when assigning a relationship between tissue pathology and one or other specific SL species.

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来源期刊
Journal of Lipid Research
Journal of Lipid Research 生物-生化与分子生物学
CiteScore
11.10
自引率
4.60%
发文量
146
审稿时长
41 days
期刊介绍: The Journal of Lipid Research (JLR) publishes original articles and reviews in the broadly defined area of biological lipids. We encourage the submission of manuscripts relating to lipids, including those addressing problems in biochemistry, molecular biology, structural biology, cell biology, genetics, molecular medicine, clinical medicine and metabolism. Major criteria for acceptance of articles are new insights into mechanisms of lipid function and metabolism and/or genes regulating lipid metabolism along with sound primary experimental data. Interpretation of the data is the authors’ responsibility, and speculation should be labeled as such. Manuscripts that provide new ways of purifying, identifying and quantifying lipids are invited for the Methods section of the Journal. JLR encourages contributions from investigators in all countries, but articles must be submitted in clear and concise English.
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