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首页> 外文期刊>Biochimica et biophysica acta. Biomembranes >Ceramides and other bioactive sphingolipid backbones in health and disease: Lipidomic analysis, metabolism and roles in membrane structure, dynamics, signaling and autophagy
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Ceramides and other bioactive sphingolipid backbones in health and disease: Lipidomic analysis, metabolism and roles in membrane structure, dynamics, signaling and autophagy

机译:神经酰胺和其他生物活性鞘脂骨架在健康和疾病中的作用:脂质分析,新陈代谢及其在膜结构,动力学,信号传导和自噬中的作用

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摘要

Sphingolipids are comprised of a backbone sphingoid base that may be phosphorylated, acylated, glycosylated, bridged to various headgroups through phosphodiester linkages, or otherwise modified. Organisms usually contain large numbers of sphingolipid subspecies and knowledge about the types and amounts is imperative because they influence membrane structure, interactions with the extracellular matrix and neighboring cells, vesicular traffic and the formation of specialized structures such as phagosomes and autophagosomes, as well as participate in intracellular and extracellular signaling. Fortunately, "sphingolipidomic" analysis is becoming feasible (at least for important subsets such as all of the backbone "signaling" subspecies: ceramides, ceramide I-phosphates, sphingoid bases, sphingoid base I-phosphates, inter alia) using mass spectrometry, and these profiles are revealing many surprises, such as that under certain conditions cells contain significant amounts of "unusual" species: N-mono-, di-, and tri-methyl-sphingoid bases (including N,N-dimethylsphingosine); 3-ketodihydroceramides; N-acetyl-sphingoid bases (C2-ceramides); and dihydroceramides, in the latter case, in very high proportions when cells are treated with the anticancer drug fenretinide (4-hydroxyphenylretinamide). The elevation of DHceramides by fenretinide is befuddling because the 4,5-trans-double bond of ceramide has been thought to be required for biological activity; however, DHceramides induce autophagy and may be important in the regulation of this important cellular process. The complexity of the sphingolipidome is hard to imagine, but one hopes that, when partnered with other systems biology approaches, the causes and consequences of the complexity will explain how these intriguing compounds are involved in almost every aspect of cell behavior and the malfunctions of many diseases. (c) 2006 Elsevier B.V All rights reserved.
机译:鞘脂由骨架鞘氨醇碱基组成,其可以被磷酸化,酰化,糖基化,通过磷酸二酯键桥接至各种头基或以其他方式修饰。有机体通常包含大量的鞘脂亚种,因此必须了解类型和数量,因为它们会影响膜结构,与细胞外基质和邻近细胞的相互作用,囊泡运输以及吞噬体和自噬体等特殊结构的形成以及参与在细胞内和细胞外信号传导中。幸运的是,使用质谱法进行“鞘脂减少”分析变得可行(至少对于重要的子集,例如所有主链“信号传导”亚种:神经酰胺,神经酰胺I-磷酸盐,鞘氨醇碱,鞘氨醇碱I-磷酸盐等),这些特征揭示了许多惊奇,例如在某些条件下,细胞中含有大量的“异常”物质:N-单-,二-和三-甲基-鞘氨醇碱基(包括N,N-二甲基-鞘氨醇); 3-酮二氢神经酰胺; N-乙酰基鞘氨醇碱(C2-神经酰胺);当用抗癌药芬维A胺(4-羟苯基视黄酰胺)处理细胞时,后者的含量会很高。 fenretinide使DHceramides升高是令人困惑的,因为人们认为神经酰胺的4,5-反式双键是生物活性所必需的。然而,DHceramides会诱导自噬,并且可能在调节这一重要的细胞过程中起重要作用。鞘脂鞘的复杂性难以想象,但是人们希望,与其他系统生物学方法一起使用时,复杂性的原因和后果将解释这些有趣的化合物如何参与细胞行为的几乎所有方面以及许多细胞的功能失常。疾病。 (c)2006 Elsevier B.V保留所有权利。

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