利用光开关鞘脂生物合成的光学控制。

IF 5 2区 医学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY Journal of Lipid Research Pub Date : 2025-01-01 Epub Date: 2024-12-11 DOI:10.1016/j.jlr.2024.100724
Matthijs Kol, Alexander J E Novak, Johannes Morstein, Christian Schröer, Tolulope Sokoya, Svenja Mensing, Sergei M Korneev, Dirk Trauner, Joost C M Holthuis
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引用次数: 0

摘要

鞘脂代谢包括一个复杂的相互关联的酶、代谢物和调节模式网络,影响广泛的细胞和生理过程。由于鞘脂代谢的许多中间体是短寿命分子,通常具有相反的生物活性,因此破译该网络的生物学相关性具有挑战性。在这里,我们介绍可点击的,含偶氮苯鞘烷,称为casph,作为鞘脂生物合成的光敏底物。偶氮苯部分的光异构化使脂质碳氢化合物尾部的直反式和弯曲顺式之间的可逆转换成为可能。结合体外酶分析和代谢标记研究,我们证明了caSphs的反式到顺式异构化深刻地刺激了它们通过神经酰胺合成酶和下游鞘磷脂合成酶的代谢转化。这些光诱导的鞘脂生成速率的变化是急性的,可逆的,并且可以在活细胞中高效地实现。我们的研究结果表明,caSphs是一种多功能工具,具有前所未有的机会来操纵鞘脂生物合成和光时空精度的功能。
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Optical control of sphingolipid biosynthesis using photoswitchable sphingosines.

Sphingolipid metabolism comprises a complex interconnected web of enzymes, metabolites, and modes of regulation that influence a wide range of cellular and physiological processes. Deciphering the biological relevance of this network is challenging as numerous intermediates of sphingolipid metabolism are short-lived molecules with often opposing biological activities. Here, we introduce clickable, azobenzene-containing sphingosines, termed caSphs, as light-sensitive substrates for sphingolipid biosynthesis. Photo-isomerization of the azobenzene moiety enables reversible switching between a straight trans- and curved cis-form of the lipid's hydrocarbon tail. Combining in vitro enzyme assays with metabolic labeling studies, we demonstrate that trans-to-cis isomerization of caSphs profoundly stimulates their metabolic conversion by ceramide synthases and downstream sphingomyelin synthases. These light-induced changes in sphingolipid production rates are acute, reversible, and can be implemented with great efficiency in living cells. Our findings establish caSphs as versatile tools for manipulating sphingolipid biosynthesis and function with the spatiotemporal precision of light.

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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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