Resolving vs. Non-resolving Sphingolipid Dynamics During Macrophage Activation: A Time-resolved Metabolic Analysis.

IF 4.1 2区 医学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY
Nathan F Chiappa, Nidhi Lal, Edward A Botchwey
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引用次数: 0

Abstract

Sphingolipids are increasingly recognized as critical regulators of inflammation and cell fate decisions, with metabolites such as ceramide and sphingosine 1-phosphate exerting contrasting effects on cell survival and proliferation. In macrophages, this balance is especially important, given their central role in host defense, pathogenesis and wound healing. Here, we present a time-resolved model of sphingolipid metabolism in RAW 264.7 macrophages stimulated with KdO2-Lipid A. By integrating measured metabolite concentrations with dynamic flux estimation and established enzyme kinetics, we systematically map dynamic changes in the sphingolipid network during inflammation. Our results reveal a three-phase pattern of sphingolipid remodeling that correlates with distinct functional states of the cell. Moreover, metabolites can be classified into "resolving" or "non-resolving" lipids based on whether they return to basal levels or remain dysregulated through the later phases of the inflammatory response. This partitioning suggests that targeted modulation of specific metabolic nodes may influence the resolution of inflammation. Importantly, our computational approach can assist in the rational design of experimental studies by pinpointing putative drug targets with maximal impact on sphingolipid homeostasis. Such targeted interventions may prevent the pathological amplification of inflammatory signals without globally suppressing essential sphingolipid functions. These findings highlight the utility of an integrative systems-level analysis for elucidating sphingolipid dynamics in macrophages and underscore its potential to guide therapeutic strategies against conditions involving dysregulated inflammation.

巨噬细胞激活过程中溶解与非溶解鞘脂动力学:时间分解代谢分析。
鞘脂越来越被认为是炎症和细胞命运决定的关键调节因子,代谢物如神经酰胺和鞘磷脂1-磷酸对细胞存活和增殖有截然不同的影响。在巨噬细胞中,这种平衡尤其重要,因为它们在宿主防御、发病机制和伤口愈合中起着核心作用。在这里,我们提出了kdo2 -脂质a刺激下RAW 264.7巨噬细胞鞘脂代谢的时间分辨模型。通过将测量的代谢物浓度与动态通量估计和建立的酶动力学相结合,我们系统地绘制了炎症期间鞘脂网络的动态变化。我们的研究结果揭示了与细胞不同功能状态相关的鞘脂重塑的三相模式。此外,代谢物可分为“溶解性”或“非溶解性”脂质,这取决于它们在炎症反应的后期是否恢复到基础水平或保持失调。这种分化表明,特定代谢节点的靶向调节可能会影响炎症的消退。重要的是,我们的计算方法可以通过确定对鞘脂稳态影响最大的假定药物靶点来协助实验研究的合理设计。这种有针对性的干预可以防止炎症信号的病理放大,而不会全面抑制神经鞘脂的基本功能。这些发现强调了综合系统水平分析在阐明巨噬细胞鞘脂动力学方面的效用,并强调了其指导治疗策略的潜力,以对抗涉及炎症失调的疾病。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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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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