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Dynamic simulation of cardiolipin remodeling: greasing the wheels for an interpretative approach to lipidomics

机译:心磷脂重塑的动态模拟:给车轮涂脂为脂质组学的解释方法

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摘要

Cardiolipin is a class of mitochondrial specific phospholipid, which is intricately involved in mitochondrial functionality. Differences in cardiolipin species exist in a variety of tissues and diseases. It has been demonstrated that the cardiolipin profile is a key modulator of the functions of many mitochondrial proteins. However, the chemical mechanism(s) leading to normal and/or pathological distribution of cardiolipin species remain elusive. Herein, we describe a novel approach for investigating the molecular mechanism of cardiolipin remodeling through a dynamic simulation. This approach applied data from shotgun lipidomic analyses of the heart, liver, brain, and lung mitochondrial lipidomes to model cardiolipin remodeling, including relative content, regiospecificity, and isomeric composition of cardiolipin species. Generated cardiolipin profiles were nearly identical to those determined by shotgun lipidomics. Importantly, the simulated isomeric compositions of cardiolipin species were further substantiated through product ion analysis. Finally, unique enzymatic activities involved in cardiolipin remodeling were assessed from the parameters used in the dynamic simulation of cardiolipin profiles. Collectively, we described, verified, and demonstrated a novel approach by integrating both lipidomic analysis and dynamic simulation to study cardiolipin biology. We believe this study provides a foundation to investigate cardiolipin metabolism and bioenergetic homeostasis in normal and disease states.
机译:心磷脂是一类线粒体特异性磷脂,其复杂地参与线粒体功能。心磷脂种类的差异存在于多种组织和疾病中。已经证明,心磷脂概况是许多线粒体蛋白功能的关键调节剂。然而,导致心磷脂种类正常和/或病理分布的化学机制仍然难以捉摸。在这里,我们描述了一种通过动态模拟研究心磷脂重塑分子机制的新颖方法。这种方法将from弹枪对心脏,肝脏,大脑和肺线粒体脂质体脂质组学分析的数据应用于心磷脂重塑模型,包括相对含量,区域特异性和心磷脂物种的异构体组成。产生的心磷脂概况与shot弹枪脂质组学测定的几乎相同。重要的是,通过产物离子分析进一步证实了心磷脂物种的模拟异构体组成。最后,从心磷脂概况动态模拟中使用的参数评估参与心磷脂重构的独特酶活性。我们共同描述,验证和演示了一种通过整合脂质组学分析和动态模拟来研究心磷脂生物学的新方法。我们相信这项研究为研究正常和疾病状态下的心磷脂代谢和生物能稳态提供了基础。

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