Basic features of cellular inositol metabolism as revealed by a newly developed LC-MS method.

IF 4.4 3区 生物学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY
Xue Bessie Su,Valeria Fedeli,Guizhen Liu,Meike Amma,Paraskevi Boulasiki,Jingyi Wang,Mariano Bizzarri,Henning Jessen,Dorothea Fiedler,Antonella Riccio,Adolfo Saiardi
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Abstract

Inositol plays key roles in many cellular processes. Several studies focussed on the quantitative analysis of phosphorylated forms of inositol, enabled by analytical tools developed to detect these highly charged molecules. Direct measurement of free inositol however has been challenging, because the molecule is uncharged and polar. As a result, the mechanisms maintaining the homeostasis of the inositol remains poorly understood. In this study, we overcome these challenges by developing a quantitative liquid chromatography - mass spectrometry (LC-MS) protocol that can resolve and quantify the three main sugar molecules present inside cells: glucose, fructose, and inositol, as well as distinguish the clinically relevant isomers of inositol: myo-, scyllo-, and chiro-inositol. The quantitative power of the new method was validated by accurately monitoring the changes of inositol levels under well-established conditions in Saccharomyces cerevisiae, where the endogenous synthesis of inositol is increased in the transcription repressor OPI1 knockout opi1D and decreased when wild type yeast is fed with exogenous inositol. The method also revealed a new layer of regulation that takes place when exogenous inositol is added to further boost endogenous inositol synthesis in opi1D in a positive feedback loop. Analyses of mammalian cell lines provided many new insights into inositol metabolism. First, different cell lines displayed distinct sugar profiles and inositol concentrations and responded differently to inositol starvation. Second, mammalian cells can synthesize and import scyllo- but not chiro-inositol. Importantly, our method lent direct evidence to the previous hypothesis that lithium treatment could significantly reduce inositol levels in primary cortical neurons, thus diminishing the pool of free inositol available to the phosphoinositide cycle.
新建立的LC-MS方法揭示了细胞肌醇代谢的基本特征。
肌醇在许多细胞过程中起着关键作用。一些研究集中于对肌醇磷酸化形式的定量分析,通过开发分析工具来检测这些高电荷分子。然而,直接测量游离肌醇一直具有挑战性,因为这种分子是不带电的,而且是极性的。因此,维持肌醇体内平衡的机制仍然知之甚少。在本研究中,我们通过开发定量液相色谱-质谱(LC-MS)方案克服了这些挑战,该方案可以解析和量化存在于细胞内的三种主要糖分子:葡萄糖、果糖和肌醇,并区分肌醇的临床相关异构体:肌醇、肌醇和肌醇。新方法的定量能力通过在既定条件下准确监测酿酒酵母中肌醇水平的变化得到验证,其中在转录抑制因子OPI1敲除opi1D时,内源性肌醇合成增加,而在野生型酵母中饲喂外源性肌醇时,内源性肌醇合成减少。该方法还揭示了一个新的调控层,当外源性肌醇被添加到opi1D中以正反馈回路进一步促进内源性肌醇合成时发生。对哺乳动物细胞系的分析为肌醇代谢提供了许多新的见解。首先,不同的细胞系表现出不同的糖谱和肌醇浓度,对肌醇缺乏的反应也不同。其次,哺乳动物细胞可以合成和输入肌醇,但不能输入肌醇。重要的是,我们的方法为之前的假设提供了直接证据,即锂处理可以显著降低初级皮质神经元中的肌醇水平,从而减少可用于磷酸肌醇循环的游离肌醇池。
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
Biochemical Journal
Biochemical Journal 生物-生化与分子生物学
CiteScore
8.00
自引率
0.00%
发文量
255
审稿时长
1 months
期刊介绍: Exploring the molecular mechanisms that underpin key biological processes, the Biochemical Journal is a leading bioscience journal publishing high-impact scientific research papers and reviews on the latest advances and new mechanistic concepts in the fields of biochemistry, cellular biosciences and molecular biology. The Journal and its Editorial Board are committed to publishing work that provides a significant advance to current understanding or mechanistic insights; studies that go beyond observational work using in vitro and/or in vivo approaches are welcomed. Painless publishing: All papers undergo a rigorous peer review process; however, the Editorial Board is committed to ensuring that, if revisions are recommended, extra experiments not necessary to the paper will not be asked for. Areas covered in the journal include: Cell biology Chemical biology Energy processes Gene expression and regulation Mechanisms of disease Metabolism Molecular structure and function Plant biology Signalling
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