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同位素异构体光谱分析:在同位素通量研究中使用非线性模型

Isotopomer Spectral Analysis: Utilizing Nonlinear Models in Isotopic Flux Studies.

作者信息

Kelleher Joanne K, Nickol Gary B

机构信息

Department of Pharmacology and Physiology, George Washington University Medical School, Washington, USA; Department of Chemical Engineering, MIT Cambridge, Cambridge, Massachusetts, USA.

Department of Pharmacology and Physiology, George Washington University Medical School, Washington, USA.

出版信息

Methods Enzymol. 2015;561:303-30. doi: 10.1016/bs.mie.2015.06.039. Epub 2015 Aug 19.

Abstract

We present the principles underlying the isotopomer spectral analysis (ISA) method for evaluating biosynthesis using stable isotopes. ISA addresses a classic conundrum encountered in the use of radioisotopes to estimate biosynthesis rates whereby the information available is insufficient to estimate biosynthesis. ISA overcomes this difficulty capitalizing on the additional information available from the mass isotopomer labeling profile of a polymer. ISA utilizes nonlinear regression to estimate the two unknown parameters of the model. A key parameter estimated by ISA represents the fractional contribution of the tracer to the precursor pool for the biosynthesis, D. By estimating D in cells synthesizing lipids, ISA quantifies the relative importance of two distinct pathways for flux of glutamine to lipid, reductive carboxylation, and glutaminolysis. ISA can also evaluate the competition between different metabolites, such as glucose and acetoacetate, as precursors for lipogenesis and thereby reveal regulatory properties of the biosynthesis pathway. The model is flexible and may be expanded to quantify sterol biosynthesis allowing tracer to enter the pathway at three different positions, acetyl CoA, acetoacetyl CoA, and mevalonate. The nonlinear properties of ISA provide a method of testing for the presence of gradients of precursor enrichment illustrated by in vivo sterol synthesis. A second ISA parameter provides the fraction of the polymer that is newly synthesized over the time course of the experiment. In summary, ISA is a flexible framework for developing models of polymerization biosynthesis providing insight into pools and pathway that are not easily quantified by other techniques.

摘要

我们介绍了使用稳定同位素评估生物合成的同位素异构体光谱分析(ISA)方法的基本原理。ISA解决了在使用放射性同位素估计生物合成速率时遇到的一个经典难题,即可用信息不足以估计生物合成。ISA利用聚合物质量同位素异构体标记谱中可用的额外信息克服了这一困难。ISA利用非线性回归来估计模型的两个未知参数。ISA估计的一个关键参数代表示踪剂对生物合成前体池的分数贡献,即D。通过估计合成脂质的细胞中的D,ISA量化了谷氨酰胺流向脂质的两条不同途径(还原羧化和谷氨酰胺分解)的相对重要性。ISA还可以评估不同代谢物(如葡萄糖和乙酰乙酸)作为脂肪生成前体之间的竞争,从而揭示生物合成途径的调节特性。该模型具有灵活性,可以扩展以量化甾醇生物合成,使示踪剂在三个不同位置(乙酰辅酶A;乙酰乙酰辅酶A和甲羟戊酸)进入该途径。ISA的非线性特性提供了一种测试体内甾醇合成所显示的前体富集梯度是否存在的方法。第二个ISA参数提供了在实验时间过程中新合成的聚合物的分数。总之,ISA是一个灵活的框架,用于开发聚合生物合成模型,深入了解其他技术不易量化的池和途径。

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