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首页> 外文期刊>American Journal of Physiology >Comprehensive metabolic modeling of multiple ~~13C-isotopomer data sets to study metabolism in perfused working hearts
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Comprehensive metabolic modeling of multiple ~~13C-isotopomer data sets to study metabolism in perfused working hearts

机译:综合代谢建模多~~13c-isotopomer数据集,以研究灌注工作心脏的新陈代谢

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摘要

In many forms of cardio-myopathy, alterations in energy substrate metabolism play a key role in disease pathogenesis. Stable isotope tracing in rodent heart perfu-sion systems can be used to determine cardiac metabolic fluxes, namely those relative fluxes that contribute to pyruvate, the acetyl-CoA pool, and pyruvate anaplerosis, which are critical to cardiac homeostasis. Methods have previously been developed to interrogate these relative fluxes using isotopomer enrichments of measured metabolites and algebraic equations to determine a predefined metabolic flux model. However, this approach is exquisitely sensitive to measurement error, thus precluding accurate relative flux parameter determination. In this study, we applied a novel mathematical approach to determine relative cardiac metabolic fluxes using ~13C-metabolic flux analysis (~13C-MFA) aided by multiple tracer experiments and integrated data analysis. Using ~13C-MFA, we validated a metabolic network model to explain myocardial energy substrate metabolism. Four different ~13C-labeled substrates were queried (i.e., glucose, lactate, pyruvate, and oleate) based on a previously published study. We integrated the analysis of the complete set of isotopomer data gathered from these mouse heart perfusion experiments into a single comprehensive network model that delineates substrate contributions to both pyruvate and acetyl-CoA pools at a greater resolution than that offered by traditional methods using algebraic equations. To our knowledge, this is the first rigorous application of ~13C-MFA to interrogate data from multiple tracer experiments in the perfused heart. We anticipate that this approach can be used widely to study energy substrate metabolism in this and other similar biological systems.
机译:在许多形式的心肌病变中,能量底物代谢的改变在疾病发病机制中发挥着关键作用。在啮齿动物心脏Perfu-Sion系统中稳定的同位素跟踪可用于确定心脏代谢助熔剂,即与丙酮酸丙酸盐,乙酰-CoA池和丙酮酸胆管症有助于的相对助熔剂,这对心血管稳态至关重要。先前已经开发了使用测量代谢物和代数方程的同位素富集来询问这些相对助熔剂以确定预定义的代谢助焊剂模型。然而,这种方法对测量误差非常敏感,从而排除了准确的相对助焊剂参数测定。在这项研究中,我们应用了一种新的数学方法来使用〜13C - 代谢通量分析(〜13C-MFA)通过多个示踪实验和集成数据分析来确定相对心脏代谢助熔剂。使用〜13C-MFA,我们验证了代谢网络模型以解释心肌能量底物代谢。基于先前公布的研究,查询四种不同〜13C标记的基质(即葡萄糖,乳酸,丙酮酸和油脂)。我们将从这些小鼠心脏灌注实验收集的完整同位素数据的分析整合到一个综合网络模型中,以比使用代数方程的传统方法提供的更大的分辨率描绘对丙酮酸和乙酰-CoA池的血液贡献。据我们所知,这是第一次严谨应用于〜13C-MFA,以在灌注的心脏中从多个示踪实验中询问数据。我们预期这种方法可以广泛用于研究该和其他类似的生物系统中的能量底物代谢。

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