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Determinants of Brain Cell Metabolic Phenotypes and Energy Substrate Utilization Unraveled with a Modeling Approach

机译:决定性的脑细胞代谢表型和能量底物利用率的建模方法。

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Although all brain cells bear in principle a comparable potential in terms of energetics, in reality they exhibit different metabolic profiles. The specific biochemical characteristics explaining such disparities and their relative importance are largely unknown. Using a modeling approach, we show that modifying the kinetic parameters of pyruvate dehydrogenase and mitochondrial NADH shuttling within a realistic interval can yield a striking switch in lactate flux direction. In this context, cells having essentially an oxidative profile exhibit pronounced extracellular lactate uptake and consumption. However, they can be turned into cells with prominent aerobic glycolysis by selectively reducing the aforementioned parameters. In the case of primarily oxidative cells, we also examined the role of glycolysis and lactate transport in providing pyruvate to mitochondria in order to sustain oxidative phosphorylation. The results show that changes in lactate transport capacity and extracellular lactate concentration within the range described experimentally can sustain enhanced oxidative metabolism upon activation. Such a demonstration provides key elements to understand why certain brain cell types constitutively adopt a particular metabolic profile and how specific features can be altered under different physiological and pathological conditions in order to face evolving energy demands.
机译:尽管原则上所有脑细胞在能量方面都具有可比的潜力,但实际上它们表现出不同的代谢特征。解释此类差异及其相对重要性的具体生化特征在很大程度上尚不清楚。使用建模方法,我们表明在实际间隔内修改丙酮酸脱氢酶和线粒体NADH的动力学参数可以在乳酸通量方向产生明显的转换。在这种情况下,具有基本氧化特性的细胞表现出明显的细胞外乳酸摄取和消耗。然而,通过选择性地降低上述参数,它们可以变成具有明显需氧糖酵解的细胞。在主要为氧化性细胞的情况下,我们还研究了糖酵解和乳酸运输在向线粒体提供丙酮酸以维持氧化磷酸化中的作用。结果表明,在实验描述的范围内,乳酸转运能力和细胞外乳酸浓度的变化可以在活化后维持增强的氧化代谢。这样的演示提供了关键要素,以了解为什么某些脑细胞类型会组成性地采用特定的代谢模式,以及如何在不同的生理和病理条件下改变特定的特征,以应对不断发展的能量需求。

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