酵母鞘脂代谢在双氧转换过程中的动力学协调。

Q1 Mathematics
Fernando Alvarez-Vasquez, Kellie J Sims, Eberhard O Voit, Yusuf A Hannun
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引用次数: 28

摘要

背景:酵母的双氧转移需要细胞协调一个复杂的反应,涉及许多基因和代谢过程。目前尚不清楚这种类型的反应是通过体内几个“关键”基因和酶的变化介导的,这些基因和酶在数学上具有高敏感性的特征,还是基于许多不是特别敏感的基因和酶的小变化。与对基因或蛋白质相互作用网络变化的全局评估相反,我们在这里通过对鞘脂代谢这一已知具有信号功能并与多种应激反应相关的特定途径进行详细分析,研究了双氧转移的控制方面。结果:该方法使用两个组成部分:公开可用的鞘脂基因表达数据集和最近开发的鞘脂通路的广义质量作用(GMA)数学模型。在一条探索路线中,我们分析了该模型对酶活性的敏感性,从而分析了基因表达。与此方法相辅相成的是,我们将基因表达数据转换为酶活性的变化,然后通过数学模型预测代谢后果。结果发现,该模型中的大多数灵敏度在量级上都很低,但有些灵敏度却相对较高。然后利用这些信息来测试细胞是否使用一些非常敏感的通路步骤来产生反应,或者控制是否分布在整个通路上。初步实验定性地和部分定量地证实了一组代谢物模拟的预测。结论:结果表明,酵母通过一系列基因和酶的微小变化来协调鞘脂介导的双氧转移过程中的变化,而不是依赖于涉及少数高灵敏度的选择基因的策略。本研究还强调了一种将数据挖掘与数学建模相结合的新方法,以评估特定的代谢途径。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Coordination of the dynamics of yeast sphingolipid metabolism during the diauxic shift.

Coordination of the dynamics of yeast sphingolipid metabolism during the diauxic shift.

Coordination of the dynamics of yeast sphingolipid metabolism during the diauxic shift.

Coordination of the dynamics of yeast sphingolipid metabolism during the diauxic shift.

Background: The diauxic shift in yeast requires cells to coordinate a complicated response that involves numerous genes and metabolic processes. It is unknown whether responses of this type are mediated in vivo through changes in a few "key" genes and enzymes, which are mathematically characterized by high sensitivities, or whether they are based on many small changes in genes and enzymes that are not particularly sensitive. In contrast to global assessments of changes in gene or protein interaction networks, we study here control aspects of the diauxic shift by performing a detailed analysis of one specific pathway-sphingolipid metabolism-which is known to have signaling functions and is associated with a wide variety of stress responses.

Results: The approach uses two components: publicly available sets of expression data of sphingolipid genes and a recently developed Generalized Mass Action (GMA) mathematical model of the sphingolipid pathway. In one line of exploration, we analyze the sensitivity of the model with respect to enzyme activities, and thus gene expression. Complementary to this approach, we convert the gene expression data into changes in enzyme activities and then predict metabolic consequences by means of the mathematical model. It was found that most of the sensitivities in the model are low in magnitude, but that some stand out as relatively high. This information was then deployed to test whether the cell uses a few of the very sensitive pathway steps to mount a response or whether the control is distributed throughout the pathway. Pilot experiments confirm qualitatively and in part quantitatively the predictions of a group of metabolite simulations.

Conclusion: The results indicate that yeast coordinates sphingolipid mediated changes during the diauxic shift through an array of small changes in many genes and enzymes, rather than relying on a strategy involving a few select genes with high sensitivity. This study also highlights a novel approach in coupling data mining with mathematical modeling in order to evaluate specific metabolic pathways.

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来源期刊
Theoretical Biology and Medical Modelling
Theoretical Biology and Medical Modelling MATHEMATICAL & COMPUTATIONAL BIOLOGY-
自引率
0.00%
发文量
0
审稿时长
6-12 weeks
期刊介绍: Theoretical Biology and Medical Modelling is an open access peer-reviewed journal adopting a broad definition of "biology" and focusing on theoretical ideas and models associated with developments in biology and medicine. Mathematicians, biologists and clinicians of various specialisms, philosophers and historians of science are all contributing to the emergence of novel concepts in an age of systems biology, bioinformatics and computer modelling. This is the field in which Theoretical Biology and Medical Modelling operates. We welcome submissions that are technically sound and offering either improved understanding in biology and medicine or progress in theory or method.
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