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From the Cover: Compartmentation protects trypanosomes from the dangerous design of glycolysis

机译:从封面开始:隔室可保护锥虫免受糖酵解的危险设计

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摘要

Unlike in other organisms, in trypanosomes and other Kinetoplastida the larger part of glycolysis takes place in a specialized organelle, called the glycosome. At present it is impossible to remove the glycosome without changing much of the rest of the cell. It would seem impossible, therefore, to assess the metabolic consequences of this compartmentation. Therefore, we here develop a computer experimentation approach, which we call computational cell biology. A validated molecular kinetic computer replica was built of glycolysis in the parasite Trypanosoma brucei. Removing the glycosome membrane in that replica had little effect on the steady-state flux, which argues against the prevalent speculation that glycosomes serve to increase flux by concentrating the enzymes. Removal of the membrane did cause (i) the sugar phosphates to rise to unphysiologically high levels, which must have pathological effects, and (ii) a failure to recover from glucose deprivation. We explain these effects on the basis of the biochemical organization of the glycosome. We conclude (i) that the glycosome protects trypanosomes from the negative side effects of the “turbo” structure of glycolysis and (ii) that computer experimentation based on solid molecular data is a powerful tool to address questions that are not, or not yet, accessible to experimentation.
机译:与其他生物体不同,在锥虫和其他动塑料体中,大部分的糖酵解发生在称为糖体的特殊细胞器中。目前,在不改变细胞其余大部分的情况下不可能除去糖体。因此,似乎无法评估这种分隔的代谢后果。因此,我们在这里开发一种计算机实验方法,称为计算细胞生物学。建立了经过验证的分子动力学计算机复制品,用于寄生虫布鲁氏锥虫中的糖酵解。除去该复制物中的糖体膜对稳态通量几乎没有影响,这与普遍的推测相反,即糖体通过浓缩酶起到增加通量的作用。膜的去除确实导致(i)磷酸糖升高至非生理性高水平,这必须具有病理作用,以及(ii)无法从葡萄糖剥夺中恢复。我们根据糖体的生化组织来解释这些作用。我们得出的结论是:(i)糖体保护锥虫免受糖酵解“ turbo”结构的负面影响,并且(ii)基于固体分子数据的计算机实验是解决尚未或尚未解决的问题的有力工具。可以进行实验。

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