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A Fundamental Trade-off in Covalent Switching and Its Circumvention by Enzyme Bifunctionality in Glucose Homeostasis

机译:葡萄糖稳态中共价转换的基本权衡及其通过酶双功能的规避

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摘要

Covalent modification provides a mechanism for modulating molecular state and regulating physiology. A cycle of competing enzymes that add and remove a single modification can act as a molecular switch between “on” and “off” and has been widely studied as a core motif in systems biology. Here, we exploit the recently developed “linear framework” for time scale separation to determine the general principles of such switches. These methods are not limited to Michaelis-Menten assumptions, and our conclusions hold for enzymes whose mechanisms may be arbitrarily complicated. We show that switching efficiency improves with increasing irreversibility of the enzymes and that the on/off transition occurs when the ratio of enzyme levels reaches a value that depends only on the rate constants. Fluctuations in enzyme levels, which habitually occur due to cellular heterogeneity, can cause flipping back and forth between on and off, leading to incoherent mosaic behavior in tissues, that worsens as switching becomes sharper. This trade-off can be circumvented if enzyme levels are correlated. In particular, if the competing catalytic domains are on the same protein but do not influence each other, the resulting bifunctional enzyme can switch sharply while remaining coherent. In the mammalian liver, the switch between glycolysis and gluconeogenesis is regulated by the bifunctional 6-phosphofructo-2-kinase/fructose-2,6-bisphosphatase (PFK-2/FBPase-2). We suggest that bifunctionality of PFK-2/FBPase-2 complements the metabolic zonation of the liver by ensuring coherent switching in response to insulin and glucagon.
机译:共价修饰提供了调节分子状态和调节生理的机制。添加和去除单个修饰的竞争酶循环可以充当“开启”和“关闭”之间的分子转换,并且已被广泛研究为系统生物学的核心主题。在这里,我们利用最近开发的“线性框架”来进行时标分离,以确定此类开关的一般原理。这些方法不仅限于Michaelis-Menten假设,而且我们的结论适用于其机制可能任意复杂的酶。我们表明,开关效率随着酶的不可逆性的提高而提高,并且当酶水平的比率达到仅取决于速率常数的值时,就会发生开/关转换。通常由于细胞异质性而引起的酶水平波动会引起开与关之间的来回翻转,从而导致组织中不连续的镶嵌行为,随着切换变得越来越尖锐,这种情况会恶化。如果酶水平相关,则可以避免这种折衷。特别地,如果竞争性催化结构域位于相同的蛋白质上但彼此不影响,则所得的双功能酶可在保持连贯性的同时急剧切换。在哺乳动物肝脏中,糖酵解和糖异生之间的转换受双功能6-磷酸果糖-2-激酶/果糖-2,6-双磷酸酶(PFK-2 / FBPase-2)调节。我们建议PFK-2 / FBPase-2的双功能通过确保响应胰岛素和胰高血糖素的连贯转换来补充肝脏的代谢区带。

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