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A half-site multimeric enzyme achieves its cooperativity without conformational changes

机译:半位多聚酶可实现其协同性而无需构象变化

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Cooperativity is a feature many multimeric proteins use to control activity. Here we show that the bacterial heptose isomerase GmhA displays homotropic positive and negative cooperativity among its four protomers. Most similar proteins achieve this through conformational changes: GmhA instead employs a delicate network of hydrogen bonds, and couples pairs of active sites controlled by a unique water channel. This network apparently raises the Lewis acidity of the catalytic zinc, thus increasing the activity at one active site at the cost of preventing substrate from adopting a reactive conformation at the paired negatively cooperative site – a “half-site” behavior. Our study establishes the principle that multimeric enzymes can exploit this cooperativity without conformational changes to maximize their catalytic power and control. More broadly, this subtlety by which enzymes regulate functions could be used to explore new inhibitor design strategies.
机译:合作性是许多多聚体蛋白质用来控制活性的功能。在这里,我们显示细菌庚糖异构酶GmhA在其四个启动子之间显示出同质性正负协同性。大多数相似的蛋白质通过构象变化实现此目的:GmhA而是使用精细的氢键网络,并通过一对独特的水通道控制成对的活性位点对。该网络显然提高了催化锌的路易斯酸度,从而增加了一个活性位点的活性,但以防止底物在成对的负合作位点处采取反应构象为代价(“半位点”行为)。我们的研究建立了一个原理,即多聚体酶可以利用这种协同性而无需构象变化,从而最大化其催化能力和控制力。更广泛地说,酶调节功能的这种微妙之处可用于探索新的抑制剂设计策略。

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