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首页> 外文期刊>Structure >Allosterically Gated Enzyme Dynamics in the Cysteine Synthase Complex Regulate Cysteine Biosynthesis in Arabidopsis thaliana
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Allosterically Gated Enzyme Dynamics in the Cysteine Synthase Complex Regulate Cysteine Biosynthesis in Arabidopsis thaliana

机译:半胱氨酸合酶复合物中的变构门控酶动力学调节拟南芥中的半胱氨酸生物合成。

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摘要

Plants and bacteria assimilate sulfur into cysteine. Cysteine biosynthesis involves a bienzyme complex, the cysteine synthase complex (CSC), which consists of serine-acetyl-transferase (SAT) and O-acetylserine-( thiol)-lyase (OAS-TL) enzymes. The activity of OAS-TL is reduced by formation of the CSC. Although this reduction is an inherent part of the self-regulation cycle of cysteine biosynthesis, there has until now been no explanation as to how OASTL loses activity in plants. Complexation of SAT and OAS-TL involves binding of the C-terminal tail of SAT in one of the active sites of the homodimeric OAS-TL.Wehere explore the flexibility of the unoccupied active site in Arabidopsis thaliana cytosolic and mitochondrial OAS-TLs. Our results reveal two gates in the OAS-TL active site that define its accessibility. The observed dynamics of the gates show allosteric closure of the unoccupied active site of OAS-TL in the CSC, which can hinder substrate binding, abolishing its turnover to cysteine.
机译:植物和细菌将硫同化为半胱氨酸。半胱氨酸的生物合成涉及一种双酶复合物,即半胱氨酸合酶复合物(CSC),其由丝氨酸-乙酰基转移酶(SAT)和O-乙酰基丝氨酸-(硫醇)-裂合酶(OAS-TL)酶组成。通过形成CSC降低了OAS-TL的活性。尽管这种减少是半胱氨酸生物合成自我调节周期的固有部分,但迄今为止,还没有关于OASTL如何在植物中丧失活性的解释。 SAT和OAS-TL的复合涉及在同型二聚OAS-TL的活性位点之一中结合SAT的C末端尾巴。我们的结果显示,OAS-TL活动站点中有两个门定义了它的可访问性。观察到的闸门动力学表明,CSC中OAS-TL的空位活性位点处于变构关闭状态,这可能会阻碍底物结合,从而消除其向半胱氨酸的转化。

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