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Glutathione mediated regulation of oligomeric structure and functional activity of Plasmodium falciparum glutathione S-transferase

机译:谷胱甘肽介导的恶性疟原虫谷胱甘肽S-转移酶的寡聚结构和功能活性的调节

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Background In contrast to many other organisms, the malarial parasite Plasmodium falciparum possesses only one typical glutathione S-transferase. This enzyme, PfGST, cannot be assigned to any of the known GST classes and represents a most interesting target for antimalarial drug development. The PfGST under native conditions forms non-covalently linked higher aggregates with major population (~98%) being tetramer. However, in the presence of 2 mM GSH, a dimer of PfGST is observed. Recently reported study on binding and catalytic properties of PfGST indicated a GSH dependent low-high affinity transition with simultaneous binding of two GSH molecules to PfGST dimer suggesting that GSH binds to low affinity inactive enzyme dimer converting it to high affinity functionally active dimer. In order to understand the role of GSH in tetramer-dimer transition of PfGST as well as in modulation of functional activity of the enzyme, detailed structural, functional and stability studies on recombinant PfGST in the presence and absence of GSH were carried out. Results Our data indicate that the dimer – and not the tetramer – is the active form of PfGST, and that substrate saturation is directly paralleled by dissociation of the tetramer. Furthermore, this dissociation is a reversible process indicating that the tetramer-dimer equilibrium of PfGST is defined by the surrounding GSH concentration. Equilibrium denaturation studies show that the PfGST tetramer has significantly higher stability compared to the dimer. The enhanced stability of the tetramer is likely to be due to stronger ionic interactions existing in it. Conclusion This is the first report for any GST where an alteration in oligomeric structure and not just small conformational change is observed upon GSH binding to the enzyme. Furthermore we also demonstrate a reversible mechanism of regulation of functional activity of Plasmodium falciparum glutathione S-transferase via GSH induced dissociation of functionally inactive tetramer into active dimers.
机译:背景与许多其他生物相反,疟疾寄生虫恶性疟原虫仅具有一种典型的谷胱甘肽S-转移酶。这种酶PfGST不能分配给任何已知的GST类,并且代表了抗疟药物开发的最有趣的靶标。在天然条件下,PfGST形成非共价连接的较高聚集体,主要人口(〜98%)为四聚体。然而,在2mM GSH存在下,观察到PfGST的二聚体。最近报道的有关PfGST的结合和催化特性的研究表明,GSH依赖的低-高亲和力转变,同时两个GSH分子与PfGST二聚体同时结合,表明GSH结合到低亲和力的非活性酶二聚体上,从而将其转变为高亲和力的功能性二聚体。为了了解GSH在PfGST的四聚体-二聚体过渡以及在调节酶的功能活性中的作用,在有和没有GSH的情况下,对重组PfGST进行了详细的结构,功能和稳定性研究。结果我们的数据表明,二聚体而不是四聚体是PfGST的活性形式,底物饱和度与四聚体的解离直接平行。此外,该解离是可逆过程,表明PfGST的四聚体-二聚体平衡由周围的GSH浓度限定。平衡变性研究表明,与二聚体相比,PfGST四聚体具有更高的稳定性。四聚物的增强的稳定性可能是由于其中存在的较强的离子相互作用。结论这是任何GST的首次报道,其中GSH与酶结合后,寡聚结构发生了变化,而不仅仅是构象变化。此外,我们还证明了通过GSH诱导的功能失活的四聚体解离为活性二聚体,对恶性疟原虫谷胱甘肽S-转移酶的功能活性进行调节的可逆机制。

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