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PNAS Plus: Structures of the cGMP-dependent protein kinase in malaria parasites reveal a unique structural relay mechanism for activation

机译:PNAS Plus:疟疾寄生虫中cGMP依赖性蛋白激酶的结构揭示了激活的独特结构中继机制

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摘要

The cyclic guanosine-3′,5′-monophosphate (cGMP)-dependent protein kinase (PKG) was identified >25 y ago; however, efforts to obtain a structure of the entire PKG enzyme or catalytic domain from any species have failed. In malaria parasites, cooperative activation of PKG triggers crucial developmental transitions throughout the complex life cycle. We have determined the cGMP-free crystallographic structures of PKG from Plasmodium falciparum and Plasmodium vivax, revealing how key structural components, including an N-terminal autoinhibitory segment (AIS), four predicted cyclic nucleotide-binding domains (CNBs), and a kinase domain (KD), are arranged when the enzyme is inactive. The four CNBs and the KD are in a pentagonal configuration, with the AIS docked in the substrate site of the KD in a swapped-domain dimeric arrangement. We show that although the protein is predominantly a monomer (the dimer is unlikely to be representative of the physiological form), the binding of the AIS is necessary to keep Plasmodium PKG inactive. A major feature is a helix serving the dual role of the N-terminal helix of the KD as well as the capping helix of the neighboring CNB. A network of connecting helices between neighboring CNBs contributes to maintaining the kinase in its inactive conformation. We propose a scheme in which cooperative binding of cGMP, beginning at the CNB closest to the KD, transmits conformational changes around the pentagonal molecule in a structural relay mechanism, enabling PKG to orchestrate rapid, highly regulated developmental switches in response to dynamic modulation of cGMP levels in the parasite.
机译:> 25年前就鉴定了环状鸟苷3',5'-单磷酸酯(cGMP)依赖性蛋白激酶(PKG)。然而,从任何物种获得整个PKG酶或催化结构域的结构的努力都失败了。在疟原虫中,PKG的协同激活在整个复杂的生命周期中触发了至关重要的发育过渡。我们已经确定了恶性疟原虫和间日疟原虫的PKG的无cGMP晶体结构,揭示了关键的结构成分如何,包括N末端自抑制片段(AIS),四个预测的环状核苷酸结合域(CNB)和一个激酶域(KD),当酶失活时排列。四个CNB和KD呈五边形配置,其中AIS以交换域二聚体结构停靠在KD的底物位点中。我们显示,尽管蛋白质主要是单体(二聚体不太可能代表生理形式),但AIS的结合对于保持疟原虫PKG失活是必要的。一个主要特征是螺旋具有KD的N末端螺旋和相邻CNB的封端螺旋的双重作用。相邻CNB之间的螺旋连接网络有助于维持该激酶的非活性构象。我们提出了一种方案,其中cGMP的协作结合从最接近KD的CNB开始,在结构中继机制中传递五角形分子周围的构象变化,从而使PKG能够响应cGMP的动态调节而编排快速,高度调控的发育开关寄生虫的水平。

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