Franz Eugen, Knape Matthias J, Herberg Friedrich W
Department of Biochemistry , University of Kassel , Heinrich-Plett-Strasse 40 , 34132 Kassel , Germany.
ACS Infect Dis. 2018 Mar 9;4(3):415-423. doi: 10.1021/acsinfecdis.7b00222. Epub 2017 Dec 26.
cGMP-dependent protein kinase from Plasmodium falciparum ( PfPKG) plays a crucial role in the sexual as well as the asexual proliferation of this human malaria causing parasite. However, function and regulation of PfPKG are largely unknown. Previous studies showed that the domain organization of PfPKG significantly differs from human PKG ( hPKG) and indicated a critical role of the cyclic nucleotide binding domain D (CNB-D). We identified a novel mechanism, where the CNB-D controls activation and regulation of the parasite specific protein kinase. Here, kinase activity is not dependent on a pseudosubstrate autoinhibitory sequence (IS), as reported for human PKG. A construct lacking the putative IS and containing only the CNB-D and the catalytic domain is inactive in the absence of cGMP and can efficiently be activated with cGMP. On the basis of structural evidence, we describe a regulatory mechanism, whereby cGMP binding to CNB-D induces a conformational change involving the αC-helix of the CNB-D. The inactive state is defined by a unique interaction between Asp597 of the catalytic domain and Arg528 of the αC-helix. The same arginine (R528), however, stabilizes cGMP binding by interacting with Tyr480 of the phosphate binding cassette (PBC). This represents the active state of PfPKG. Our results unveil fundamental differences in the activation mechanism between PfPKG and hPKG, building the basis for the development of strategies for targeted drug design in fighting malaria.
恶性疟原虫的环磷酸鸟苷依赖性蛋白激酶(PfPKG)在这种导致人类疟疾的寄生虫的有性和无性增殖中起着关键作用。然而,PfPKG的功能和调节在很大程度上尚不清楚。先前的研究表明,PfPKG的结构域组织与人类PKG(hPKG)有显著差异,并表明环核苷酸结合结构域D(CNB-D)起着关键作用。我们发现了一种新机制,其中CNB-D控制着这种寄生虫特异性蛋白激酶的激活和调节。在这里,激酶活性不像人类PKG那样依赖于假底物自抑制序列(IS)。一种缺少假定的IS且仅包含CNB-D和催化结构域的构建体在没有环磷酸鸟苷的情况下是无活性的,并且可以被环磷酸鸟苷有效地激活。基于结构证据,我们描述了一种调节机制,即环磷酸鸟苷与CNB-D结合会诱导一种涉及CNB-D的αC螺旋的构象变化。非活性状态由催化结构域的Asp597与αC螺旋的Arg528之间的独特相互作用定义。然而,同一个精氨酸(R528)通过与磷酸结合盒(PBC)的Tyr480相互作用来稳定环磷酸鸟苷的结合。这代表了PfPKG的活性状态。我们的结果揭示了PfPKG和hPKG激活机制的根本差异,为开发抗疟疾靶向药物设计策略奠定了基础。