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Distinct Z-DNA binding mode of a PKR-like protein kinase containing a Z-DNA binding domain (PKZ)

机译:包含Z-DNA结合域(PKZ)的PKR样蛋白激酶的独特Z-DNA结合模式

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摘要

Double-stranded ribonucleic acid-activated protein kinase (PKR) downregulates translation as a defense mechanism against viral infection. In fish species, PKZ, a PKR-like protein kinase containing left-handed deoxyribonucleic acid (Z-DNA) binding domains, performs a similar role in the antiviral response. To understand the role of PKZ in Z-DNA recognition and innate immune response, we performed structural and functional studies of the Z-DNA binding domain (Zα) of PKZ from Carassius auratus (caZαPKZ). The 1.7-Å resolution crystal structure of caZαPKZ:Z-DNA revealed that caZαPKZ shares the overall fold with other Zα, but has discrete structural features that differentiate its DNA binding mode from others. Functional analyses of caZαPKZ and its mutants revealed that caZαPKZ mediates the fastest B-to-Z transition of DNA among Zα, and the minimal interaction for Z-DNA recognition is mediated by three backbone phosphates and six residues of caZαPKZ. Structure-based mutagenesis and B-to-Z transition assays confirmed that Lys56 located in the β-wing contributes to its fast B-to-Z transition kinetics. Investigation of the DNA binding kinetics of caZαPKZ further revealed that the B-to-Z transition rate is positively correlated with the association rate constant. Taking these results together, we conclude that the positive charge in the β-wing largely affects fast B-to-Z transition activity by enhancing the DNA binding rate.
机译:双链核糖核酸激活的蛋白激酶(PKR)下调翻译作为抵抗病毒感染的防御机制。在鱼类中,PKZ是一种含有左手脱氧核糖核酸(Z-DNA)结合域的PKR样蛋白激酶,在抗病毒应答中起着相似的作用。为了了解PKZ在Z-DNA识别和先天免疫应答中的作用,我们对Car鱼(caassius auratus)(caZαPKZ)的PKZ的Z-DNA结合结构域(Zα)进行了结构和功能研究。 caZαPKZ:Z-DNA的1.7Å分辨率晶体结构表明caZαPKZ与其他Zα具有相同的整体折叠,但具有离散的结构特征,从而使其DNA结合方式与其他Zα区别开来。 caZαPKZ及其突变体的功能分析表明,caZαPKZ介导Zα中DNA最快的B到Z过渡,并且Z-DNA识别的最小相互作用是由三个骨架磷酸和caZαPKZ的六个残基介导的。基于结构的诱变和B至Z过渡测定证实了位于β翼的Lys56有助于其快速的B至Z过渡动力学。对caZαPKZ的DNA结合动力学的研究进一步表明,从B到Z的转变速率与缔合速率常数正相关。综合这些结果,我们得出的结论是,β翼中的正电荷通过提高DNA结合率大大影响了快速的B到Z过渡活性。

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