首页> 外文期刊>The Journal of biological chemistry >The N-terminal domain of a tick evasin is critical for chemokine binding and neutralization and confers specific binding activity to other evasins
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The N-terminal domain of a tick evasin is critical for chemokine binding and neutralization and confers specific binding activity to other evasins

机译:壁虱evasin的N末端结构域对于趋化因子结合和中和至关重要,并赋予与其他evasins的特异性结合活性

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Tick chemokine-binding proteins (evasins) are an emerging class of biologicals that target multiple chemokines and show anti-inflammatory activities in preclinical disease models. Using yeast surface display, we identified a CCL8-binding evasin, P672, from the tick Rhipicephalus pulchellus. We found that P672 binds CCL8 and eight other CC-class chemokines with a Kd < 10 nm and four other CC chemokines with a Kd between 10 and 100 nm and neutralizes CCL3, CCL3L1, and CCL8 with an IC50 < 10 nm. The CC chemokine–binding profile was distinct from that of evasin 1 (EVA1), which does not bind CCL8. We also show that P672's binding activity can be markedly modulated by the location of a StrepII-His purification tag. Combining native MS and bottom-up proteomics, we further demonstrated that P672 is glycosylated and forms a 1:1 complex with CCL8, disrupting CCL8 homodimerization. Homology modeling of P672 using the crystal structure of the EVA1 and CCL3 complex as template suggested that 44 N-terminal residues of P672 form most of the contacts with CCL8. Replacing the 29 N-terminal residues of EVA1 with the 44 N-terminal residues of P672 enabled this hybrid evasin to bind and neutralize CCL8, indicating that the CCL8-binding properties of P672 reside, in part, in its N-terminal residues. This study shows that the function of certain tick evasins can be manipulated simply by adding a tag. We conclude that homology modeling helps identify regions with transportable chemokine-binding functions within evasins, which can be used to construct hybrid evasins with altered properties.
机译:壁虱趋化因子结合蛋白(evasins)是新兴的一类生物,靶向多种趋化因子并在临床前疾病模型中显示抗炎活性。使用酵母表面展示,我们从壁虱Rhipicephalus pulchellus中鉴定了一种与CCL8结合的evasin P672。我们发现P672结合Kd <10 nm的CCL8和其他八种CC类趋化因子和Kd在10到100 nm的其他四种CC趋化因子,并中和CCL3,CCL3L1和CCL8,IC50 <10 nm。 CC趋化因子结合谱不同于不结合CCL8的evasin 1(EVA1)。我们还显示,P672的结合活性可以通过StrepII-His纯化标签的位置显着调节。结合天然MS和自下而上的蛋白质组学,我们进一步证明P672被糖基化并与CCL8形成1:1的复合物,破坏了CCL8的同二聚作用。使用EVA1和CCL3复合物的晶体结构作为模板对P672进行同源性建模表明,P672的44个N末端残基形成了与CCL8的大部分接触。用P672的44个N末端残基替换EVA1的29个N末端残基,可使该杂种evasin结合并中和CCL8,这表明P672的CCL8结合特性部分存在于其N末端残基中。这项研究表明,某些壁虱evasins的功能可以简单地通过添加标签来操纵。我们得出的结论是,同源性建模有助于确定在evasins中具有可运输趋化因子结合功能的区域,这些区域可用于构建具有改变特性的杂化evasins。

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