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首页> 外文期刊>Protein Science: A Publication of the Protein Society >Detailed insights from microarray and crystallographic studies into carbohydrate recognition by microneme protein 1 (MIC1) of Toxoplasma gondii.
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Detailed insights from microarray and crystallographic studies into carbohydrate recognition by microneme protein 1 (MIC1) of Toxoplasma gondii.

机译:从微阵列和晶体学研究到弓形虫微nemene蛋白1(MIC1)识别碳水化合物的详细见解。

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摘要

The intracellular protozoan Toxoplasma gondii is among the most widespread parasites. The broad host cell range of the parasite can be explained by carbohydrate microarray screening analyses that have demonstrated the ability of the T. gondii adhesive protein, TgMIC1, to bind to a wide spectrum of sialyl oligosaccharide ligands. Here, we investigate by further microarray analyses in a dose-response format the differential binding of TgMIC1 to 2-3- and 2-6-linked sialyl carbohydrates. Interestingly, two novel synthetic fluorinated analogs of 3'SiaLacNAc(1-4) and 3'SiaLacNAc(1-3) were identified as highly potent ligands. To understand the structural basis of the carbohydrate binding specificity of TgMIC1, we have determined the crystal structures of TgMIC1 micronemal adhesive repeat (MAR)-region (TgMIC1-MARR) in complex with five sialyl-N-acetyllactosamine analogs. These crystal structures have revealed a specific, water-mediated hydrogen bond network that accounts for the preferential binding of TgMIC1-MARR to arrayed 2-3-linked sialyl oligosaccharides and the high potency of the fluorinated analogs. Furthermore, we provide strong evidence for the first observation of a C--F...H--O hydrogen bond within a lectin-carbohydrate complex. Finally, detailed comparison with other oligosaccharide-protein complexes in the Protein Data Bank (PDB) reveals a new family of sialic-acid binding sites from lectins in parasites, bacteria, and viruses.
机译:细胞内的原生动物弓形虫是最广泛的寄生虫之一。可以通过碳水化合物微阵列筛选分析来解释该寄生虫的广泛宿主细胞范围,该分析已经证明了弓形虫粘附蛋白TgMIC1能够与各种唾液酸寡糖配体结合。在这里,我们通过剂量响应形式的进一步的微阵列分析来研究TgMIC1对2-3-和2-6连接的唾液酸碳水化合物的差异结合。有趣的是,两个新的3'SiaLacNAc(1-4)和3'SiaLacNAc(1-3)的合成氟化类似物被鉴定为高效配体。为了了解TgMIC1的碳水化合物结合特异性的结构基础,我们确定了TgMIC1微nealmal重复序列(MAR)-区域(TgMIC1-MARR)与五个唾液酸-N-乙酰基乳糖胺类似物的复合物的晶体结构。这些晶体结构揭示了一个特殊的,水介导的氢键网络,该网络解释了TgMIC1-MARR与阵列2-3-连接的唾液酸寡糖的优先结合以及氟化类似物的高效力。此外,我们为首次观察到凝集素-碳水化合物复合物中C-F ... H-O氢键提供了有力的证据。最后,与蛋白质数据库(PDB)中其他寡糖-蛋白质复合物的详细比较揭示了来自寄生虫,细菌和病毒中凝集素的唾液酸结合位点的新家族。

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