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布氏锥虫中转铁蛋白受体配体结合位点的特征表明其与可变表面糖蛋白的N端结构域存在结构关系。

Characterization of the ligand-binding site of the transferrin receptor in Trypanosoma brucei demonstrates a structural relationship with the N-terminal domain of the variant surface glycoprotein.

作者信息

Salmon D, Hanocq-Quertier J, Paturiaux-Hanocq F, Pays A, Tebabi P, Nolan D P, Michel A, Pays E

机构信息

Department of Molecular Biology, Free University of Brussels, 67, rue des Chevaux, B1640 Rhode St Gen-ese, Belgium.

出版信息

EMBO J. 1997 Dec 15;16(24):7272-8. doi: 10.1093/emboj/16.24.7272.

Abstract

The Trypanosoma brucei transferrin (Tf) receptor is a heterodimer encoded by ESAG7 and ESAG6, two genes contained in the different polycistronic transcription units of the variant surface glycoprotein (VSG) gene. The sequence of ESAG7/6 differs slightly between different units, so that receptors with different affinities for Tf are expressed alternatively following transcriptional switching of VSG expression sites during antigenic variation of the parasite. Based on the sequence homology between pESAG7/6 and the N-terminal domain of VSGs, it can be predicted that the four blocks containing the major sequence differences between pESAG7 and pESAG6 form surface-exposed loops and generate the ligand-binding site. The exchange of a few amino acids in this region between pESAG6s encoded by different VSG units greatly increased the affinity for bovine Tf. Similar changes in other regions were ineffective, while mutations predicted to alter the VSG-like structure abolished the binding. Chimeric proteins containing the N-terminal dimerization domain of VSG and the C-terminal half of either pESAG7 or pESAG6, which contains the ligand-binding domain, can form heterodimers that bind Tf. Taken together, these data provided evidence that the T.brucei Tf receptor is structurally related to the N-terminal domain of the VSG and that the ligand-binding site corresponds to the exposed surface loops of the protein.

摘要

布氏锥虫转铁蛋白(Tf)受体是一种异源二聚体,由ESAG7和ESAG6编码,这两个基因包含在可变表面糖蛋白(VSG)基因的不同多顺反子转录单元中。不同单元之间ESAG7/6的序列略有不同,因此在寄生虫抗原变异期间,随着VSG表达位点的转录转换,会交替表达对Tf具有不同亲和力的受体。基于pESAG7/6与VSG的N端结构域之间的序列同源性,可以预测,包含pESAG7和pESAG6之间主要序列差异的四个区域形成表面暴露环并产生配体结合位点。由不同VSG单元编码的pESAG6s之间该区域少数氨基酸的交换极大地增加了对牛Tf的亲和力。其他区域的类似变化无效,而预测会改变VSG样结构的突变则消除了结合。含有VSG的N端二聚化结构域和包含配体结合结构域的pESAG7或pESAG6的C端一半的嵌合蛋白可以形成结合Tf的异源二聚体。综上所述,这些数据证明布氏锥虫Tf受体在结构上与VSG的N端结构域相关,并且配体结合位点对应于该蛋白的暴露表面环。

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