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骨形态发生蛋白6的I型受体结合依赖于配体的N-糖基化。

Type I receptor binding of bone morphogenetic protein 6 is dependent on N-glycosylation of the ligand.

作者信息

Saremba Stefan, Nickel Joachim, Seher Axel, Kotzsch Alexander, Sebald Walter, Mueller Thomas D

机构信息

Lehrstuhl für Physiologische Chemie II, Biozentrum der Universität Würzburg, Germany.

出版信息

FEBS J. 2008 Jan;275(1):172-83. doi: 10.1111/j.1742-4658.2007.06187.x. Epub 2007 Dec 6.

DOI:10.1111/j.1742-4658.2007.06187.x
PMID:18070108
Abstract

Bone morphogenetic proteins (BMPs), together with transforming growth factor (TGF)-beta and activins/inhibins, constitute the TGF-beta superfamily of ligands. This superfamily is formed by more than 30 structurally related secreted proteins. The crystal structure of human BMP-6 was determined to a resolution of 2.1 A; the overall structure is similar to that of other TGF-beta superfamily ligands, e.g. BMP-7. The asymmetric unit contains the full dimeric BMP-6, indicating possible asymmetry between the two monomeric subunits. Indeed, the conformation of several loops differs between both monomers. In particular, the prehelix loop, which plays a crucial role in the type I receptor interactions of BMP-2, adopts two rather different conformations in BMP-6, indicating possible dynamic flexibility of the prehelix loop in its unbound conformation. Flexibility of this loop segment has been discussed as an important feature required for promiscuous binding of different type I receptors to BMPs. Further studies investigating the interaction of BMP-6 with different ectodomains of type I receptors revealed that N-glycosylation at Asn73 of BMP-6 in the wrist epitope is crucial for recognition by the activin receptor type I. In the absence of the carbohydrate moiety, activin receptor type I-mediated signaling of BMP-6 is totally diminished. Thus, flexibility within the binding epitope of BMP-6 and an unusual recognition motif, i.e. an N-glycosylation motif, possibly play an important role in type I receptor specificity of BMP-6.

摘要

骨形态发生蛋白(BMPs)与转化生长因子(TGF)-β以及激活素/抑制素共同构成了TGF-β超家族配体。这个超家族由30多种结构相关的分泌蛋白组成。人BMP-6的晶体结构分辨率达到2.1 Å;其整体结构与其他TGF-β超家族配体(如BMP-7)相似。不对称单元包含完整的二聚体BMP-6,这表明两个单体亚基之间可能存在不对称性。实际上,两个单体中几个环的构象不同。特别是在BMP-2的I型受体相互作用中起关键作用的前螺旋环,在BMP-6中呈现出两种相当不同的构象,这表明前螺旋环在其未结合构象中可能具有动态灵活性。该环段的灵活性已被讨论为不同I型受体与BMPs混杂结合所需的一个重要特征。进一步研究BMP-6与I型受体不同胞外域的相互作用发现,BMP-6腕部表位中Asn73处的N-糖基化对于激活素I型受体的识别至关重要。在没有碳水化合物部分的情况下,激活素I型受体介导的BMP-6信号传导完全减弱。因此,BMP-6结合表位内的灵活性和一个不寻常的识别基序,即一个N-糖基化基序,可能在BMP-6的I型受体特异性中起重要作用。

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