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黏连蛋白结合中的功能不对称掩盖了dockerin模块的固有对称性:通过系统诱变对纤维小体组装的深入了解。

Functional asymmetry in cohesin binding belies inherent symmetry of the dockerin module: insight into cellulosome assembly revealed by systematic mutagenesis.

作者信息

Karpol Alon, Barak Yoav, Lamed Raphael, Shoham Yuval, Bayer Edward A

机构信息

Department of Biological Chemistry, The Weizmann Institute of Science, Rehovot, 76100 Israel.

出版信息

Biochem J. 2008 Mar 1;410(2):331-8. doi: 10.1042/BJ20071193.

DOI:10.1042/BJ20071193
PMID:18021074
Abstract

The cellulosome is an intricate multi-enzyme complex, known for its efficient degradation of recalcitrant cellulosic substrates. Its supramolecular architecture is determined by the high-affinity intermodular cohesin-dockerin interaction. The dockerin module comprises a calcium-binding, duplicated 'F-hand' loop-helix motif that bears striking similarity to the EF-hand loop-helix-loop motif of eukaryotic calcium-binding proteins. In the present study, we demonstrate by progressive truncation and alanine scanning of a representative type-I dockerin module from Clostridium thermocellum, that only one of the repeated motifs is critical for high-affinity cohesin binding. The results suggest that the near-symmetry in sequence and structure of the repeated elements of the dockerin is not essential to cohesin binding. The first calcium-binding loop can be deleted entirely, with almost full retention of binding. Likewise, significant deletion of the second repeated segment can be achieved, provided that its calcium-binding loop remains intact. Essentially the same conclusion was verified by systematically mutating the highly conserved residues in the calcium-binding loop. Mutations in one of the calcium-binding loops failed to disrupt cohesin recognition and binding, whereas a single mutation in both loops served to reduce the affinity significantly. The results are mutually compatible with recent crystal structures of the type-I cohesin-dockerin heterodimer, which demonstrate that the dockerin can bind in an equivalent manner to its cohesin counterpart through either its first or second repeated motif. The observed plasticity in cohesin-dockerin binding may facilitate cellulosome assembly in vivo or, alternatively, provide a conformational switch that promotes access of the tethered cellulosomal enzymes to their polysaccharide substrates.

摘要

纤维小体是一种复杂的多酶复合体,以其高效降解难降解纤维素底物而闻名。其超分子结构由高亲和力的模块间黏连蛋白-坞蛋白相互作用决定。坞蛋白模块包含一个钙结合的、重复的“F-手”环-螺旋基序,与真核钙结合蛋白的EF-手环-螺旋-环基序有显著相似性。在本研究中,我们通过对来自嗜热栖热菌的代表性I型坞蛋白模块进行逐步截短和丙氨酸扫描证明,重复基序中只有一个对高亲和力黏连蛋白结合至关重要。结果表明,坞蛋白重复元件在序列和结构上的近乎对称性对黏连蛋白结合并非必不可少。第一个钙结合环可以完全删除,而结合几乎完全保留。同样,如果第二个重复片段的钙结合环保持完整,也可以实现对其的显著删除。通过系统地突变钙结合环中的高度保守残基,基本验证了相同的结论。其中一个钙结合环中的突变未能破坏黏连蛋白的识别和结合,而两个环中的单个突变则显著降低了亲和力。这些结果与I型黏连蛋白-坞蛋白异二聚体的最新晶体结构相互印证,后者表明坞蛋白可以通过其第一个或第二个重复基序以等效方式与其黏连蛋白对应物结合。在黏连蛋白-坞蛋白结合中观察到的可塑性可能有助于纤维小体在体内的组装,或者提供一种构象开关,促进锚定的纤维小体酶接近其多糖底物。

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