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设计的犰狳重复蛋白的晶体结构:构建体设计和结晶条件对整体结构的影响

Crystal structures of designed armadillo repeat proteins: implications of construct design and crystallization conditions on overall structure.

作者信息

Reichen Christian, Madhurantakam Chaithanya, Plückthun Andreas, Mittl Peer R E

机构信息

Department of Biochemistry, University of Zürich, Winterthurerstrasse 190, 8057, Zürich, Switzerland.

出版信息

Protein Sci. 2014 Nov;23(11):1572-83. doi: 10.1002/pro.2535. Epub 2014 Sep 2.

Abstract

Designed armadillo repeat proteins (dArmRP) are promising modular proteins for the engineering of binding molecules that recognize extended polypeptide chains. We determined the structure of a dArmRP containing five internal repeats and 3rd generation capping repeats in three different states by X-ray crystallography: without N-terminal His6 -tag and in the presence of calcium (YM5 A/Ca(2+) ), without N-terminal His6 -tag and in the absence of calcium (YM5 A), and with N-terminal His6 -tag and in the presence of calcium (His-YM5 A/Ca(2+)). All structures show different quaternary structures and superhelical parameters. His-YM5 A/Ca(2+) forms a crystallographic dimer, which is bridged by the His6 -tag, YM5 A/Ca(2+) forms a domain-swapped tetramer, and only in the absence of calcium and the His6 -tag, YM5 A forms a monomer. The changes of superhelical parameters are a consequence of calcium binding, because calcium ions interact with negatively charged residues, which can also participate in the modulation of helix dipole moments between adjacent repeats. These observations are important for further optimizations of dArmRPs and provide a general illustration of how construct design and crystallization conditions can influence the exact structure of the investigated protein.

摘要

设计的犰狳重复蛋白(dArmRP)是用于构建识别延伸多肽链的结合分子的有前景的模块化蛋白。我们通过X射线晶体学确定了一种含有五个内部重复序列和第三代封端重复序列的dArmRP在三种不同状态下的结构:无N端His6标签且存在钙(YM5 A/Ca(2+))、无N端His6标签且不存在钙(YM5 A)以及有N端His6标签且存在钙(His-YM5 A/Ca(2+))。所有结构均显示出不同的四级结构和超螺旋参数。His-YM5 A/Ca(2+)形成晶体学二聚体,由His6标签桥接;YM5 A/Ca(2+)形成结构域交换四聚体;只有在不存在钙和His6标签时,YM5 A形成单体。超螺旋参数的变化是钙结合的结果,因为钙离子与带负电荷的残基相互作用,这些残基也可参与调节相邻重复序列之间的螺旋偶极矩。这些观察结果对于dArmRP的进一步优化很重要,并为构建体设计和结晶条件如何影响所研究蛋白质的精确结构提供了一个总体例证。

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