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通过蛋白质工程对大肠杆菌丙酮酸脱氢酶多酶复合物中活性位点偶联机制的研究。

Investigation of the mechanism of active site coupling in the pyruvate dehydrogenase multienzyme complex of Escherichia coli by protein engineering.

作者信息

Miles J S, Guest J R, Radford S E, Perham R N

机构信息

Department of Microbiology, University of Sheffield, Western Bank, England.

出版信息

J Mol Biol. 1988 Jul 5;202(1):97-106. doi: 10.1016/0022-2836(88)90522-0.

Abstract

Site-directed mutagenesis of the aceF gene of Escherichia coli was used to generate a nested set of deletions in the long (alanine + proline)-rich sequence that separates the lipoyl domain from the dihydrolipoamide dehydrogenase-binding domain in the "one-lipoyl domain" dihydrolipoamide acetyltransferase polypeptide chains of a pyruvate dehydrogenase multienzyme complex. The deletions reduced the number of residues in this sequence successively from 32 to 20, 13, 7 and just 1 residue. In all instances, pyruvate dehydrogenase complexes were still assembled in vivo around cores containing the deleted chains, and those with the two shortest deletions were essentially fully active. However, the two most severe deletions caused falls of 50% or more in specific catalytic activity. Similarly, although shortening the interdomain sequence to 20 residues left the system of active-site coupling unimpaired, cutting it to 13 residues or less caused substantial falls in the reductive acetylation of the lipoyl domains and corresponding losses of active-site coupling. The changes in specific catalytic activity and active-site coupling that accompanied the shortening of the (alanine + proline)-rich segment were reflected in the poorer growth rates of the relevant strains of E. coli on stringent substrates. All these results are consistent with this (alanine + proline)-rich sequence acting as a linker region that facilitates the movements of the lipoyl domains required for full catalytic activity and active-site coupling in the complex. The other two such sequences that separate the additional lipoyl domains in the N-terminal half of the wild-type "three-lipoyl domain" dihydrolipoamide acetyltransferase chain are presumed to function similarly. This role is consistent with the conformational flexibility assigned to these segments from previous studies based on 1H nuclear magnetic resonance spectroscopy and protein engineering.

摘要

利用定点诱变技术对大肠杆菌的aceF基因进行诱变,在富含(丙氨酸+脯氨酸)的长序列中产生一系列嵌套缺失,该序列将丙酮酸脱氢酶多酶复合物的“单硫辛酰结构域”二氢硫辛酰胺乙酰转移酶多肽链中的硫辛酰结构域与二氢硫辛酰胺脱氢酶结合结构域分隔开来。这些缺失使该序列中的残基数量依次从32个减少到20个、13个、7个,最后仅为1个残基。在所有情况下,丙酮酸脱氢酶复合物仍能在体内围绕含有缺失链的核心组装,且两个最短缺失的复合物基本完全有活性。然而,两个最严重的缺失导致比活性下降50%或更多。同样,虽然将结构域间序列缩短至20个残基时活性位点偶联系统未受影响,但将其缩短至13个残基或更少时,硫辛酰结构域的还原乙酰化显著下降,活性位点偶联相应丧失。随着富含(丙氨酸+脯氨酸)片段的缩短,比活性和活性位点偶联的变化反映在相关大肠杆菌菌株在严格底物上较差的生长速率上。所有这些结果都与这个富含(丙氨酸+脯氨酸)的序列作为连接区域的作用一致,该区域有助于复合物中充分催化活性和活性位点偶联所需的硫辛酰结构域的移动。野生型“三硫辛酰结构域”二氢硫辛酰胺乙酰转移酶链N端另一半中分隔额外硫辛酰结构域的另外两个这样的序列,推测其功能类似。这一作用与先前基于1H核磁共振光谱和蛋白质工程研究赋予这些片段的构象灵活性一致。

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