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在具有体内酶激活能力的细胞中存在含有脲酶脱辅基蛋白复合物(UreD、UreF和UreG)的证据。

Evidence for the presence of urease apoprotein complexes containing UreD, UreF, and UreG in cells that are competent for in vivo enzyme activation.

作者信息

Park I S, Hausinger R P

机构信息

Department of Microbiology, Michigan State University, East Lansing 48824, USA.

出版信息

J Bacteriol. 1995 Apr;177(8):1947-51. doi: 10.1128/jb.177.8.1947-1951.1995.

Abstract

In vivo activation of Klebsiella aerogenes urease, a nickel-containing enzyme, requires the presence of functional UreD, UreF, and UreG accessory proteins and is further facilitated by UreE. These accessory proteins are proposed to be involved in metallocenter assembly (M. H. Lee, S. B. Mulrooney, M. J. Renner, Y. Markowicz, and R. P. Hausinger, J. Bacteriol. 174:4324-4330, 1992). A series of three UreD-urease apoprotein complexes are present in cells that express ureD at high levels, and these complexes are thought to be essential for in vivo activation of the enzyme (I.-S. Park, M. B. Carr, and R. P. Hausinger, Proc. Natl. Acad. Sci. USA 91:3233-3237, 1994). In this study, we describe the effect of accessory gene deletions on urease complex formation. The ureE, ureF, and ureG gene products were found not to be required for formation of the UreD-urease complexes; however, the complexes from the ureF deletion mutant exhibited delayed elution during size exclusion chromatography. Because these last complexes were of typical UreD-urease sizes according to native gel electrophoretic analysis, we propose that UreF alters the conformation of the UreD-urease complexes. The same studies revealed the presence of an additional series of urease apoprotein complexes present only in cells containing ureD, ureF, and ureG, along with the urease subunit genes. These new complexes were shown to contain urease, UreD, UreF, and UreG. We propose that the UreD-UreF-UreG-urease apoprotein complexes represent the activation-competent form of urease apoprotein in the cell.

摘要

产气克雷伯菌脲酶(一种含镍酶)的体内激活需要功能性的UreD、UreF和UreG辅助蛋白的存在,并且UreE能进一步促进其激活。这些辅助蛋白被认为参与金属中心的组装(M. H. 李、S. B. 马尔鲁尼、M. J. 伦纳、Y. 马尔科维茨和R. P. 豪辛格,《细菌学杂志》174:4324 - 4330,1992年)。在高表达ureD的细胞中存在一系列由三个UreD - 脲酶脱辅基蛋白组成的复合物,这些复合物被认为对该酶的体内激活至关重要(I.-S. 帕克、M. B. 卡尔和R. P. 豪辛格,《美国国家科学院院刊》91:3233 - 3237,1994年)。在本研究中,我们描述了辅助基因缺失对脲酶复合物形成的影响。发现UreE、UreF和UreG基因产物对于UreD - 脲酶复合物的形成并非必需;然而,来自ureF缺失突变体的复合物在尺寸排阻色谱中表现出洗脱延迟。由于根据天然凝胶电泳分析,这些最后的复合物具有典型的UreD - 脲酶大小,我们提出UreF改变了UreD - 脲酶复合物的构象。同样的研究揭示了仅在含有ureD、ureF和ureG以及脲酶亚基基因的细胞中存在另一系列脲酶脱辅基蛋白复合物。这些新复合物被证明含有脲酶、UreD、UreF和UreG。我们提出UreD - UreF - UreG - 脲酶脱辅基蛋白复合物代表细胞中脲酶脱辅基蛋白的激活活性形式。

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