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土曲霉中杀稻瘟菌素S脱氨酶(BSD)的表达、纯化及特性:催化锌在酶结构中的作用

Expression, purification, and characterization of blasticidin S deaminase (BSD) from Aspergillus terreus: the role of catalytic zinc in enzyme structure.

作者信息

Kimura M, Sekido S, Isogai Y, Yamaguchi I

机构信息

Microbial Toxicology Laboratory and Biodesign Research Group, RIKEN (The Institute of Physical and Chemical Research), Hirosawa, Wako, Saitama 351-0198, Japan.

出版信息

J Biochem. 2000 Jun;127(6):955-63. doi: 10.1093/oxfordjournals.jbchem.a022711.

Abstract

We established an efficient overproduction-purification system for blasticidin S deaminase (BSD) using the cDNA cloned from Aspergillus terreus. The estimated molecular mass of the purified enzyme indicated BSD was a tetramer. This tetrameric form was very resistant to denaturation by SDS and showed heat-modifiable behavior on SDS-PAGE; i.e., BSD migrated much slower (as a single band of 36 kDa) in its active conformation than its completely denatured polypeptide (13 kDa) if heat treatment in 2% SDS was not performed before electrophoresis. As predicted from the presence of the catalytic zinc-coordinating sequence motif conserved in the cytosine nucleoside/nucleotide deaminase family, BSD also contained one zinc per deaminase subunit. However, the predicted catalytic function appeared not to be the only role of this zinc in the enzyme. First, titration of the zinc-chelating -SH groups with p-hydroxymercuriphenylsulfonate led to dissociation of the BSD tetramer into unstable monomers or dimers. Second, depletion of zinc on reconstitution of chemically denatured BSD (with either guanidine-HCl or acidic pH) resulted in improper folding of the polypeptide. These results suggest that zinc also plays a structural role in maintenance of the protein structure. When we introduced mutations at Glu-56 (the proposed active site) and Cys-91 (a proposed catalytic zinc-binding Cys) in BSD, none of the resulting mutants (E56D, E56Q, C91A, C91S, and C91H) showed any detectable activity, as judged with the spectrophotometric assay. Replacements of Cys-91 resulted in gross perturbation of the enzyme structure although the catalytically essential Glu-56 was not necessarily required for proper folding of the enzyme. These results further support our proposal that the catalytic zinc coordinated by the conserved sequence motif is also structural in BSD.

摘要

我们利用从土曲霉克隆的cDNA,建立了一种高效的杀稻瘟菌素S脱氨酶(BSD)过量生产-纯化系统。纯化酶的估计分子量表明BSD是一种四聚体。这种四聚体形式对SDS变性具有很强的抗性,并且在SDS-PAGE上表现出热可修饰行为;即,如果在电泳前未在2% SDS中进行热处理,BSD在其活性构象下迁移速度比其完全变性的多肽(13 kDa)慢得多(作为一条36 kDa的单带)。正如从胞嘧啶核苷/核苷酸脱氨酶家族中保守的催化锌配位序列基序的存在所预测的那样,BSD每个脱氨酶亚基也含有一个锌。然而,预测的催化功能似乎不是该锌在酶中的唯一作用。首先,用对羟基汞苯磺酸盐滴定锌螯合的-SH基团导致BSD四聚体解离成不稳定的单体或二聚体。其次,在化学变性BSD(用盐酸胍或酸性pH)重构时锌的耗尽导致多肽折叠不正确。这些结果表明锌在维持蛋白质结构方面也起结构作用。当我们在BSD的Glu-56(假定的活性位点)和Cys-91(假定的催化锌结合Cys)处引入突变时,通过分光光度法测定,所得突变体(E56D、E56Q、C91A、C91S和C91H)均未显示出任何可检测到的活性。Cys-91的替换导致酶结构的严重扰动,尽管催化必需的Glu-56不一定是酶正确折叠所必需的。这些结果进一步支持了我们的提议,即由保守序列基序配位的催化锌在BSD中也具有结构作用。

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