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2
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beta-Lactamase proceeds via an acyl-enzyme intermediate. Interaction of the Escherichia coli RTEM enzyme with cefoxitin.β-内酰胺酶通过酰基酶中间体起作用。大肠杆菌RTEM酶与头孢西丁的相互作用。
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Transferable resistance to cefotaxime, cefoxitin, cefamandole and cefuroxime in clinical isolates of Klebsiella pneumoniae and Serratia marcescens.肺炎克雷伯菌和粘质沙雷氏菌临床分离株对头孢噻肟、头孢西丁、头孢孟多和头孢呋辛的可转移性耐药性。
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Active site of staphylococcal beta-lactamase.葡萄球菌β-内酰胺酶的活性位点。
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Beta-lactamases.β-内酰胺酶
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Penicillinase synthesis controlled by infectious R factors in Enterobacteriaceae.肠杆菌科中由传染性R因子控制的青霉素酶合成
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Mechanism of action of penicillins: a proposal based on their structural similarity to acyl-D-alanyl-D-alanine.青霉素的作用机制:基于其与酰基-D-丙氨酰-D-丙氨酸结构相似性的一种假说
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Evolution of plasmid-coded resistance to broad-spectrum cephalosporins.质粒编码的对广谱头孢菌素耐药性的演变。
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10
Frequency of plasmid-determined beta-lactamases in 680 consecutively isolated strains of Enterobacteriaceae.680株连续分离的肠杆菌科细菌中质粒介导的β-内酰胺酶的频率
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鉴定改变TEM-1β-内酰胺酶底物特异性的氨基酸取代。

Identification of amino acid substitutions that alter the substrate specificity of TEM-1 beta-lactamase.

作者信息

Palzkill T, Botstein D

机构信息

Department of Genetics, School of Medicine, Stanford University, California 94305.

出版信息

J Bacteriol. 1992 Aug;174(16):5237-43. doi: 10.1128/jb.174.16.5237-5243.1992.

DOI:10.1128/jb.174.16.5237-5243.1992
PMID:1644749
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC206357/
Abstract

TEM-1 beta-lactamase is the most prevalent plasmid-mediated beta-lactamase in gram-negative bacteria. Recently, TEM beta-lactamase variants with amino acid substitutions in the active-site pocket of the enzyme have been identified in natural isolates with increased resistance to extended-spectrum cephalosporins. To identify other amino acid substitutions that alter the activity of TEM-1 towards extended-spectrum cephalosporins, we probed regions around the active-site pocket by random-replacement mutagenesis. This mutagenesis technique involves randomizing the DNA sequence of three to six codons in the blaTEM-1 gene to form a library containing all or nearly all of the possible substitutions for the region randomized. In total, 20 different residue positions that had been randomized were screened for amino acid substitutions that increased enzyme activity towards the extended-spectrum cephalosporin cefotaxime. Substitutions at positions 104, 168, and 238 in the TEM-1 beta-lactamase that resulted in increased enzyme activity towards extended-spectrum cephalosporins were found. In addition, small deletions in the loop containing residues 166 to 170 drastically altered the substrate specificity of the enzyme by increasing activity towards extended-spectrum cephalosporins while virtually eliminating activity towards ampicillin.

摘要

TEM-1β-内酰胺酶是革兰氏阴性菌中最常见的质粒介导的β-内酰胺酶。最近,在对超广谱头孢菌素耐药性增强的天然分离株中,已鉴定出在该酶活性位点口袋中有氨基酸替换的TEMβ-内酰胺酶变体。为了确定其他改变TEM-1对超广谱头孢菌素活性的氨基酸替换,我们通过随机替换诱变探测了活性位点口袋周围的区域。这种诱变技术涉及将blaTEM-1基因中三到六个密码子的DNA序列随机化,以形成一个文库,该文库包含随机化区域的所有或几乎所有可能的替换。总共筛选了20个已随机化的不同残基位置,以寻找增加对超广谱头孢菌素头孢噻肟酶活性的氨基酸替换。在TEM-1β-内酰胺酶的104、168和238位发现了导致对超广谱头孢菌素酶活性增加的替换。此外,包含166至170位残基的环中的小缺失通过增加对超广谱头孢菌素的活性,同时几乎消除对氨苄西林的活性,极大地改变了该酶的底物特异性。