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2
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本文引用的文献

1
Three-dimensional structure of AmpC beta-lactamase from Escherichia coli bound to a transition-state analogue: possible implications for the oxyanion hypothesis and for inhibitor design.与过渡态类似物结合的大肠杆菌AmpCβ-内酰胺酶的三维结构:对氧负离子假说及抑制剂设计的潜在意义
Biochemistry. 1998 Nov 17;37(46):16082-92. doi: 10.1021/bi981210f.
2
Structure-based enhancement of boronic acid-based inhibitors of AmpC beta-lactamase.基于结构增强AmpCβ-内酰胺酶的硼酸类抑制剂
J Med Chem. 1998 Nov 5;41(23):4577-86. doi: 10.1021/jm980343w.
3
An extended-spectrum AmpC-type beta-lactamase obtained by in vitro antibiotic selection.通过体外抗生素筛选获得的超广谱AmpC型β-内酰胺酶。
FEMS Microbiol Lett. 1998 Aug 1;165(1):85-90. doi: 10.1111/j.1574-6968.1998.tb13131.x.
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Kinship and diversification of bacterial penicillin-binding proteins and beta-lactamases.细菌青霉素结合蛋白和β-内酰胺酶的亲缘关系与多样性
Antimicrob Agents Chemother. 1998 Jan;42(1):1-17. doi: 10.1128/AAC.42.1.1.
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An extensively modified version of MolScript that includes greatly enhanced coloring capabilities.MolScript的一个经过广泛修改的版本,其具有大大增强的着色功能。
J Mol Graph Model. 1997 Apr;15(2):132-4, 112-3. doi: 10.1016/S1093-3263(97)00021-1.
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Mechanism of suppression of piperacillin resistance in enterobacteria by tazobactam.他唑巴坦抑制肠杆菌属细菌对哌拉西林耐药性的机制。
Antimicrob Agents Chemother. 1997 Oct;41(10):2177-83. doi: 10.1128/AAC.41.10.2177.
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Penicillin-binding proteins and induction of AmpC beta-lactamase.青霉素结合蛋白与AmpCβ-内酰胺酶的诱导
Antimicrob Agents Chemother. 1997 Sep;41(9):2013-5. doi: 10.1128/AAC.41.9.2013.
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A plasmid-mediated CMY-2 beta-lactamase from an Algerian clinical isolate of Salmonella senftenberg.一株来自阿尔及利亚肠炎沙门氏菌临床分离株的质粒介导CMY-2β-内酰胺酶
FEMS Microbiol Lett. 1997 Jul 15;152(2):255-60. doi: 10.1111/j.1574-6968.1997.tb10436.x.
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The evolution of beta-lactamases.β-内酰胺酶的进化
Ciba Found Symp. 1997;207:152-63; discussion 163-6.
10
Cytosolic intermediates for cell wall biosynthesis and degradation control inducible beta-lactam resistance in gram-negative bacteria.细胞壁生物合成和降解的胞质中间体控制革兰氏阴性菌的诱导型β-内酰胺耐药性。
Cell. 1997 Mar 21;88(6):823-32. doi: 10.1016/s0092-8674(00)81928-5.

AmpC β-内酰胺酶非β-内酰胺抑制剂的复合结构及抗菌活性

The complexed structure and antimicrobial activity of a non-beta-lactam inhibitor of AmpC beta-lactamase.

作者信息

Powers R A, Blázquez J, Weston G S, Morosini M I, Baquero F, Shoichet B K

机构信息

Department of Molecular Pharmacology and Biological Chemistry, Northwestern University Medical School, Chicago, Illinois 60611-3008, USA.

出版信息

Protein Sci. 1999 Nov;8(11):2330-7. doi: 10.1110/ps.8.11.2330.

DOI:10.1110/ps.8.11.2330
PMID:10595535
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC2144209/
Abstract

Beta-lactamases are the major resistance mechanism to beta-lactam antibiotics and pose a growing threat to public health. Recently, bacteria have become resistant to beta-lactamase inhibitors, making this problem pressing. In an effort to overcome this resistance, non-beta-lactam inhibitors of beta-lactamases were investigated for complementarity to the structure of AmpC beta-lactamase from Escherichia coli. This led to the discovery of an inhibitor, benzo(b)thiophene-2-boronic acid (BZBTH2B), which inhibited AmpC with a Ki of 27 nM. This inhibitor is chemically dissimilar to beta-lactams, raising the question of what specific interactions are responsible for its activity. To answer this question, the X-ray crystallographic structure of BZBTH2B in complex with AmpC was determined to 2.25 A resolution. The structure reveals several unexpected interactions. The inhibitor appears to complement the conserved, R1-amide binding region of AmpC, despite lacking an amide group. Interactions between one of the boronic acid oxygen atoms, Tyr150, and an ordered water molecule suggest a mechanism for acid/base catalysis and a direction for hydrolytic attack in the enzyme catalyzed reaction. To investigate how a non-beta-lactam inhibitor would perform against resistant bacteria, BZBTH2B was tested in antimicrobial assays. BZBTH2B significantly potentiated the activity of a third-generation cephalosporin against AmpC-producing resistant bacteria. This inhibitor was unaffected by two common resistance mechanisms that often arise against beta-lactams in conjunction with beta-lactamases. Porin channel mutations did not decrease the efficacy of BZBTH2B against cells expressing AmpC. Also, this inhibitor did not induce expression of AmpC, a problem with many beta-lactams. The structure of the BZBTH2B/AmpC complex provides a starting point for the structure-based elaboration of this class of non-beta-lactam inhibitors.

摘要

β-内酰胺酶是对β-内酰胺类抗生素产生耐药性的主要机制,对公众健康构成日益严重的威胁。近来,细菌已对β-内酰胺酶抑制剂产生耐药性,使这一问题变得紧迫。为努力克服这种耐药性,研究了β-内酰胺酶的非β-内酰胺抑制剂,以寻找与大肠杆菌AmpCβ-内酰胺酶结构互补的物质。这导致发现了一种抑制剂,苯并(b)噻吩-2-硼酸(BZBTH2B),它对AmpC的抑制常数Ki为27 nM。这种抑制剂在化学结构上与β-内酰胺不同,这就引发了一个问题,即其活性是由哪些特定相互作用导致的。为回答这个问题,测定了BZBTH2B与AmpC复合物的X射线晶体结构,分辨率为2.25 Å。该结构揭示了几种意想不到的相互作用。尽管该抑制剂缺乏酰胺基团,但它似乎与AmpC保守的R1-酰胺结合区域互补。硼酸的一个氧原子、Tyr150与一个有序水分子之间的相互作用提示了酸/碱催化机制以及酶催化反应中水解攻击的方向。为研究一种非β-内酰胺抑制剂对耐药菌的作用效果,在抗菌试验中对BZBTH2B进行了测试。BZBTH2B显著增强了第三代头孢菌素对产AmpC耐药菌的活性。这种抑制剂不受通常与β-内酰胺酶一起出现的两种常见耐药机制的影响。孔蛋白通道突变并未降低BZBTH2B对表达AmpC的细胞的疗效。此外,这种抑制剂不会诱导AmpC的表达,而许多β-内酰胺类药物存在这个问题。BZBTH2B/AmpC复合物的结构为基于结构对这类非β-内酰胺抑制剂进行优化提供了一个起点。