Literature DB >> 21637961

A structural view of the antibiotic degradation enzyme NDM-1 from a superbug.

Yu Guo1, Jing Wang, Guojun Niu, Wenqing Shui, Yuna Sun, Honggang Zhou, Yaozhou Zhang, Cheng Yang, Zhiyong Lou, Zihe Rao.   

Abstract

Gram-negative Enterobacteriaceae with resistance to carbapenem conferred by New Delhi metallo-β-lactamase 1 (NDM-1) are a type of newly discovered antibioticresistant bacteria. The rapid pandemic spread of NDM-1 bacteria worldwide (spreading to India, Pakistan, Europe, America, and Chinese Taiwan) in less than 2 months characterizes these microbes as a potentially major global health problem. The drug resistance of NDM-1 bacteria is largely due to plasmids containing the blaNDM-1 gene shuttling through bacterial populations. The NDM-1 enzyme encoded by the blaNDM-1 gene hydrolyzes β-lactam antibiotics, allowing the bacteria to escape the action of antibiotics. Although the biological functions and structural features of NDM-1 have been proposed according to results from functional and structural investigation of its homologues, the precise molecular characteristics and mechanism of action of NDM-1 have not been clarified. Here, we report the three-dimensional structure of NDM-1 with two catalytic zinc ions in its active site. Biological and mass spectroscopy results revealed that D-captopril can effectively inhibit the enzymatic activity of NDM-1 by binding to its active site with high binding affinity. The unique features concerning the primary sequence and structural conformation of the active site distinguish NDM-1 from other reported metallo-β-lactamases (MBLs) and implicate its role in wide spectrum drug resistance. We also discuss the molecular mechanism of NDM-1 action and its essential role in the pandemic of drug-resistant NDM-1 bacteria. Our results will provide helpful information for future drug discovery targeting drug resistance caused by NDM-1 and related metallo-β-lactamases.

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Year:  2011        PMID: 21637961      PMCID: PMC4875342          DOI: 10.1007/s13238-011-1055-9

Source DB:  PubMed          Journal:  Protein Cell        ISSN: 1674-800X            Impact factor:   14.870


  30 in total

Review 1.  Plasmid-encoded AmpC beta-lactamases: how far have we gone 10 years after the discovery?

Authors:  A Bauernfeind; Y Chong; K Lee
Journal:  Yonsei Med J       Date:  1998-12       Impact factor: 2.759

Review 2.  Expansion of the zinc metallo-hydrolase family of the beta-lactamase fold.

Authors:  H Daiyasu; K Osaka; Y Ishino; H Toh
Journal:  FEBS Lett       Date:  2001-08-10       Impact factor: 4.124

3.  Analysis of the importance of the metallo-beta-lactamase active site loop in substrate binding and catalysis.

Authors:  Catherine Moali; Christine Anne; Josette Lamotte-Brasseur; Sylvie Groslambert; Bart Devreese; Jozef Van Beeumen; Moreno Galleni; Jean Marie Frère
Journal:  Chem Biol       Date:  2003-04

4.  New Delhi metallo-beta-lactamase 1-producing Enterobacteriaceae: emergence and response in Europe.

Authors:  M J Struelens; D L Monnet; A P Magiorakos; F Santos O'Connor; J Giesecke
Journal:  Euro Surveill       Date:  2010-11-18

Review 5.  Emerging carbapenemases: a global perspective.

Authors:  Timothy R Walsh
Journal:  Int J Antimicrob Agents       Date:  2010-11       Impact factor: 5.283

6.  The need for new antibiotics.

Authors:  Frank Baiden; Seth Owusu-Agyei; Jayne Webster; Daniel Chandramohan
Journal:  Lancet       Date:  2010-02-20       Impact factor: 79.321

7.  The three-dimensional structure of VIM-2, a Zn-beta-lactamase from Pseudomonas aeruginosa in its reduced and oxidised form.

Authors:  I Garcia-Saez; J-D Docquier; G M Rossolini; O Dideberg
Journal:  J Mol Biol       Date:  2007-11-13       Impact factor: 5.469

8.  Binding of D- and L-captopril inhibitors to metallo-beta-lactamase studied by polarizable molecular mechanics and quantum mechanics.

Authors:  Jens Antony; Nohad Gresh; Lars Olsen; Lars Hemmingsen; Christopher J Schofield; Rogert Bauer
Journal:  J Comput Chem       Date:  2002-10       Impact factor: 3.376

9.  The 3-D structure of a zinc metallo-beta-lactamase from Bacillus cereus reveals a new type of protein fold.

Authors:  A Carfi; S Pares; E Duée; M Galleni; C Duez; J M Frère; O Dideberg
Journal:  EMBO J       Date:  1995-10-16       Impact factor: 11.598

10.  Phaser crystallographic software.

Authors:  Airlie J McCoy; Ralf W Grosse-Kunstleve; Paul D Adams; Martyn D Winn; Laurent C Storoni; Randy J Read
Journal:  J Appl Crystallogr       Date:  2007-07-13       Impact factor: 3.304

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  54 in total

1.  Dipicolinic Acid Derivatives as Inhibitors of New Delhi Metallo-β-lactamase-1.

Authors:  Allie Y Chen; Pei W Thomas; Alesha C Stewart; Alexander Bergstrom; Zishuo Cheng; Callie Miller; Christopher R Bethel; Steven H Marshall; Cy V Credille; Christopher L Riley; Richard C Page; Robert A Bonomo; Michael W Crowder; David L Tierney; Walter Fast; Seth M Cohen
Journal:  J Med Chem       Date:  2017-08-30       Impact factor: 7.446

2.  A Kinetic Study of the Replacement by Site Saturation Mutagenesis of Residue 119 in NDM-1 Metallo-β-Lactamase.

Authors:  Francesca Marcoccia; Paola Sandra Mercuri; Moreno Galleni; Giuseppe Celenza; Gianfranco Amicosante; Mariagrazia Perilli
Journal:  Antimicrob Agents Chemother       Date:  2018-07-27       Impact factor: 5.191

3.  Crystal structures reveal metal-binding plasticity at the metallo-β-lactamase active site of PqqB from Pseudomonas putida.

Authors:  Xiongying Tu; John A Latham; Valerie J Klema; Robert L Evans; Chao Li; Judith P Klinman; Carrie M Wilmot
Journal:  J Biol Inorg Chem       Date:  2017-08-19       Impact factor: 3.358

4.  Suppression of β-Lactam Resistance by Aspergillomarasmine A Is Influenced by both the Metallo-β-Lactamase Target and the Antibiotic Partner.

Authors:  Caitlyn M Rotondo; David Sychantha; Kalinka Koteva; Gerard D Wright
Journal:  Antimicrob Agents Chemother       Date:  2020-03-24       Impact factor: 5.191

5.  A Lysine-Targeted Affinity Label for Serine-β-Lactamase Also Covalently Modifies New Delhi Metallo-β-lactamase-1 (NDM-1).

Authors:  Pei W Thomas; Michael Cammarata; Jennifer S Brodbelt; Arthur F Monzingo; R F Pratt; Walter Fast
Journal:  Biochemistry       Date:  2019-06-07       Impact factor: 3.162

6.  A potential substrate binding conformation of β-lactams and insight into the broad spectrum of NDM-1 activity.

Authors:  Qinghui Yuan; Lin He; Hengming Ke
Journal:  Antimicrob Agents Chemother       Date:  2012-07-23       Impact factor: 5.191

7.  Pterostilbene restores carbapenem susceptibility in New Delhi metallo-β-lactamase-producing isolates by inhibiting the activity of New Delhi metallo-β-lactamases.

Authors:  Shui Liu; Jian Zhang; Yonglin Zhou; Naiyu Hu; Jiyun Li; Yang Wang; Xiaodi Niu; Xuming Deng; Jianfeng Wang
Journal:  Br J Pharmacol       Date:  2019-12-09       Impact factor: 8.739

8.  A quantum mechanics/molecular mechanics study on the hydrolysis mechanism of New Delhi metallo-β-lactamase-1.

Authors:  Kongkai Zhu; Junyan Lu; Zhongjie Liang; Xiangqian Kong; Fei Ye; Lu Jin; Heji Geng; Yong Chen; Mingyue Zheng; Hualiang Jiang; Jun-Qian Li; Cheng Luo
Journal:  J Comput Aided Mol Des       Date:  2013-03-02       Impact factor: 3.686

9.  Bisthiazolidines: A Substrate-Mimicking Scaffold as an Inhibitor of the NDM-1 Carbapenemase.

Authors:  Mariano M González; Magda Kosmopoulou; Maria F Mojica; Valerie Castillo; Philip Hinchliffe; Ilaria Pettinati; Jürgen Brem; Christopher J Schofield; Graciela Mahler; Robert A Bonomo; Leticia I Llarrull; James Spencer; Alejandro J Vila
Journal:  ACS Infect Dis       Date:  2015-07-20       Impact factor: 5.084

10.  An altered zinc-binding site confers resistance to a covalent inactivator of New Delhi metallo-beta-lactamase-1 (NDM-1) discovered by high-throughput screening.

Authors:  Pei W Thomas; Timothy Spicer; Michael Cammarata; Jennifer S Brodbelt; Peter Hodder; Walter Fast
Journal:  Bioorg Med Chem       Date:  2013-03-29       Impact factor: 3.641

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