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Molecular Basis of NDM-1, a New Antibiotic Resistance Determinant

The New Delhi Metallo-β-lactamase (NDM-1) was first reported in 2009 in a Swedish patient. A recent study reported that Klebsiella pneumonia NDM-1 positive strain or Escherichia coli NDM-1 positive strain was highly resistant to all antibiotics tested except tigecycline and colistin. These can no lo...

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Autores principales: Liang, Zhongjie, Li, Lianchun, Wang, Yuanyuan, Chen, Limin, Kong, Xiangqian, Hong, Yao, Lan, Lefu, Zheng, Mingyue, Guang-Yang, Cai, Liu, Hong, Shen, Xu, Luo, Cheng, Li, Keqin Kathy, Chen, Kaixian, Jiang, Hualiang
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2011
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3161043/
https://www.ncbi.nlm.nih.gov/pubmed/21887283
http://dx.doi.org/10.1371/journal.pone.0023606
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author Liang, Zhongjie
Li, Lianchun
Wang, Yuanyuan
Chen, Limin
Kong, Xiangqian
Hong, Yao
Lan, Lefu
Zheng, Mingyue
Guang-Yang, Cai
Liu, Hong
Shen, Xu
Luo, Cheng
Li, Keqin Kathy
Chen, Kaixian
Jiang, Hualiang
author_facet Liang, Zhongjie
Li, Lianchun
Wang, Yuanyuan
Chen, Limin
Kong, Xiangqian
Hong, Yao
Lan, Lefu
Zheng, Mingyue
Guang-Yang, Cai
Liu, Hong
Shen, Xu
Luo, Cheng
Li, Keqin Kathy
Chen, Kaixian
Jiang, Hualiang
author_sort Liang, Zhongjie
collection PubMed
description The New Delhi Metallo-β-lactamase (NDM-1) was first reported in 2009 in a Swedish patient. A recent study reported that Klebsiella pneumonia NDM-1 positive strain or Escherichia coli NDM-1 positive strain was highly resistant to all antibiotics tested except tigecycline and colistin. These can no longer be relied on to treat infections and therefore, NDM-1 now becomes potentially a major global health threat. In this study, we performed modeling studies to obtain its 3D structure and NDM-1/antibiotics complex. It revealed that the hydrolytic mechanisms are highly conserved. In addition, the detailed analysis indicates that the more flexible and hydrophobic loop1, together with the evolution of more positive-charged loop2 leads to NDM-1 positive strain more potent and extensive in antibiotics resistance compared with other MBLs. Furthermore, through biological experiments, we revealed the molecular basis for antibiotics catalysis of NDM-1 on the enzymatic level. We found that NDM-1 enzyme was highly potent to degrade carbapenem antibiotics, while mostly susceptible to tigecycline, which had the ability to slow down the hydrolysis velocity of meropenem by NDM-1. Meanwhile, the mutagenesis experiments, including D124A, C208A, K211A and K211E, which displayed down-regulation on meropenem catalysis, proved the accuracy of our model. At present, there are no effective antibiotics against NDM-1 positive pathogen. Our study will provide clues to investigate the molecular basis of extended antibiotics resistance of NDM-1 and then accelerate the search for new antibiotics against NDM-1 positive strain in clinical studies.
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spelling pubmed-31610432011-09-01 Molecular Basis of NDM-1, a New Antibiotic Resistance Determinant Liang, Zhongjie Li, Lianchun Wang, Yuanyuan Chen, Limin Kong, Xiangqian Hong, Yao Lan, Lefu Zheng, Mingyue Guang-Yang, Cai Liu, Hong Shen, Xu Luo, Cheng Li, Keqin Kathy Chen, Kaixian Jiang, Hualiang PLoS One Research Article The New Delhi Metallo-β-lactamase (NDM-1) was first reported in 2009 in a Swedish patient. A recent study reported that Klebsiella pneumonia NDM-1 positive strain or Escherichia coli NDM-1 positive strain was highly resistant to all antibiotics tested except tigecycline and colistin. These can no longer be relied on to treat infections and therefore, NDM-1 now becomes potentially a major global health threat. In this study, we performed modeling studies to obtain its 3D structure and NDM-1/antibiotics complex. It revealed that the hydrolytic mechanisms are highly conserved. In addition, the detailed analysis indicates that the more flexible and hydrophobic loop1, together with the evolution of more positive-charged loop2 leads to NDM-1 positive strain more potent and extensive in antibiotics resistance compared with other MBLs. Furthermore, through biological experiments, we revealed the molecular basis for antibiotics catalysis of NDM-1 on the enzymatic level. We found that NDM-1 enzyme was highly potent to degrade carbapenem antibiotics, while mostly susceptible to tigecycline, which had the ability to slow down the hydrolysis velocity of meropenem by NDM-1. Meanwhile, the mutagenesis experiments, including D124A, C208A, K211A and K211E, which displayed down-regulation on meropenem catalysis, proved the accuracy of our model. At present, there are no effective antibiotics against NDM-1 positive pathogen. Our study will provide clues to investigate the molecular basis of extended antibiotics resistance of NDM-1 and then accelerate the search for new antibiotics against NDM-1 positive strain in clinical studies. Public Library of Science 2011-08-24 /pmc/articles/PMC3161043/ /pubmed/21887283 http://dx.doi.org/10.1371/journal.pone.0023606 Text en Liang et al. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Liang, Zhongjie
Li, Lianchun
Wang, Yuanyuan
Chen, Limin
Kong, Xiangqian
Hong, Yao
Lan, Lefu
Zheng, Mingyue
Guang-Yang, Cai
Liu, Hong
Shen, Xu
Luo, Cheng
Li, Keqin Kathy
Chen, Kaixian
Jiang, Hualiang
Molecular Basis of NDM-1, a New Antibiotic Resistance Determinant
title Molecular Basis of NDM-1, a New Antibiotic Resistance Determinant
title_full Molecular Basis of NDM-1, a New Antibiotic Resistance Determinant
title_fullStr Molecular Basis of NDM-1, a New Antibiotic Resistance Determinant
title_full_unstemmed Molecular Basis of NDM-1, a New Antibiotic Resistance Determinant
title_short Molecular Basis of NDM-1, a New Antibiotic Resistance Determinant
title_sort molecular basis of ndm-1, a new antibiotic resistance determinant
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3161043/
https://www.ncbi.nlm.nih.gov/pubmed/21887283
http://dx.doi.org/10.1371/journal.pone.0023606
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