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Structural and functional insights into a novel two-component endolysin encoded by a single gene in Enterococcus faecalis phage

Using bacteriophage-derived endolysins as an alternative strategy for fighting drug-resistant bacteria has recently been garnering renewed interest. However, their application is still hindered by their narrow spectra of activity. In our previous work, we demonstrated that the endolysin LysIME-EF1 p...

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Autores principales: Zhou, Biao, Zhen, Xiangkai, Zhou, Huan, Zhao, Feiyang, Fan, Chenpeng, Perčulija, Vanja, Tong, Yigang, Mi, Zhiqiang, Ouyang, Songying
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7098653/
https://www.ncbi.nlm.nih.gov/pubmed/32176738
http://dx.doi.org/10.1371/journal.ppat.1008394
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author Zhou, Biao
Zhen, Xiangkai
Zhou, Huan
Zhao, Feiyang
Fan, Chenpeng
Perčulija, Vanja
Tong, Yigang
Mi, Zhiqiang
Ouyang, Songying
author_facet Zhou, Biao
Zhen, Xiangkai
Zhou, Huan
Zhao, Feiyang
Fan, Chenpeng
Perčulija, Vanja
Tong, Yigang
Mi, Zhiqiang
Ouyang, Songying
author_sort Zhou, Biao
collection PubMed
description Using bacteriophage-derived endolysins as an alternative strategy for fighting drug-resistant bacteria has recently been garnering renewed interest. However, their application is still hindered by their narrow spectra of activity. In our previous work, we demonstrated that the endolysin LysIME-EF1 possesses efficient bactericidal activity against multiple strains of Enterococcus faecalis (E. faecalis). Herein, we observed an 8 kDa fragment and hypothesized that it contributes to LysIME-EF1 lytic activity. To examine our hypothesis, we determined the structure of LysIME-EF1 at 1.75 Å resolution. LysIME-EF1 exhibits a unique architecture in which one full-length LysIME-EF1 forms a tetramer with three additional C-terminal cell-wall binding domains (CBDs) that correspond to the abovementioned 8 kDa fragment. Furthermore, we identified an internal ribosomal binding site (RBS) and alternative start codon within LysIME-EF1 gene, which are demonstrated to be responsible for the translation of the truncated CBD. To elucidate the molecular mechanism for the lytic activity of LysIME-EF1, we combined mutagenesis, lytic activity assays and in vivo animal infection experiments. The results confirmed that the additional LysIME-EF1 CBDs are important for LysIME-EF1 architecture and its lytic activity. To our knowledge, this is the first determined structure of multimeric endolysin encoded by a single gene in E. faecalis phages. As such, it may provide valuable insights into designing potent endolysins against the opportunistic pathogen E. faecalis.
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spelling pubmed-70986532020-04-03 Structural and functional insights into a novel two-component endolysin encoded by a single gene in Enterococcus faecalis phage Zhou, Biao Zhen, Xiangkai Zhou, Huan Zhao, Feiyang Fan, Chenpeng Perčulija, Vanja Tong, Yigang Mi, Zhiqiang Ouyang, Songying PLoS Pathog Research Article Using bacteriophage-derived endolysins as an alternative strategy for fighting drug-resistant bacteria has recently been garnering renewed interest. However, their application is still hindered by their narrow spectra of activity. In our previous work, we demonstrated that the endolysin LysIME-EF1 possesses efficient bactericidal activity against multiple strains of Enterococcus faecalis (E. faecalis). Herein, we observed an 8 kDa fragment and hypothesized that it contributes to LysIME-EF1 lytic activity. To examine our hypothesis, we determined the structure of LysIME-EF1 at 1.75 Å resolution. LysIME-EF1 exhibits a unique architecture in which one full-length LysIME-EF1 forms a tetramer with three additional C-terminal cell-wall binding domains (CBDs) that correspond to the abovementioned 8 kDa fragment. Furthermore, we identified an internal ribosomal binding site (RBS) and alternative start codon within LysIME-EF1 gene, which are demonstrated to be responsible for the translation of the truncated CBD. To elucidate the molecular mechanism for the lytic activity of LysIME-EF1, we combined mutagenesis, lytic activity assays and in vivo animal infection experiments. The results confirmed that the additional LysIME-EF1 CBDs are important for LysIME-EF1 architecture and its lytic activity. To our knowledge, this is the first determined structure of multimeric endolysin encoded by a single gene in E. faecalis phages. As such, it may provide valuable insights into designing potent endolysins against the opportunistic pathogen E. faecalis. Public Library of Science 2020-03-16 /pmc/articles/PMC7098653/ /pubmed/32176738 http://dx.doi.org/10.1371/journal.ppat.1008394 Text en © 2020 Zhou 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 (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Zhou, Biao
Zhen, Xiangkai
Zhou, Huan
Zhao, Feiyang
Fan, Chenpeng
Perčulija, Vanja
Tong, Yigang
Mi, Zhiqiang
Ouyang, Songying
Structural and functional insights into a novel two-component endolysin encoded by a single gene in Enterococcus faecalis phage
title Structural and functional insights into a novel two-component endolysin encoded by a single gene in Enterococcus faecalis phage
title_full Structural and functional insights into a novel two-component endolysin encoded by a single gene in Enterococcus faecalis phage
title_fullStr Structural and functional insights into a novel two-component endolysin encoded by a single gene in Enterococcus faecalis phage
title_full_unstemmed Structural and functional insights into a novel two-component endolysin encoded by a single gene in Enterococcus faecalis phage
title_short Structural and functional insights into a novel two-component endolysin encoded by a single gene in Enterococcus faecalis phage
title_sort structural and functional insights into a novel two-component endolysin encoded by a single gene in enterococcus faecalis phage
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7098653/
https://www.ncbi.nlm.nih.gov/pubmed/32176738
http://dx.doi.org/10.1371/journal.ppat.1008394
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