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The Structure and Function of Biomaterial Endolysin EFm1 from E. faecalis Phage

The endolysin EFm1 from the E. faecalis 002 (002) phage IME-EF1 efficiently lyses E. faecalis, a gram-positive bacterium that severely threatens human health. Here, the structure and lytic activity of EFm1 toward E. faecalis were further investigated. Lytic activity shows that EFm1 specifically lyse...

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Autores principales: Zhou, Xuerong, Zeng, Xiaotao, Wang, Li, Zheng, Yanhui, Zhang, Guixiang, Cheng, Wei
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9316690/
https://www.ncbi.nlm.nih.gov/pubmed/35888345
http://dx.doi.org/10.3390/ma15144879
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author Zhou, Xuerong
Zeng, Xiaotao
Wang, Li
Zheng, Yanhui
Zhang, Guixiang
Cheng, Wei
author_facet Zhou, Xuerong
Zeng, Xiaotao
Wang, Li
Zheng, Yanhui
Zhang, Guixiang
Cheng, Wei
author_sort Zhou, Xuerong
collection PubMed
description The endolysin EFm1 from the E. faecalis 002 (002) phage IME-EF1 efficiently lyses E. faecalis, a gram-positive bacterium that severely threatens human health. Here, the structure and lytic activity of EFm1 toward E. faecalis were further investigated. Lytic activity shows that EFm1 specifically lyses 002 and 22 other clinically isolated E. faecalis, but not E. faecalis 945. Therefore, EFm1 may be an alternative biomaterial to prevent and treat diseases caused by E. faecalis. A structural analysis showed that EFm1(D166Q) is a tetramer consisting of one full-length unit with additional C-terminal domains (CTDs), while EFm1(166–237 aa) is an octamer in an asymmetric unit. Several crucial domains and novel residues affecting the lytic activity of EFm1 were identified, including calcium-binding sites (D20, D22 and D31), a putative classic amidohydrolase catalytic triad (C29, H90 and D108), a tetramerization site (M168 and M227), putative ion channel sites (IGGK, 186–198 aa), and other residues (R208 and Y209). Furthermore, EFm1 exhibited no significant activity when expressed alone in vivo, and IME-EF1 lytic activity decreased when efm1 was knocked down. These findings provide valuable insights into the molecule mechanism of a potential functional biomaterial for the treatment of the disease caused by the opportunistic pathogen E. faecalis.
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spelling pubmed-93166902022-07-27 The Structure and Function of Biomaterial Endolysin EFm1 from E. faecalis Phage Zhou, Xuerong Zeng, Xiaotao Wang, Li Zheng, Yanhui Zhang, Guixiang Cheng, Wei Materials (Basel) Article The endolysin EFm1 from the E. faecalis 002 (002) phage IME-EF1 efficiently lyses E. faecalis, a gram-positive bacterium that severely threatens human health. Here, the structure and lytic activity of EFm1 toward E. faecalis were further investigated. Lytic activity shows that EFm1 specifically lyses 002 and 22 other clinically isolated E. faecalis, but not E. faecalis 945. Therefore, EFm1 may be an alternative biomaterial to prevent and treat diseases caused by E. faecalis. A structural analysis showed that EFm1(D166Q) is a tetramer consisting of one full-length unit with additional C-terminal domains (CTDs), while EFm1(166–237 aa) is an octamer in an asymmetric unit. Several crucial domains and novel residues affecting the lytic activity of EFm1 were identified, including calcium-binding sites (D20, D22 and D31), a putative classic amidohydrolase catalytic triad (C29, H90 and D108), a tetramerization site (M168 and M227), putative ion channel sites (IGGK, 186–198 aa), and other residues (R208 and Y209). Furthermore, EFm1 exhibited no significant activity when expressed alone in vivo, and IME-EF1 lytic activity decreased when efm1 was knocked down. These findings provide valuable insights into the molecule mechanism of a potential functional biomaterial for the treatment of the disease caused by the opportunistic pathogen E. faecalis. MDPI 2022-07-13 /pmc/articles/PMC9316690/ /pubmed/35888345 http://dx.doi.org/10.3390/ma15144879 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Zhou, Xuerong
Zeng, Xiaotao
Wang, Li
Zheng, Yanhui
Zhang, Guixiang
Cheng, Wei
The Structure and Function of Biomaterial Endolysin EFm1 from E. faecalis Phage
title The Structure and Function of Biomaterial Endolysin EFm1 from E. faecalis Phage
title_full The Structure and Function of Biomaterial Endolysin EFm1 from E. faecalis Phage
title_fullStr The Structure and Function of Biomaterial Endolysin EFm1 from E. faecalis Phage
title_full_unstemmed The Structure and Function of Biomaterial Endolysin EFm1 from E. faecalis Phage
title_short The Structure and Function of Biomaterial Endolysin EFm1 from E. faecalis Phage
title_sort structure and function of biomaterial endolysin efm1 from e. faecalis phage
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9316690/
https://www.ncbi.nlm.nih.gov/pubmed/35888345
http://dx.doi.org/10.3390/ma15144879
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