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Engineered Phage Endolysin Eliminates Gardnerella Biofilm without Damaging Beneficial Bacteria in Bacterial Vaginosis Ex Vivo

Bacterial vaginosis is characterized by an imbalance of the vaginal microbiome and a characteristic biofilm formed on the vaginal epithelium, which is initiated and dominated by Gardnerella bacteria, and is frequently refractory to antibiotic treatment. We investigated endolysins of the type 1,4-bet...

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Autores principales: Landlinger, Christine, Tisakova, Lenka, Oberbauer, Vera, Schwebs, Timo, Muhammad, Abbas, Latka, Agnieszka, Van Simaey, Leen, Vaneechoutte, Mario, Guschin, Alexander, Resch, Gregory, Swidsinski, Sonja, Swidsinski, Alexander, Corsini, Lorenzo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7830407/
https://www.ncbi.nlm.nih.gov/pubmed/33435575
http://dx.doi.org/10.3390/pathogens10010054
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author Landlinger, Christine
Tisakova, Lenka
Oberbauer, Vera
Schwebs, Timo
Muhammad, Abbas
Latka, Agnieszka
Van Simaey, Leen
Vaneechoutte, Mario
Guschin, Alexander
Resch, Gregory
Swidsinski, Sonja
Swidsinski, Alexander
Corsini, Lorenzo
author_facet Landlinger, Christine
Tisakova, Lenka
Oberbauer, Vera
Schwebs, Timo
Muhammad, Abbas
Latka, Agnieszka
Van Simaey, Leen
Vaneechoutte, Mario
Guschin, Alexander
Resch, Gregory
Swidsinski, Sonja
Swidsinski, Alexander
Corsini, Lorenzo
author_sort Landlinger, Christine
collection PubMed
description Bacterial vaginosis is characterized by an imbalance of the vaginal microbiome and a characteristic biofilm formed on the vaginal epithelium, which is initiated and dominated by Gardnerella bacteria, and is frequently refractory to antibiotic treatment. We investigated endolysins of the type 1,4-beta-N-acetylmuramidase encoded on Gardnerella prophages as an alternative treatment. When recombinantly expressed, these proteins demonstrated strong bactericidal activity against four different Gardnerella species. By domain shuffling, we generated several engineered endolysins with 10-fold higher bactericidal activity than any wild-type enzyme. When tested against a panel of 20 Gardnerella strains, the most active endolysin, called PM-477, showed minimum inhibitory concentrations of 0.13–8 µg/mL. PM-477 had no effect on beneficial lactobacilli or other species of vaginal bacteria. Furthermore, the efficacy of PM-477 was tested by fluorescence in situ hybridization on vaginal samples of fifteen patients with either first time or recurring bacterial vaginosis. In thirteen cases, PM-477 killed the Gardnerella bacteria and physically dissolved the biofilms without affecting the remaining vaginal microbiome. The high selectivity and effectiveness in eliminating Gardnerella, both in cultures of isolated strains as well as in clinically derived samples of natural polymicrobial biofilms, makes PM-477 a promising alternative to antibiotics for the treatment of bacterial vaginosis, especially in patients with frequent recurrence.
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spelling pubmed-78304072021-01-26 Engineered Phage Endolysin Eliminates Gardnerella Biofilm without Damaging Beneficial Bacteria in Bacterial Vaginosis Ex Vivo Landlinger, Christine Tisakova, Lenka Oberbauer, Vera Schwebs, Timo Muhammad, Abbas Latka, Agnieszka Van Simaey, Leen Vaneechoutte, Mario Guschin, Alexander Resch, Gregory Swidsinski, Sonja Swidsinski, Alexander Corsini, Lorenzo Pathogens Article Bacterial vaginosis is characterized by an imbalance of the vaginal microbiome and a characteristic biofilm formed on the vaginal epithelium, which is initiated and dominated by Gardnerella bacteria, and is frequently refractory to antibiotic treatment. We investigated endolysins of the type 1,4-beta-N-acetylmuramidase encoded on Gardnerella prophages as an alternative treatment. When recombinantly expressed, these proteins demonstrated strong bactericidal activity against four different Gardnerella species. By domain shuffling, we generated several engineered endolysins with 10-fold higher bactericidal activity than any wild-type enzyme. When tested against a panel of 20 Gardnerella strains, the most active endolysin, called PM-477, showed minimum inhibitory concentrations of 0.13–8 µg/mL. PM-477 had no effect on beneficial lactobacilli or other species of vaginal bacteria. Furthermore, the efficacy of PM-477 was tested by fluorescence in situ hybridization on vaginal samples of fifteen patients with either first time or recurring bacterial vaginosis. In thirteen cases, PM-477 killed the Gardnerella bacteria and physically dissolved the biofilms without affecting the remaining vaginal microbiome. The high selectivity and effectiveness in eliminating Gardnerella, both in cultures of isolated strains as well as in clinically derived samples of natural polymicrobial biofilms, makes PM-477 a promising alternative to antibiotics for the treatment of bacterial vaginosis, especially in patients with frequent recurrence. MDPI 2021-01-08 /pmc/articles/PMC7830407/ /pubmed/33435575 http://dx.doi.org/10.3390/pathogens10010054 Text en © 2021 by the authors. 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 (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Landlinger, Christine
Tisakova, Lenka
Oberbauer, Vera
Schwebs, Timo
Muhammad, Abbas
Latka, Agnieszka
Van Simaey, Leen
Vaneechoutte, Mario
Guschin, Alexander
Resch, Gregory
Swidsinski, Sonja
Swidsinski, Alexander
Corsini, Lorenzo
Engineered Phage Endolysin Eliminates Gardnerella Biofilm without Damaging Beneficial Bacteria in Bacterial Vaginosis Ex Vivo
title Engineered Phage Endolysin Eliminates Gardnerella Biofilm without Damaging Beneficial Bacteria in Bacterial Vaginosis Ex Vivo
title_full Engineered Phage Endolysin Eliminates Gardnerella Biofilm without Damaging Beneficial Bacteria in Bacterial Vaginosis Ex Vivo
title_fullStr Engineered Phage Endolysin Eliminates Gardnerella Biofilm without Damaging Beneficial Bacteria in Bacterial Vaginosis Ex Vivo
title_full_unstemmed Engineered Phage Endolysin Eliminates Gardnerella Biofilm without Damaging Beneficial Bacteria in Bacterial Vaginosis Ex Vivo
title_short Engineered Phage Endolysin Eliminates Gardnerella Biofilm without Damaging Beneficial Bacteria in Bacterial Vaginosis Ex Vivo
title_sort engineered phage endolysin eliminates gardnerella biofilm without damaging beneficial bacteria in bacterial vaginosis ex vivo
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7830407/
https://www.ncbi.nlm.nih.gov/pubmed/33435575
http://dx.doi.org/10.3390/pathogens10010054
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