Cargando…

Transposon mutagenesis and genome sequencing identify two novel, tandem genes involved in the colony spreading of Flavobacterium collinsii, isolated from an ayu fish, Plecoglossus altivelis

Bacteria of the family Flavobacteriaceae (flavobacteria) primarily comprise nonpathogenic bacteria that inhabit soil and water (both marine and freshwater). However, some bacterial species in the family, including Flavobacterium psychrophilum and Flavobacterium columnare, are known to be pathogenic...

Descripción completa

Detalles Bibliográficos
Autores principales: Kondo, Yoshio, Ohara, Kenichi, Fujii, Ryoji, Nakai, Yudai, Sato, Chikara, Naito, Mariko, Tsukuba, Takayuki, Kadowaki, Tomoko, Sato, Keiko
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9950754/
https://www.ncbi.nlm.nih.gov/pubmed/36844397
http://dx.doi.org/10.3389/fcimb.2023.1095919
_version_ 1784893239932747776
author Kondo, Yoshio
Ohara, Kenichi
Fujii, Ryoji
Nakai, Yudai
Sato, Chikara
Naito, Mariko
Tsukuba, Takayuki
Kadowaki, Tomoko
Sato, Keiko
author_facet Kondo, Yoshio
Ohara, Kenichi
Fujii, Ryoji
Nakai, Yudai
Sato, Chikara
Naito, Mariko
Tsukuba, Takayuki
Kadowaki, Tomoko
Sato, Keiko
author_sort Kondo, Yoshio
collection PubMed
description Bacteria of the family Flavobacteriaceae (flavobacteria) primarily comprise nonpathogenic bacteria that inhabit soil and water (both marine and freshwater). However, some bacterial species in the family, including Flavobacterium psychrophilum and Flavobacterium columnare, are known to be pathogenic to fish. Flavobacteria, including the abovementioned pathogenic bacteria, belong to the phylum Bacteroidota and possess two phylum-specific features, gliding motility and a protein secretion system, which are energized by a common motor complex. Herein, we focused on Flavobacterium collinsii (GiFuPREF103) isolated from a diseased fish (Plecoglossus altivelis). Genomic analysis of F. collinsii GiFuPREF103 revealed the presence of a type IX secretion system and additional genes associated with gliding motility and spreading. Using transposon mutagenesis, we isolated two mutants with altered colony morphology and colony spreading ability; these mutants had transposon insertions in pep25 and lbp26. The glycosylation material profiles revealed that these mutants lacked the high-molecular-weight glycosylated materials present in the wild-type strain. In addition, the wild-type strains exhibited fast cell population movement at the edge of the spreading colony, whereas reduced cell population behavior was observed in the pep25- and lbp26-mutant strains. In the aqueous environment, the surface layers of these mutant strains were more hydrophobic, and they formed biofilms with enhanced microcolony growth compared to those with the wild-type. In Flavobacterium johnsoniae, the Fjoh_0352 and Fjoh_0353 mutant strains were generated, which were based on the ortholog genes of pep25 and lbp26. In these F. johnsoniae mutants, as in F. collinsii GiFuPREF103, colonies with diminished spreading capacity were formed. Furthermore, cell population migration was observed at the edge of the colony in wild-type F. johnsoniae, whereas individual cells, and not cell populations, migrated in these mutant strains. The findings of the present study indicate that pep25 and lbp26 contribute to the colony spreading of F. collinsii.
format Online
Article
Text
id pubmed-9950754
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher Frontiers Media S.A.
record_format MEDLINE/PubMed
spelling pubmed-99507542023-02-25 Transposon mutagenesis and genome sequencing identify two novel, tandem genes involved in the colony spreading of Flavobacterium collinsii, isolated from an ayu fish, Plecoglossus altivelis Kondo, Yoshio Ohara, Kenichi Fujii, Ryoji Nakai, Yudai Sato, Chikara Naito, Mariko Tsukuba, Takayuki Kadowaki, Tomoko Sato, Keiko Front Cell Infect Microbiol Cellular and Infection Microbiology Bacteria of the family Flavobacteriaceae (flavobacteria) primarily comprise nonpathogenic bacteria that inhabit soil and water (both marine and freshwater). However, some bacterial species in the family, including Flavobacterium psychrophilum and Flavobacterium columnare, are known to be pathogenic to fish. Flavobacteria, including the abovementioned pathogenic bacteria, belong to the phylum Bacteroidota and possess two phylum-specific features, gliding motility and a protein secretion system, which are energized by a common motor complex. Herein, we focused on Flavobacterium collinsii (GiFuPREF103) isolated from a diseased fish (Plecoglossus altivelis). Genomic analysis of F. collinsii GiFuPREF103 revealed the presence of a type IX secretion system and additional genes associated with gliding motility and spreading. Using transposon mutagenesis, we isolated two mutants with altered colony morphology and colony spreading ability; these mutants had transposon insertions in pep25 and lbp26. The glycosylation material profiles revealed that these mutants lacked the high-molecular-weight glycosylated materials present in the wild-type strain. In addition, the wild-type strains exhibited fast cell population movement at the edge of the spreading colony, whereas reduced cell population behavior was observed in the pep25- and lbp26-mutant strains. In the aqueous environment, the surface layers of these mutant strains were more hydrophobic, and they formed biofilms with enhanced microcolony growth compared to those with the wild-type. In Flavobacterium johnsoniae, the Fjoh_0352 and Fjoh_0353 mutant strains were generated, which were based on the ortholog genes of pep25 and lbp26. In these F. johnsoniae mutants, as in F. collinsii GiFuPREF103, colonies with diminished spreading capacity were formed. Furthermore, cell population migration was observed at the edge of the colony in wild-type F. johnsoniae, whereas individual cells, and not cell populations, migrated in these mutant strains. The findings of the present study indicate that pep25 and lbp26 contribute to the colony spreading of F. collinsii. Frontiers Media S.A. 2023-02-10 /pmc/articles/PMC9950754/ /pubmed/36844397 http://dx.doi.org/10.3389/fcimb.2023.1095919 Text en Copyright © 2023 Kondo, Ohara, Fujii, Nakai, Sato, Naito, Tsukuba, Kadowaki and Sato https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Cellular and Infection Microbiology
Kondo, Yoshio
Ohara, Kenichi
Fujii, Ryoji
Nakai, Yudai
Sato, Chikara
Naito, Mariko
Tsukuba, Takayuki
Kadowaki, Tomoko
Sato, Keiko
Transposon mutagenesis and genome sequencing identify two novel, tandem genes involved in the colony spreading of Flavobacterium collinsii, isolated from an ayu fish, Plecoglossus altivelis
title Transposon mutagenesis and genome sequencing identify two novel, tandem genes involved in the colony spreading of Flavobacterium collinsii, isolated from an ayu fish, Plecoglossus altivelis
title_full Transposon mutagenesis and genome sequencing identify two novel, tandem genes involved in the colony spreading of Flavobacterium collinsii, isolated from an ayu fish, Plecoglossus altivelis
title_fullStr Transposon mutagenesis and genome sequencing identify two novel, tandem genes involved in the colony spreading of Flavobacterium collinsii, isolated from an ayu fish, Plecoglossus altivelis
title_full_unstemmed Transposon mutagenesis and genome sequencing identify two novel, tandem genes involved in the colony spreading of Flavobacterium collinsii, isolated from an ayu fish, Plecoglossus altivelis
title_short Transposon mutagenesis and genome sequencing identify two novel, tandem genes involved in the colony spreading of Flavobacterium collinsii, isolated from an ayu fish, Plecoglossus altivelis
title_sort transposon mutagenesis and genome sequencing identify two novel, tandem genes involved in the colony spreading of flavobacterium collinsii, isolated from an ayu fish, plecoglossus altivelis
topic Cellular and Infection Microbiology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9950754/
https://www.ncbi.nlm.nih.gov/pubmed/36844397
http://dx.doi.org/10.3389/fcimb.2023.1095919
work_keys_str_mv AT kondoyoshio transposonmutagenesisandgenomesequencingidentifytwonoveltandemgenesinvolvedinthecolonyspreadingofflavobacteriumcollinsiiisolatedfromanayufishplecoglossusaltivelis
AT oharakenichi transposonmutagenesisandgenomesequencingidentifytwonoveltandemgenesinvolvedinthecolonyspreadingofflavobacteriumcollinsiiisolatedfromanayufishplecoglossusaltivelis
AT fujiiryoji transposonmutagenesisandgenomesequencingidentifytwonoveltandemgenesinvolvedinthecolonyspreadingofflavobacteriumcollinsiiisolatedfromanayufishplecoglossusaltivelis
AT nakaiyudai transposonmutagenesisandgenomesequencingidentifytwonoveltandemgenesinvolvedinthecolonyspreadingofflavobacteriumcollinsiiisolatedfromanayufishplecoglossusaltivelis
AT satochikara transposonmutagenesisandgenomesequencingidentifytwonoveltandemgenesinvolvedinthecolonyspreadingofflavobacteriumcollinsiiisolatedfromanayufishplecoglossusaltivelis
AT naitomariko transposonmutagenesisandgenomesequencingidentifytwonoveltandemgenesinvolvedinthecolonyspreadingofflavobacteriumcollinsiiisolatedfromanayufishplecoglossusaltivelis
AT tsukubatakayuki transposonmutagenesisandgenomesequencingidentifytwonoveltandemgenesinvolvedinthecolonyspreadingofflavobacteriumcollinsiiisolatedfromanayufishplecoglossusaltivelis
AT kadowakitomoko transposonmutagenesisandgenomesequencingidentifytwonoveltandemgenesinvolvedinthecolonyspreadingofflavobacteriumcollinsiiisolatedfromanayufishplecoglossusaltivelis
AT satokeiko transposonmutagenesisandgenomesequencingidentifytwonoveltandemgenesinvolvedinthecolonyspreadingofflavobacteriumcollinsiiisolatedfromanayufishplecoglossusaltivelis