Cargando…

The Space Environment Activates Capsular Polysaccharide Production in Lacticaseibacillus rhamnosus Probio-M9 by Mutating the wze (ywqD) Gene

The study of microorganisms in outer space has focused mainly on investigating phenotypic changes in microbial pathogens induced by factors encountered in space. This study aimed to investigate the effect of space exposure on a probiotic bacterium, Lacticaseibacillus rhamnosus Probio-M9. Probio-M9 c...

Descripción completa

Detalles Bibliográficos
Autores principales: Sun, Yue, Guo, Shuai, Yang, Jingfang, Li, Yingmeng, Sun, Zhihong, Kwok, Lai-Yu, Sun, Tiansong, Liu, Wenjun
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Microbiology 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10101077/
https://www.ncbi.nlm.nih.gov/pubmed/36861974
http://dx.doi.org/10.1128/spectrum.04677-22
_version_ 1785025429610954752
author Sun, Yue
Guo, Shuai
Yang, Jingfang
Li, Yingmeng
Sun, Zhihong
Kwok, Lai-Yu
Sun, Tiansong
Liu, Wenjun
Liu, Wenjun
author_facet Sun, Yue
Guo, Shuai
Yang, Jingfang
Li, Yingmeng
Sun, Zhihong
Kwok, Lai-Yu
Sun, Tiansong
Liu, Wenjun
Liu, Wenjun
author_sort Sun, Yue
collection PubMed
description The study of microorganisms in outer space has focused mainly on investigating phenotypic changes in microbial pathogens induced by factors encountered in space. This study aimed to investigate the effect of space exposure on a probiotic bacterium, Lacticaseibacillus rhamnosus Probio-M9. Probio-M9 cells were exposed to space in a spaceflight. Interestingly, our results showed that a substantial proportion of space-exposed mutants (35/100) exhibited a ropy phenotype, characterized by their larger colony sizes and an acquired ability to produce capsular polysaccharide (CPS), compared with the original Probio-M9 or the ground control isolates without space exposure. Whole-genome sequencing analyses on both the Illumina and PacBio platforms revealed a skewed distribution of single nucleotide polymorphisms (12/89 [13.5%]) toward the CPS gene cluster, particularly in the wze (ywqD) gene. The wze gene encodes a putative tyrosine-protein kinase that regulates CPS expression through substrate phosphorylation. Transcriptomics analysis of two space-exposed ropy mutants revealed increased expression in the wze gene relative to a ground control isolate. Finally, we showed that the acquired ropy phenotype (CPS-producing ability) and space-induced genomic changes could be stably inherited. Our findings confirmed that the wze gene directly influences the capacity for CPS production in Probio-M9, and space mutagenesis is a potential strategy for inducing stable physiological changes in probiotics. IMPORTANCE This work investigated the effect of space exposure on a probiotic bacterium, Lacticaseibacillus rhamnosus Probio-M9. Interestingly, the space-exposed bacteria became capable of producing capsular polysaccharide (CPS). Some probiotic-derived CPSs have nutraceutical potential and bioactive properties. They also enhance the survival of probiotics through the gastrointestinal transit and ultimately strengthen the probiotic effects. Space mutagenesis seems to be a promising strategy for inducing stable changes in probiotics, and the obtained high-CPS-yielding mutants are valuable resources for future applications.
format Online
Article
Text
id pubmed-10101077
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher American Society for Microbiology
record_format MEDLINE/PubMed
spelling pubmed-101010772023-04-14 The Space Environment Activates Capsular Polysaccharide Production in Lacticaseibacillus rhamnosus Probio-M9 by Mutating the wze (ywqD) Gene Sun, Yue Guo, Shuai Yang, Jingfang Li, Yingmeng Sun, Zhihong Kwok, Lai-Yu Sun, Tiansong Liu, Wenjun Liu, Wenjun Microbiol Spectr Research Article The study of microorganisms in outer space has focused mainly on investigating phenotypic changes in microbial pathogens induced by factors encountered in space. This study aimed to investigate the effect of space exposure on a probiotic bacterium, Lacticaseibacillus rhamnosus Probio-M9. Probio-M9 cells were exposed to space in a spaceflight. Interestingly, our results showed that a substantial proportion of space-exposed mutants (35/100) exhibited a ropy phenotype, characterized by their larger colony sizes and an acquired ability to produce capsular polysaccharide (CPS), compared with the original Probio-M9 or the ground control isolates without space exposure. Whole-genome sequencing analyses on both the Illumina and PacBio platforms revealed a skewed distribution of single nucleotide polymorphisms (12/89 [13.5%]) toward the CPS gene cluster, particularly in the wze (ywqD) gene. The wze gene encodes a putative tyrosine-protein kinase that regulates CPS expression through substrate phosphorylation. Transcriptomics analysis of two space-exposed ropy mutants revealed increased expression in the wze gene relative to a ground control isolate. Finally, we showed that the acquired ropy phenotype (CPS-producing ability) and space-induced genomic changes could be stably inherited. Our findings confirmed that the wze gene directly influences the capacity for CPS production in Probio-M9, and space mutagenesis is a potential strategy for inducing stable physiological changes in probiotics. IMPORTANCE This work investigated the effect of space exposure on a probiotic bacterium, Lacticaseibacillus rhamnosus Probio-M9. Interestingly, the space-exposed bacteria became capable of producing capsular polysaccharide (CPS). Some probiotic-derived CPSs have nutraceutical potential and bioactive properties. They also enhance the survival of probiotics through the gastrointestinal transit and ultimately strengthen the probiotic effects. Space mutagenesis seems to be a promising strategy for inducing stable changes in probiotics, and the obtained high-CPS-yielding mutants are valuable resources for future applications. American Society for Microbiology 2023-03-02 /pmc/articles/PMC10101077/ /pubmed/36861974 http://dx.doi.org/10.1128/spectrum.04677-22 Text en Copyright © 2023 Sun et al. https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution 4.0 International license (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Research Article
Sun, Yue
Guo, Shuai
Yang, Jingfang
Li, Yingmeng
Sun, Zhihong
Kwok, Lai-Yu
Sun, Tiansong
Liu, Wenjun
Liu, Wenjun
The Space Environment Activates Capsular Polysaccharide Production in Lacticaseibacillus rhamnosus Probio-M9 by Mutating the wze (ywqD) Gene
title The Space Environment Activates Capsular Polysaccharide Production in Lacticaseibacillus rhamnosus Probio-M9 by Mutating the wze (ywqD) Gene
title_full The Space Environment Activates Capsular Polysaccharide Production in Lacticaseibacillus rhamnosus Probio-M9 by Mutating the wze (ywqD) Gene
title_fullStr The Space Environment Activates Capsular Polysaccharide Production in Lacticaseibacillus rhamnosus Probio-M9 by Mutating the wze (ywqD) Gene
title_full_unstemmed The Space Environment Activates Capsular Polysaccharide Production in Lacticaseibacillus rhamnosus Probio-M9 by Mutating the wze (ywqD) Gene
title_short The Space Environment Activates Capsular Polysaccharide Production in Lacticaseibacillus rhamnosus Probio-M9 by Mutating the wze (ywqD) Gene
title_sort space environment activates capsular polysaccharide production in lacticaseibacillus rhamnosus probio-m9 by mutating the wze (ywqd) gene
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10101077/
https://www.ncbi.nlm.nih.gov/pubmed/36861974
http://dx.doi.org/10.1128/spectrum.04677-22
work_keys_str_mv AT sunyue thespaceenvironmentactivatescapsularpolysaccharideproductioninlacticaseibacillusrhamnosusprobiom9bymutatingthewzeywqdgene
AT guoshuai thespaceenvironmentactivatescapsularpolysaccharideproductioninlacticaseibacillusrhamnosusprobiom9bymutatingthewzeywqdgene
AT yangjingfang thespaceenvironmentactivatescapsularpolysaccharideproductioninlacticaseibacillusrhamnosusprobiom9bymutatingthewzeywqdgene
AT liyingmeng thespaceenvironmentactivatescapsularpolysaccharideproductioninlacticaseibacillusrhamnosusprobiom9bymutatingthewzeywqdgene
AT sunzhihong thespaceenvironmentactivatescapsularpolysaccharideproductioninlacticaseibacillusrhamnosusprobiom9bymutatingthewzeywqdgene
AT kwoklaiyu thespaceenvironmentactivatescapsularpolysaccharideproductioninlacticaseibacillusrhamnosusprobiom9bymutatingthewzeywqdgene
AT suntiansong thespaceenvironmentactivatescapsularpolysaccharideproductioninlacticaseibacillusrhamnosusprobiom9bymutatingthewzeywqdgene
AT liuwenjun thespaceenvironmentactivatescapsularpolysaccharideproductioninlacticaseibacillusrhamnosusprobiom9bymutatingthewzeywqdgene
AT liuwenjun thespaceenvironmentactivatescapsularpolysaccharideproductioninlacticaseibacillusrhamnosusprobiom9bymutatingthewzeywqdgene
AT sunyue spaceenvironmentactivatescapsularpolysaccharideproductioninlacticaseibacillusrhamnosusprobiom9bymutatingthewzeywqdgene
AT guoshuai spaceenvironmentactivatescapsularpolysaccharideproductioninlacticaseibacillusrhamnosusprobiom9bymutatingthewzeywqdgene
AT yangjingfang spaceenvironmentactivatescapsularpolysaccharideproductioninlacticaseibacillusrhamnosusprobiom9bymutatingthewzeywqdgene
AT liyingmeng spaceenvironmentactivatescapsularpolysaccharideproductioninlacticaseibacillusrhamnosusprobiom9bymutatingthewzeywqdgene
AT sunzhihong spaceenvironmentactivatescapsularpolysaccharideproductioninlacticaseibacillusrhamnosusprobiom9bymutatingthewzeywqdgene
AT kwoklaiyu spaceenvironmentactivatescapsularpolysaccharideproductioninlacticaseibacillusrhamnosusprobiom9bymutatingthewzeywqdgene
AT suntiansong spaceenvironmentactivatescapsularpolysaccharideproductioninlacticaseibacillusrhamnosusprobiom9bymutatingthewzeywqdgene
AT liuwenjun spaceenvironmentactivatescapsularpolysaccharideproductioninlacticaseibacillusrhamnosusprobiom9bymutatingthewzeywqdgene
AT liuwenjun spaceenvironmentactivatescapsularpolysaccharideproductioninlacticaseibacillusrhamnosusprobiom9bymutatingthewzeywqdgene