Cargando…

Microbial isolation and characterization from two flex lines from the urine processor assembly onboard the international space station

Urine, humidity condensate, and other sources of non-potable water are processed onboard the International Space Station (ISS) by the Water Recovery System (WRS) yielding potable water. While some means of microbial control are in place, including a phosphoric acid/hexavalent chromium urine pretreat...

Descripción completa

Detalles Bibliográficos
Autores principales: Nguyen, Hang Ngoc, Sharp, G. Marie, Stahl-Rommel, Sarah, Velez Justiniano, Yo-Ann, Castro, Christian L., Nelman-Gonzalez, Mayra, O’Rourke, Aubrie, Lee, Michael D., Williamson, Jill, McCool, Chelsea, Crucian, Brian, Clark, Kenneth W., Jain, Miten, Castro-Wallace, Sarah L.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10020673/
https://www.ncbi.nlm.nih.gov/pubmed/36938359
http://dx.doi.org/10.1016/j.bioflm.2023.100108
_version_ 1784908313653149696
author Nguyen, Hang Ngoc
Sharp, G. Marie
Stahl-Rommel, Sarah
Velez Justiniano, Yo-Ann
Castro, Christian L.
Nelman-Gonzalez, Mayra
O’Rourke, Aubrie
Lee, Michael D.
Williamson, Jill
McCool, Chelsea
Crucian, Brian
Clark, Kenneth W.
Jain, Miten
Castro-Wallace, Sarah L.
author_facet Nguyen, Hang Ngoc
Sharp, G. Marie
Stahl-Rommel, Sarah
Velez Justiniano, Yo-Ann
Castro, Christian L.
Nelman-Gonzalez, Mayra
O’Rourke, Aubrie
Lee, Michael D.
Williamson, Jill
McCool, Chelsea
Crucian, Brian
Clark, Kenneth W.
Jain, Miten
Castro-Wallace, Sarah L.
author_sort Nguyen, Hang Ngoc
collection PubMed
description Urine, humidity condensate, and other sources of non-potable water are processed onboard the International Space Station (ISS) by the Water Recovery System (WRS) yielding potable water. While some means of microbial control are in place, including a phosphoric acid/hexavalent chromium urine pretreatment solution, many areas within the WRS are not available for routine microbial monitoring. Due to refurbishment needs, two flex lines from the Urine Processor Assembly (UPA) within the WRS were removed and returned to Earth. The water from within these lines, as well as flush water, was microbially evaluated. Culture and culture-independent analysis revealed the presence of Burkholderia, Paraburkholderia, and Leifsonia. Fungal culture also identified Fusarium and Lecythophora. Hybrid de novo genome analysis of the five distinct Burkholderia isolates identified them as B. contaminans, while the two Paraburkholderia isolates were identified as P. fungorum. Chromate-resistance gene clusters were identified through pangenomic analysis that differentiated these genomes from previously studied isolates recovered from the point-of-use potable water dispenser and/or current NCBI references, indicating that unique populations exist within distinct niches in the WRS. Beyond genomic analysis, fixed samples directly from the lines were imaged by environmental scanning electron microscopy, which detailed networks of fungal-bacterial biofilms. This is the first evidence of biofilm formation within flex lines from the UPA onboard the ISS. For all bacteria isolated, biofilm potential was further characterized, with the B. contaminans isolates demonstrating the most considerable biofilm formation. Moreover, the genomes of the B. contaminans revealed secondary metabolite gene clusters associated with quorum sensing, biofilm formation, antifungal compounds, and hemolysins. The potential production of these gene cluster metabolites was phenotypically evaluated through biofilm, bacterial-fungal interaction, and hemolytic assays. Collectively, these data identify the UPA flex lines as a unique ecological niche and novel area of biofilm growth within the WRS. Further investigation of these organisms and their resistance profiles will enable engineering controls directed toward biofilm prevention in future space station water systems.
format Online
Article
Text
id pubmed-10020673
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher Elsevier
record_format MEDLINE/PubMed
spelling pubmed-100206732023-03-18 Microbial isolation and characterization from two flex lines from the urine processor assembly onboard the international space station Nguyen, Hang Ngoc Sharp, G. Marie Stahl-Rommel, Sarah Velez Justiniano, Yo-Ann Castro, Christian L. Nelman-Gonzalez, Mayra O’Rourke, Aubrie Lee, Michael D. Williamson, Jill McCool, Chelsea Crucian, Brian Clark, Kenneth W. Jain, Miten Castro-Wallace, Sarah L. Biofilm Article Urine, humidity condensate, and other sources of non-potable water are processed onboard the International Space Station (ISS) by the Water Recovery System (WRS) yielding potable water. While some means of microbial control are in place, including a phosphoric acid/hexavalent chromium urine pretreatment solution, many areas within the WRS are not available for routine microbial monitoring. Due to refurbishment needs, two flex lines from the Urine Processor Assembly (UPA) within the WRS were removed and returned to Earth. The water from within these lines, as well as flush water, was microbially evaluated. Culture and culture-independent analysis revealed the presence of Burkholderia, Paraburkholderia, and Leifsonia. Fungal culture also identified Fusarium and Lecythophora. Hybrid de novo genome analysis of the five distinct Burkholderia isolates identified them as B. contaminans, while the two Paraburkholderia isolates were identified as P. fungorum. Chromate-resistance gene clusters were identified through pangenomic analysis that differentiated these genomes from previously studied isolates recovered from the point-of-use potable water dispenser and/or current NCBI references, indicating that unique populations exist within distinct niches in the WRS. Beyond genomic analysis, fixed samples directly from the lines were imaged by environmental scanning electron microscopy, which detailed networks of fungal-bacterial biofilms. This is the first evidence of biofilm formation within flex lines from the UPA onboard the ISS. For all bacteria isolated, biofilm potential was further characterized, with the B. contaminans isolates demonstrating the most considerable biofilm formation. Moreover, the genomes of the B. contaminans revealed secondary metabolite gene clusters associated with quorum sensing, biofilm formation, antifungal compounds, and hemolysins. The potential production of these gene cluster metabolites was phenotypically evaluated through biofilm, bacterial-fungal interaction, and hemolytic assays. Collectively, these data identify the UPA flex lines as a unique ecological niche and novel area of biofilm growth within the WRS. Further investigation of these organisms and their resistance profiles will enable engineering controls directed toward biofilm prevention in future space station water systems. Elsevier 2023-03-02 /pmc/articles/PMC10020673/ /pubmed/36938359 http://dx.doi.org/10.1016/j.bioflm.2023.100108 Text en © 2023 Published by Elsevier B.V. https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Article
Nguyen, Hang Ngoc
Sharp, G. Marie
Stahl-Rommel, Sarah
Velez Justiniano, Yo-Ann
Castro, Christian L.
Nelman-Gonzalez, Mayra
O’Rourke, Aubrie
Lee, Michael D.
Williamson, Jill
McCool, Chelsea
Crucian, Brian
Clark, Kenneth W.
Jain, Miten
Castro-Wallace, Sarah L.
Microbial isolation and characterization from two flex lines from the urine processor assembly onboard the international space station
title Microbial isolation and characterization from two flex lines from the urine processor assembly onboard the international space station
title_full Microbial isolation and characterization from two flex lines from the urine processor assembly onboard the international space station
title_fullStr Microbial isolation and characterization from two flex lines from the urine processor assembly onboard the international space station
title_full_unstemmed Microbial isolation and characterization from two flex lines from the urine processor assembly onboard the international space station
title_short Microbial isolation and characterization from two flex lines from the urine processor assembly onboard the international space station
title_sort microbial isolation and characterization from two flex lines from the urine processor assembly onboard the international space station
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10020673/
https://www.ncbi.nlm.nih.gov/pubmed/36938359
http://dx.doi.org/10.1016/j.bioflm.2023.100108
work_keys_str_mv AT nguyenhangngoc microbialisolationandcharacterizationfromtwoflexlinesfromtheurineprocessorassemblyonboardtheinternationalspacestation
AT sharpgmarie microbialisolationandcharacterizationfromtwoflexlinesfromtheurineprocessorassemblyonboardtheinternationalspacestation
AT stahlrommelsarah microbialisolationandcharacterizationfromtwoflexlinesfromtheurineprocessorassemblyonboardtheinternationalspacestation
AT velezjustinianoyoann microbialisolationandcharacterizationfromtwoflexlinesfromtheurineprocessorassemblyonboardtheinternationalspacestation
AT castrochristianl microbialisolationandcharacterizationfromtwoflexlinesfromtheurineprocessorassemblyonboardtheinternationalspacestation
AT nelmangonzalezmayra microbialisolationandcharacterizationfromtwoflexlinesfromtheurineprocessorassemblyonboardtheinternationalspacestation
AT orourkeaubrie microbialisolationandcharacterizationfromtwoflexlinesfromtheurineprocessorassemblyonboardtheinternationalspacestation
AT leemichaeld microbialisolationandcharacterizationfromtwoflexlinesfromtheurineprocessorassemblyonboardtheinternationalspacestation
AT williamsonjill microbialisolationandcharacterizationfromtwoflexlinesfromtheurineprocessorassemblyonboardtheinternationalspacestation
AT mccoolchelsea microbialisolationandcharacterizationfromtwoflexlinesfromtheurineprocessorassemblyonboardtheinternationalspacestation
AT crucianbrian microbialisolationandcharacterizationfromtwoflexlinesfromtheurineprocessorassemblyonboardtheinternationalspacestation
AT clarkkennethw microbialisolationandcharacterizationfromtwoflexlinesfromtheurineprocessorassemblyonboardtheinternationalspacestation
AT jainmiten microbialisolationandcharacterizationfromtwoflexlinesfromtheurineprocessorassemblyonboardtheinternationalspacestation
AT castrowallacesarahl microbialisolationandcharacterizationfromtwoflexlinesfromtheurineprocessorassemblyonboardtheinternationalspacestation