Cargando…

Macroporous Silicone Chips for Decoding Microbial Dark Matter in Environmental Microbiomes

[Image: see text] Natural evolution has produced an almost infinite variety of microorganisms that can colonize almost any conceivable habitat. Since the vast majority of these microbial consortia are still unknown, there is a great need to elucidate this “microbial dark matter” (MDM) to enable expl...

Descripción completa

Detalles Bibliográficos
Autores principales: Zoheir, Ahmed E., Meisch, Laura, Martín, Marta Velaz, Bickmann, Christoph, Kiselev, Alexei, Lenk, Florian, Kaster, Anne-Kristin, Rabe, Kersten S., Niemeyer, Christof M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2022
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9650684/
https://www.ncbi.nlm.nih.gov/pubmed/36288792
http://dx.doi.org/10.1021/acsami.2c15470
_version_ 1784828076951076864
author Zoheir, Ahmed E.
Meisch, Laura
Martín, Marta Velaz
Bickmann, Christoph
Kiselev, Alexei
Lenk, Florian
Kaster, Anne-Kristin
Rabe, Kersten S.
Niemeyer, Christof M.
author_facet Zoheir, Ahmed E.
Meisch, Laura
Martín, Marta Velaz
Bickmann, Christoph
Kiselev, Alexei
Lenk, Florian
Kaster, Anne-Kristin
Rabe, Kersten S.
Niemeyer, Christof M.
author_sort Zoheir, Ahmed E.
collection PubMed
description [Image: see text] Natural evolution has produced an almost infinite variety of microorganisms that can colonize almost any conceivable habitat. Since the vast majority of these microbial consortia are still unknown, there is a great need to elucidate this “microbial dark matter” (MDM) to enable exploitation in biotechnology. We report the fabrication and application of a novel device that integrates a matrix of macroporous elastomeric silicone foam (MESIF) into an easily fabricated and scalable chip design that can be used for decoding MDM in environmental microbiomes. Technical validation, performed with the model organism Escherichia coli expressing a fluorescent protein, showed that this low-cost, bioinert, and widely modifiable chip is rapidly colonized by microorganisms. The biological potential of the chip was then illustrated through targeted sampling and enrichment of microbiomes in a variety of habitats ranging from wet, turbulent moving bed biofilters and wastewater treatment plants to dry air-based environments. Sequencing analyses consistently showed that MESIF chips are not only suitable for sampling with high robustness but also that the material can be used to detect a broad cross section of microorganisms present in the habitat in a short time span of a few days. For example, results from the biofilter habitat showed efficient enrichment of microorganisms belonging to the enigmatic Candidate Phyla Radiation, which comprise ∼70% of the MDM. From dry air, the MESIF chip was able to enrich a variety of members of Actinobacteriota, which is known to produce specific secondary metabolites. Targeted sampling from a wastewater treatment plant where the herbicide glyphosate was added to the chip’s reservoir resulted in enrichment of Cyanobacteria and Desulfobacteria, previously associated with glyphosate degradation. These initial case studies suggest that this chip is very well suited for the systematic study of MDM and opens opportunities for the cultivation of previously unculturable microorganisms.
format Online
Article
Text
id pubmed-9650684
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher American Chemical Society
record_format MEDLINE/PubMed
spelling pubmed-96506842022-11-15 Macroporous Silicone Chips for Decoding Microbial Dark Matter in Environmental Microbiomes Zoheir, Ahmed E. Meisch, Laura Martín, Marta Velaz Bickmann, Christoph Kiselev, Alexei Lenk, Florian Kaster, Anne-Kristin Rabe, Kersten S. Niemeyer, Christof M. ACS Appl Mater Interfaces [Image: see text] Natural evolution has produced an almost infinite variety of microorganisms that can colonize almost any conceivable habitat. Since the vast majority of these microbial consortia are still unknown, there is a great need to elucidate this “microbial dark matter” (MDM) to enable exploitation in biotechnology. We report the fabrication and application of a novel device that integrates a matrix of macroporous elastomeric silicone foam (MESIF) into an easily fabricated and scalable chip design that can be used for decoding MDM in environmental microbiomes. Technical validation, performed with the model organism Escherichia coli expressing a fluorescent protein, showed that this low-cost, bioinert, and widely modifiable chip is rapidly colonized by microorganisms. The biological potential of the chip was then illustrated through targeted sampling and enrichment of microbiomes in a variety of habitats ranging from wet, turbulent moving bed biofilters and wastewater treatment plants to dry air-based environments. Sequencing analyses consistently showed that MESIF chips are not only suitable for sampling with high robustness but also that the material can be used to detect a broad cross section of microorganisms present in the habitat in a short time span of a few days. For example, results from the biofilter habitat showed efficient enrichment of microorganisms belonging to the enigmatic Candidate Phyla Radiation, which comprise ∼70% of the MDM. From dry air, the MESIF chip was able to enrich a variety of members of Actinobacteriota, which is known to produce specific secondary metabolites. Targeted sampling from a wastewater treatment plant where the herbicide glyphosate was added to the chip’s reservoir resulted in enrichment of Cyanobacteria and Desulfobacteria, previously associated with glyphosate degradation. These initial case studies suggest that this chip is very well suited for the systematic study of MDM and opens opportunities for the cultivation of previously unculturable microorganisms. American Chemical Society 2022-10-26 2022-11-09 /pmc/articles/PMC9650684/ /pubmed/36288792 http://dx.doi.org/10.1021/acsami.2c15470 Text en © 2022 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by-nc-nd/4.0/Permits non-commercial access and re-use, provided that author attribution and integrity are maintained; but does not permit creation of adaptations or other derivative works (https://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Zoheir, Ahmed E.
Meisch, Laura
Martín, Marta Velaz
Bickmann, Christoph
Kiselev, Alexei
Lenk, Florian
Kaster, Anne-Kristin
Rabe, Kersten S.
Niemeyer, Christof M.
Macroporous Silicone Chips for Decoding Microbial Dark Matter in Environmental Microbiomes
title Macroporous Silicone Chips for Decoding Microbial Dark Matter in Environmental Microbiomes
title_full Macroporous Silicone Chips for Decoding Microbial Dark Matter in Environmental Microbiomes
title_fullStr Macroporous Silicone Chips for Decoding Microbial Dark Matter in Environmental Microbiomes
title_full_unstemmed Macroporous Silicone Chips for Decoding Microbial Dark Matter in Environmental Microbiomes
title_short Macroporous Silicone Chips for Decoding Microbial Dark Matter in Environmental Microbiomes
title_sort macroporous silicone chips for decoding microbial dark matter in environmental microbiomes
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9650684/
https://www.ncbi.nlm.nih.gov/pubmed/36288792
http://dx.doi.org/10.1021/acsami.2c15470
work_keys_str_mv AT zoheirahmede macroporoussiliconechipsfordecodingmicrobialdarkmatterinenvironmentalmicrobiomes
AT meischlaura macroporoussiliconechipsfordecodingmicrobialdarkmatterinenvironmentalmicrobiomes
AT martinmartavelaz macroporoussiliconechipsfordecodingmicrobialdarkmatterinenvironmentalmicrobiomes
AT bickmannchristoph macroporoussiliconechipsfordecodingmicrobialdarkmatterinenvironmentalmicrobiomes
AT kiselevalexei macroporoussiliconechipsfordecodingmicrobialdarkmatterinenvironmentalmicrobiomes
AT lenkflorian macroporoussiliconechipsfordecodingmicrobialdarkmatterinenvironmentalmicrobiomes
AT kasterannekristin macroporoussiliconechipsfordecodingmicrobialdarkmatterinenvironmentalmicrobiomes
AT rabekerstens macroporoussiliconechipsfordecodingmicrobialdarkmatterinenvironmentalmicrobiomes
AT niemeyerchristofm macroporoussiliconechipsfordecodingmicrobialdarkmatterinenvironmentalmicrobiomes