A genome-scale metabolic model for the denitrifying bacterium Thauera sp. MZ1T accurately predicts degradation of pollutants and production of polymers.

The denitrifying bacterium Thauera sp. MZ1T, a common member of microbial communities in wastewater treatment facilities, can produce different compounds from a range of carbon (C) and nitrogen (N) sources under aerobic and anaerobic conditions. In these different conditions, Thauera modifies its me...

Full description

Saved in:
Bibliographic Details
Main Authors: Diego Tec-Campos, Juan D Tibocha-Bonilla, Celina Jiang, Anurag Passi, Deepan Thiruppathy, Cristal Zuñiga, Camila Posadas, Alejandro Zepeda, Karsten Zengler
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2025-01-01
Series:PLoS Computational Biology
Online Access:https://doi.org/10.1371/journal.pcbi.1012736
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1850260429415120896
author Diego Tec-Campos
Juan D Tibocha-Bonilla
Celina Jiang
Anurag Passi
Deepan Thiruppathy
Cristal Zuñiga
Camila Posadas
Alejandro Zepeda
Karsten Zengler
author_facet Diego Tec-Campos
Juan D Tibocha-Bonilla
Celina Jiang
Anurag Passi
Deepan Thiruppathy
Cristal Zuñiga
Camila Posadas
Alejandro Zepeda
Karsten Zengler
author_sort Diego Tec-Campos
collection DOAJ
description The denitrifying bacterium Thauera sp. MZ1T, a common member of microbial communities in wastewater treatment facilities, can produce different compounds from a range of carbon (C) and nitrogen (N) sources under aerobic and anaerobic conditions. In these different conditions, Thauera modifies its metabolism to produce different compounds that influence the microbial community. In particular, Thauera sp. MZ1T produces different exopolysaccharides with floc-forming properties, impacting the physical disposition of wastewater consortia and the efficiency of nutrient assimilation by the microbial community. Under N-limiting conditions, Thauera sp. MZ1T decreases its growth rate and accelerates the accumulation of polyhydroxyalkanoate-related (PHA) compounds including polyhydroxybutyrate (PHB), which plays a fundamental role as C and energy storage in this β-proteobacterium. However, the metabolic mechanisms employed by Thauera sp. MZ1T to assimilate and catabolize many of the different C and N sources under aerobic and anaerobic conditions remain unknown. Systems biology approaches such as genome-scale metabolic modeling have been successfully used to unveil complex metabolic mechanisms for various microorganisms. Here, we developed a comprehensive metabolic model (M-model) for Thauera sp. MZ1T (iThauera861), consisting of 1,744 metabolites, 2,384 reactions, and 861 genes. We validated the model experimentally using over 70 different C and N sources under both aerobic and anaerobic conditions. iThauera861 achieved a prediction accuracy of 95% for growth on various C and N sources and close to 85% for assimilation of aromatic compounds under denitrifying conditions. The M-model was subsequently deployed to determine the effects of substrates, oxygen presence, and the C:N ratio on the production of PHB and exopolysaccharides (EPS), showing the highest polymer yields are achieved with nucleotides and amino acids under aerobic conditions. This comprehensive M-model will help reveal the metabolic processes by which this ubiquitous species influences communities in wastewater treatment systems and natural environments.
format Article
id doaj-art-240cd6e4b2ca48a196fc9d0a311d9cd7
institution OA Journals
issn 1553-734X
1553-7358
language English
publishDate 2025-01-01
publisher Public Library of Science (PLoS)
record_format Article
series PLoS Computational Biology
spelling doaj-art-240cd6e4b2ca48a196fc9d0a311d9cd72025-08-20T01:55:38ZengPublic Library of Science (PLoS)PLoS Computational Biology1553-734X1553-73582025-01-01211e101273610.1371/journal.pcbi.1012736A genome-scale metabolic model for the denitrifying bacterium Thauera sp. MZ1T accurately predicts degradation of pollutants and production of polymers.Diego Tec-CamposJuan D Tibocha-BonillaCelina JiangAnurag PassiDeepan ThiruppathyCristal ZuñigaCamila PosadasAlejandro ZepedaKarsten ZenglerThe denitrifying bacterium Thauera sp. MZ1T, a common member of microbial communities in wastewater treatment facilities, can produce different compounds from a range of carbon (C) and nitrogen (N) sources under aerobic and anaerobic conditions. In these different conditions, Thauera modifies its metabolism to produce different compounds that influence the microbial community. In particular, Thauera sp. MZ1T produces different exopolysaccharides with floc-forming properties, impacting the physical disposition of wastewater consortia and the efficiency of nutrient assimilation by the microbial community. Under N-limiting conditions, Thauera sp. MZ1T decreases its growth rate and accelerates the accumulation of polyhydroxyalkanoate-related (PHA) compounds including polyhydroxybutyrate (PHB), which plays a fundamental role as C and energy storage in this β-proteobacterium. However, the metabolic mechanisms employed by Thauera sp. MZ1T to assimilate and catabolize many of the different C and N sources under aerobic and anaerobic conditions remain unknown. Systems biology approaches such as genome-scale metabolic modeling have been successfully used to unveil complex metabolic mechanisms for various microorganisms. Here, we developed a comprehensive metabolic model (M-model) for Thauera sp. MZ1T (iThauera861), consisting of 1,744 metabolites, 2,384 reactions, and 861 genes. We validated the model experimentally using over 70 different C and N sources under both aerobic and anaerobic conditions. iThauera861 achieved a prediction accuracy of 95% for growth on various C and N sources and close to 85% for assimilation of aromatic compounds under denitrifying conditions. The M-model was subsequently deployed to determine the effects of substrates, oxygen presence, and the C:N ratio on the production of PHB and exopolysaccharides (EPS), showing the highest polymer yields are achieved with nucleotides and amino acids under aerobic conditions. This comprehensive M-model will help reveal the metabolic processes by which this ubiquitous species influences communities in wastewater treatment systems and natural environments.https://doi.org/10.1371/journal.pcbi.1012736
spellingShingle Diego Tec-Campos
Juan D Tibocha-Bonilla
Celina Jiang
Anurag Passi
Deepan Thiruppathy
Cristal Zuñiga
Camila Posadas
Alejandro Zepeda
Karsten Zengler
A genome-scale metabolic model for the denitrifying bacterium Thauera sp. MZ1T accurately predicts degradation of pollutants and production of polymers.
PLoS Computational Biology
title A genome-scale metabolic model for the denitrifying bacterium Thauera sp. MZ1T accurately predicts degradation of pollutants and production of polymers.
title_full A genome-scale metabolic model for the denitrifying bacterium Thauera sp. MZ1T accurately predicts degradation of pollutants and production of polymers.
title_fullStr A genome-scale metabolic model for the denitrifying bacterium Thauera sp. MZ1T accurately predicts degradation of pollutants and production of polymers.
title_full_unstemmed A genome-scale metabolic model for the denitrifying bacterium Thauera sp. MZ1T accurately predicts degradation of pollutants and production of polymers.
title_short A genome-scale metabolic model for the denitrifying bacterium Thauera sp. MZ1T accurately predicts degradation of pollutants and production of polymers.
title_sort genome scale metabolic model for the denitrifying bacterium thauera sp mz1t accurately predicts degradation of pollutants and production of polymers
url https://doi.org/10.1371/journal.pcbi.1012736
work_keys_str_mv AT diegoteccampos agenomescalemetabolicmodelforthedenitrifyingbacteriumthaueraspmz1taccuratelypredictsdegradationofpollutantsandproductionofpolymers
AT juandtibochabonilla agenomescalemetabolicmodelforthedenitrifyingbacteriumthaueraspmz1taccuratelypredictsdegradationofpollutantsandproductionofpolymers
AT celinajiang agenomescalemetabolicmodelforthedenitrifyingbacteriumthaueraspmz1taccuratelypredictsdegradationofpollutantsandproductionofpolymers
AT anuragpassi agenomescalemetabolicmodelforthedenitrifyingbacteriumthaueraspmz1taccuratelypredictsdegradationofpollutantsandproductionofpolymers
AT deepanthiruppathy agenomescalemetabolicmodelforthedenitrifyingbacteriumthaueraspmz1taccuratelypredictsdegradationofpollutantsandproductionofpolymers
AT cristalzuniga agenomescalemetabolicmodelforthedenitrifyingbacteriumthaueraspmz1taccuratelypredictsdegradationofpollutantsandproductionofpolymers
AT camilaposadas agenomescalemetabolicmodelforthedenitrifyingbacteriumthaueraspmz1taccuratelypredictsdegradationofpollutantsandproductionofpolymers
AT alejandrozepeda agenomescalemetabolicmodelforthedenitrifyingbacteriumthaueraspmz1taccuratelypredictsdegradationofpollutantsandproductionofpolymers
AT karstenzengler agenomescalemetabolicmodelforthedenitrifyingbacteriumthaueraspmz1taccuratelypredictsdegradationofpollutantsandproductionofpolymers
AT diegoteccampos genomescalemetabolicmodelforthedenitrifyingbacteriumthaueraspmz1taccuratelypredictsdegradationofpollutantsandproductionofpolymers
AT juandtibochabonilla genomescalemetabolicmodelforthedenitrifyingbacteriumthaueraspmz1taccuratelypredictsdegradationofpollutantsandproductionofpolymers
AT celinajiang genomescalemetabolicmodelforthedenitrifyingbacteriumthaueraspmz1taccuratelypredictsdegradationofpollutantsandproductionofpolymers
AT anuragpassi genomescalemetabolicmodelforthedenitrifyingbacteriumthaueraspmz1taccuratelypredictsdegradationofpollutantsandproductionofpolymers
AT deepanthiruppathy genomescalemetabolicmodelforthedenitrifyingbacteriumthaueraspmz1taccuratelypredictsdegradationofpollutantsandproductionofpolymers
AT cristalzuniga genomescalemetabolicmodelforthedenitrifyingbacteriumthaueraspmz1taccuratelypredictsdegradationofpollutantsandproductionofpolymers
AT camilaposadas genomescalemetabolicmodelforthedenitrifyingbacteriumthaueraspmz1taccuratelypredictsdegradationofpollutantsandproductionofpolymers
AT alejandrozepeda genomescalemetabolicmodelforthedenitrifyingbacteriumthaueraspmz1taccuratelypredictsdegradationofpollutantsandproductionofpolymers
AT karstenzengler genomescalemetabolicmodelforthedenitrifyingbacteriumthaueraspmz1taccuratelypredictsdegradationofpollutantsandproductionofpolymers