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Updated: Jun 9, 2025

Saccharomyces cerevisiae Exponential Growth Kinetics in Batch Culture to Analyze Respiratory and Fermentative Metabolism
Published on: September 30, 2018
Metabolic modelling as a powerful tool to identify critical components of Pneumocystis growth medium
Olga A Nev1,2, Elena Zamaraeva3, Romain De Oliveira4
1Department of Biosciences, Faculty of Health and Life Sciences, University of Exeter, Exeter, United Kingdom.
Abstract:
Establishing suitable in vitro culture conditions for microorganisms is crucial for dissecting their biology and empowering potential applications. However, a significant number of bacterial and fungal species, including Pneumocystis jirovecii, remain unculturable, hampering research efforts. P. jirovecii is a deadly pathogen of humans that causes life-threatening pneumonia in immunocompromised individuals and transplant patients. Despite the major impact of Pneumocystis on human health, limited progress has been made in dissecting the pathobiology of this fungus. This is largely due to the fact that its experimental dissection has been constrained by the inability to culture the organism in vitro. We present a comprehensive in silico genome-scale metabolic model of Pneumocystis growth and metabolism, to identify metabolic requirements and imbalances that hinder growth in vitro. We utilise recently published genome data and available information in the literature as well as bioinformatics and software tools to develop and validate the model. In addition, we employ relaxed Flux Balance Analysis and Reinforcement Learning approaches to make predictions regarding metabolic fluxes and to identify critical components of the Pneumocystis growth medium. Our findings offer insights into the biology of Pneumocystis and provide a novel strategy to overcome the longstanding challenge of culturing this pathogen in vitro.
Insights
Researchers developed an in silico metabolic model to understand why Pneumocystis jirovecii, a fungus causing pneumonia, cannot be cultured. This model identifies key metabolic needs and imbalances, paving the way for in vitro cultivation of this deadly pathogen.
Area of Science:
- Computational biology
- Mycology
- Infectious disease research
Background:
- Pneumocystis jirovecii causes life-threatening pneumonia in immunocompromised individuals.
- The inability to culture P. jirovecii in vitro has severely limited research into its pathobiology.
- Understanding fungal metabolism is key to developing new treatments and applications.
Purpose of the Study:
- To create a genome-scale metabolic model of P. jirovecii.
- To identify metabolic requirements and imbalances hindering in vitro growth.
- To propose a novel strategy for culturing P. jirovecii.
Main Methods:
- Utilized genome data and literature information.
- Developed and validated a comprehensive in silico metabolic model.
- Employed Flux Balance Analysis and Reinforcement Learning for metabolic flux prediction.
Main Results:
- Identified specific metabolic requirements and imbalances limiting P. jirovecii growth in vitro.
- The model provides insights into the fungus's metabolic network.
- Predicted critical components for a P. jirovecii growth medium.
Conclusions:
- The in silico metabolic model offers a powerful tool for studying P. jirovecii.
- This approach provides a novel strategy to overcome the challenge of culturing this pathogen.
- Findings advance understanding of P. jirovecii biology and potential therapeutic targets.
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