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GSMN-ML- a genome scale metabolic network reconstruction of the obligate human pathogen Mycobacterium leprae

Leprosy, caused by Mycobacterium leprae, has plagued humanity for thousands of years and continues to cause morbidity, disability and stigmatization in two to three million people today. Although effective treatment is available, the disease incidence has remained approximately constant for decades...

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Autores principales: Borah, Khushboo, Kearney, Jacque-Lucca, Banerjee, Ruma, Vats, Pankaj, Wu, Huihai, Dahale, Sonal, Manjari Kasibhatla, Sunitha, Joshi, Rajendra, Bonde, Bhushan, Ojo, Olabisi, Lahiri, Ramanuj, Williams, Diana L., McFadden, Johnjoe
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7365477/
https://www.ncbi.nlm.nih.gov/pubmed/32628669
http://dx.doi.org/10.1371/journal.pntd.0007871
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author Borah, Khushboo
Kearney, Jacque-Lucca
Banerjee, Ruma
Vats, Pankaj
Wu, Huihai
Dahale, Sonal
Manjari Kasibhatla, Sunitha
Joshi, Rajendra
Bonde, Bhushan
Ojo, Olabisi
Lahiri, Ramanuj
Williams, Diana L.
McFadden, Johnjoe
author_facet Borah, Khushboo
Kearney, Jacque-Lucca
Banerjee, Ruma
Vats, Pankaj
Wu, Huihai
Dahale, Sonal
Manjari Kasibhatla, Sunitha
Joshi, Rajendra
Bonde, Bhushan
Ojo, Olabisi
Lahiri, Ramanuj
Williams, Diana L.
McFadden, Johnjoe
author_sort Borah, Khushboo
collection PubMed
description Leprosy, caused by Mycobacterium leprae, has plagued humanity for thousands of years and continues to cause morbidity, disability and stigmatization in two to three million people today. Although effective treatment is available, the disease incidence has remained approximately constant for decades so new approaches, such as vaccine or new drugs, are urgently needed for control. Research is however hampered by the pathogen’s obligate intracellular lifestyle and the fact that it has never been grown in vitro. Consequently, despite the availability of its complete genome sequence, fundamental questions regarding the biology of the pathogen, such as its metabolism, remain largely unexplored. In order to explore the metabolism of the leprosy bacillus with a long-term aim of developing a medium to grow the pathogen in vitro, we reconstructed an in silico genome scale metabolic model of the bacillus, GSMN-ML. The model was used to explore the growth and biomass production capabilities of the pathogen with a range of nutrient sources, such as amino acids, glucose, glycerol and metabolic intermediates. We also used the model to analyze RNA-seq data from M. leprae grown in mouse foot pads, and performed Differential Producibility Analysis to identify metabolic pathways that appear to be active during intracellular growth of the pathogen, which included pathways for central carbon metabolism, co-factor, lipids, amino acids, nucleotides and cell wall synthesis. The GSMN-ML model is thereby a useful in silico tool that can be used to explore the metabolism of the leprosy bacillus, analyze functional genomic experimental data, generate predictions of nutrients required for growth of the bacillus in vitro and identify novel drug targets.
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spelling pubmed-73654772020-07-27 GSMN-ML- a genome scale metabolic network reconstruction of the obligate human pathogen Mycobacterium leprae Borah, Khushboo Kearney, Jacque-Lucca Banerjee, Ruma Vats, Pankaj Wu, Huihai Dahale, Sonal Manjari Kasibhatla, Sunitha Joshi, Rajendra Bonde, Bhushan Ojo, Olabisi Lahiri, Ramanuj Williams, Diana L. McFadden, Johnjoe PLoS Negl Trop Dis Research Article Leprosy, caused by Mycobacterium leprae, has plagued humanity for thousands of years and continues to cause morbidity, disability and stigmatization in two to three million people today. Although effective treatment is available, the disease incidence has remained approximately constant for decades so new approaches, such as vaccine or new drugs, are urgently needed for control. Research is however hampered by the pathogen’s obligate intracellular lifestyle and the fact that it has never been grown in vitro. Consequently, despite the availability of its complete genome sequence, fundamental questions regarding the biology of the pathogen, such as its metabolism, remain largely unexplored. In order to explore the metabolism of the leprosy bacillus with a long-term aim of developing a medium to grow the pathogen in vitro, we reconstructed an in silico genome scale metabolic model of the bacillus, GSMN-ML. The model was used to explore the growth and biomass production capabilities of the pathogen with a range of nutrient sources, such as amino acids, glucose, glycerol and metabolic intermediates. We also used the model to analyze RNA-seq data from M. leprae grown in mouse foot pads, and performed Differential Producibility Analysis to identify metabolic pathways that appear to be active during intracellular growth of the pathogen, which included pathways for central carbon metabolism, co-factor, lipids, amino acids, nucleotides and cell wall synthesis. The GSMN-ML model is thereby a useful in silico tool that can be used to explore the metabolism of the leprosy bacillus, analyze functional genomic experimental data, generate predictions of nutrients required for growth of the bacillus in vitro and identify novel drug targets. Public Library of Science 2020-07-06 /pmc/articles/PMC7365477/ /pubmed/32628669 http://dx.doi.org/10.1371/journal.pntd.0007871 Text en https://creativecommons.org/publicdomain/zero/1.0/ This is an open access article, free of all copyright, and may be freely reproduced, distributed, transmitted, modified, built upon, or otherwise used by anyone for any lawful purpose. The work is made available under the Creative Commons CC0 (https://creativecommons.org/publicdomain/zero/1.0/) public domain dedication.
spellingShingle Research Article
Borah, Khushboo
Kearney, Jacque-Lucca
Banerjee, Ruma
Vats, Pankaj
Wu, Huihai
Dahale, Sonal
Manjari Kasibhatla, Sunitha
Joshi, Rajendra
Bonde, Bhushan
Ojo, Olabisi
Lahiri, Ramanuj
Williams, Diana L.
McFadden, Johnjoe
GSMN-ML- a genome scale metabolic network reconstruction of the obligate human pathogen Mycobacterium leprae
title GSMN-ML- a genome scale metabolic network reconstruction of the obligate human pathogen Mycobacterium leprae
title_full GSMN-ML- a genome scale metabolic network reconstruction of the obligate human pathogen Mycobacterium leprae
title_fullStr GSMN-ML- a genome scale metabolic network reconstruction of the obligate human pathogen Mycobacterium leprae
title_full_unstemmed GSMN-ML- a genome scale metabolic network reconstruction of the obligate human pathogen Mycobacterium leprae
title_short GSMN-ML- a genome scale metabolic network reconstruction of the obligate human pathogen Mycobacterium leprae
title_sort gsmn-ml- a genome scale metabolic network reconstruction of the obligate human pathogen mycobacterium leprae
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7365477/
https://www.ncbi.nlm.nih.gov/pubmed/32628669
http://dx.doi.org/10.1371/journal.pntd.0007871
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