BSim: an agent-based tool for modeling bacterial populations in systems and synthetic biology.

Large-scale collective behaviors such as synchronization and coordination spontaneously arise in many bacterial populations. With systems biology attempting to understand these phenomena, and synthetic biology opening up the possibility of engineering them for our own benefit, there is growing inter...

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Main Authors: Thomas E Gorochowski, Antoni Matyjaszkiewicz, Thomas Todd, Neeraj Oak, Kira Kowalska, Stephen Reid, Krasimira T Tsaneva-Atanasova, Nigel J Savery, Claire S Grierson, Mario di Bernardo
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2012-01-01
Series:PLoS ONE
Online Access:http://europepmc.org/articles/PMC3427305?pdf=render
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spelling doaj-175bc3f3b9cc45d7a1b4ad30bdedc17c2020-11-24T22:06:50ZengPublic Library of Science (PLoS)PLoS ONE1932-62032012-01-0178e4279010.1371/journal.pone.0042790BSim: an agent-based tool for modeling bacterial populations in systems and synthetic biology.Thomas E GorochowskiAntoni MatyjaszkiewiczThomas ToddNeeraj OakKira KowalskaStephen ReidKrasimira T Tsaneva-AtanasovaNigel J SaveryClaire S GriersonMario di BernardoLarge-scale collective behaviors such as synchronization and coordination spontaneously arise in many bacterial populations. With systems biology attempting to understand these phenomena, and synthetic biology opening up the possibility of engineering them for our own benefit, there is growing interest in how bacterial populations are best modeled. Here we introduce BSim, a highly flexible agent-based computational tool for analyzing the relationships between single-cell dynamics and population level features. BSim includes reference implementations of many bacterial traits to enable the quick development of new models partially built from existing ones. Unlike existing modeling tools, BSim fully considers spatial aspects of a model allowing for the description of intricate micro-scale structures, enabling the modeling of bacterial behavior in more realistic three-dimensional, complex environments. The new opportunities that BSim opens are illustrated through several diverse examples covering: spatial multicellular computing, modeling complex environments, population dynamics of the lac operon, and the synchronization of genetic oscillators. BSim is open source software that is freely available from http://bsim-bccs.sf.net and distributed under the Open Source Initiative (OSI) recognized MIT license. Developer documentation and a wide range of example simulations are also available from the website. BSim requires Java version 1.6 or higher.http://europepmc.org/articles/PMC3427305?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Thomas E Gorochowski
Antoni Matyjaszkiewicz
Thomas Todd
Neeraj Oak
Kira Kowalska
Stephen Reid
Krasimira T Tsaneva-Atanasova
Nigel J Savery
Claire S Grierson
Mario di Bernardo
spellingShingle Thomas E Gorochowski
Antoni Matyjaszkiewicz
Thomas Todd
Neeraj Oak
Kira Kowalska
Stephen Reid
Krasimira T Tsaneva-Atanasova
Nigel J Savery
Claire S Grierson
Mario di Bernardo
BSim: an agent-based tool for modeling bacterial populations in systems and synthetic biology.
PLoS ONE
author_facet Thomas E Gorochowski
Antoni Matyjaszkiewicz
Thomas Todd
Neeraj Oak
Kira Kowalska
Stephen Reid
Krasimira T Tsaneva-Atanasova
Nigel J Savery
Claire S Grierson
Mario di Bernardo
author_sort Thomas E Gorochowski
title BSim: an agent-based tool for modeling bacterial populations in systems and synthetic biology.
title_short BSim: an agent-based tool for modeling bacterial populations in systems and synthetic biology.
title_full BSim: an agent-based tool for modeling bacterial populations in systems and synthetic biology.
title_fullStr BSim: an agent-based tool for modeling bacterial populations in systems and synthetic biology.
title_full_unstemmed BSim: an agent-based tool for modeling bacterial populations in systems and synthetic biology.
title_sort bsim: an agent-based tool for modeling bacterial populations in systems and synthetic biology.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2012-01-01
description Large-scale collective behaviors such as synchronization and coordination spontaneously arise in many bacterial populations. With systems biology attempting to understand these phenomena, and synthetic biology opening up the possibility of engineering them for our own benefit, there is growing interest in how bacterial populations are best modeled. Here we introduce BSim, a highly flexible agent-based computational tool for analyzing the relationships between single-cell dynamics and population level features. BSim includes reference implementations of many bacterial traits to enable the quick development of new models partially built from existing ones. Unlike existing modeling tools, BSim fully considers spatial aspects of a model allowing for the description of intricate micro-scale structures, enabling the modeling of bacterial behavior in more realistic three-dimensional, complex environments. The new opportunities that BSim opens are illustrated through several diverse examples covering: spatial multicellular computing, modeling complex environments, population dynamics of the lac operon, and the synchronization of genetic oscillators. BSim is open source software that is freely available from http://bsim-bccs.sf.net and distributed under the Open Source Initiative (OSI) recognized MIT license. Developer documentation and a wide range of example simulations are also available from the website. BSim requires Java version 1.6 or higher.
url http://europepmc.org/articles/PMC3427305?pdf=render
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