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Summary of the DREAM8 Parameter Estimation Challenge: Toward Parameter Identification for Whole-Cell Models

Whole-cell models that explicitly represent all cellular components at the molecular level have the potential to predict phenotype from genotype. However, even for simple bacteria, whole-cell models will contain thousands of parameters, many of which are poorly characterized or unknown. New algorith...

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Autores principales: Karr, Jonathan R., Williams, Alex H., Zucker, Jeremy D., Raue, Andreas, Steiert, Bernhard, Timmer, Jens, Kreutz, Clemens, Wilkinson, Simon, Allgood, Brandon A., Bot, Brian M., Hoff, Bruce R., Kellen, Michael R., Covert, Markus W., Stolovitzky, Gustavo A., Meyer, Pablo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4447414/
https://www.ncbi.nlm.nih.gov/pubmed/26020786
http://dx.doi.org/10.1371/journal.pcbi.1004096
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author Karr, Jonathan R.
Williams, Alex H.
Zucker, Jeremy D.
Raue, Andreas
Steiert, Bernhard
Timmer, Jens
Kreutz, Clemens
Wilkinson, Simon
Allgood, Brandon A.
Bot, Brian M.
Hoff, Bruce R.
Kellen, Michael R.
Covert, Markus W.
Stolovitzky, Gustavo A.
Meyer, Pablo
author_facet Karr, Jonathan R.
Williams, Alex H.
Zucker, Jeremy D.
Raue, Andreas
Steiert, Bernhard
Timmer, Jens
Kreutz, Clemens
Wilkinson, Simon
Allgood, Brandon A.
Bot, Brian M.
Hoff, Bruce R.
Kellen, Michael R.
Covert, Markus W.
Stolovitzky, Gustavo A.
Meyer, Pablo
author_sort Karr, Jonathan R.
collection PubMed
description Whole-cell models that explicitly represent all cellular components at the molecular level have the potential to predict phenotype from genotype. However, even for simple bacteria, whole-cell models will contain thousands of parameters, many of which are poorly characterized or unknown. New algorithms are needed to estimate these parameters and enable researchers to build increasingly comprehensive models. We organized the Dialogue for Reverse Engineering Assessments and Methods (DREAM) 8 Whole-Cell Parameter Estimation Challenge to develop new parameter estimation algorithms for whole-cell models. We asked participants to identify a subset of parameters of a whole-cell model given the model’s structure and in silico “experimental” data. Here we describe the challenge, the best performing methods, and new insights into the identifiability of whole-cell models. We also describe several valuable lessons we learned toward improving future challenges. Going forward, we believe that collaborative efforts supported by inexpensive cloud computing have the potential to solve whole-cell model parameter estimation.
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spelling pubmed-44474142015-06-09 Summary of the DREAM8 Parameter Estimation Challenge: Toward Parameter Identification for Whole-Cell Models Karr, Jonathan R. Williams, Alex H. Zucker, Jeremy D. Raue, Andreas Steiert, Bernhard Timmer, Jens Kreutz, Clemens Wilkinson, Simon Allgood, Brandon A. Bot, Brian M. Hoff, Bruce R. Kellen, Michael R. Covert, Markus W. Stolovitzky, Gustavo A. Meyer, Pablo PLoS Comput Biol Perspective Whole-cell models that explicitly represent all cellular components at the molecular level have the potential to predict phenotype from genotype. However, even for simple bacteria, whole-cell models will contain thousands of parameters, many of which are poorly characterized or unknown. New algorithms are needed to estimate these parameters and enable researchers to build increasingly comprehensive models. We organized the Dialogue for Reverse Engineering Assessments and Methods (DREAM) 8 Whole-Cell Parameter Estimation Challenge to develop new parameter estimation algorithms for whole-cell models. We asked participants to identify a subset of parameters of a whole-cell model given the model’s structure and in silico “experimental” data. Here we describe the challenge, the best performing methods, and new insights into the identifiability of whole-cell models. We also describe several valuable lessons we learned toward improving future challenges. Going forward, we believe that collaborative efforts supported by inexpensive cloud computing have the potential to solve whole-cell model parameter estimation. Public Library of Science 2015-05-28 /pmc/articles/PMC4447414/ /pubmed/26020786 http://dx.doi.org/10.1371/journal.pcbi.1004096 Text en © 2015 Karr et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Perspective
Karr, Jonathan R.
Williams, Alex H.
Zucker, Jeremy D.
Raue, Andreas
Steiert, Bernhard
Timmer, Jens
Kreutz, Clemens
Wilkinson, Simon
Allgood, Brandon A.
Bot, Brian M.
Hoff, Bruce R.
Kellen, Michael R.
Covert, Markus W.
Stolovitzky, Gustavo A.
Meyer, Pablo
Summary of the DREAM8 Parameter Estimation Challenge: Toward Parameter Identification for Whole-Cell Models
title Summary of the DREAM8 Parameter Estimation Challenge: Toward Parameter Identification for Whole-Cell Models
title_full Summary of the DREAM8 Parameter Estimation Challenge: Toward Parameter Identification for Whole-Cell Models
title_fullStr Summary of the DREAM8 Parameter Estimation Challenge: Toward Parameter Identification for Whole-Cell Models
title_full_unstemmed Summary of the DREAM8 Parameter Estimation Challenge: Toward Parameter Identification for Whole-Cell Models
title_short Summary of the DREAM8 Parameter Estimation Challenge: Toward Parameter Identification for Whole-Cell Models
title_sort summary of the dream8 parameter estimation challenge: toward parameter identification for whole-cell models
topic Perspective
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4447414/
https://www.ncbi.nlm.nih.gov/pubmed/26020786
http://dx.doi.org/10.1371/journal.pcbi.1004096
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