Design Principles of Biological Oscillators through Optimization: Forward and Reverse Analysis.

From cyanobacteria to human, sustained oscillations coordinate important biological functions. Although much has been learned concerning the sophisticated molecular mechanisms underlying biological oscillators, design principles linking structure and functional behavior are not yet fully understood....

Full description

Bibliographic Details
Main Authors: Irene Otero-Muras, Julio R Banga
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2016-01-01
Series:PLoS ONE
Online Access:http://europepmc.org/articles/PMC5158198?pdf=render
id doaj-6bcdfafc5e1c4a718e9d18d82e3afa25
record_format Article
spelling doaj-6bcdfafc5e1c4a718e9d18d82e3afa252020-11-25T01:45:20ZengPublic Library of Science (PLoS)PLoS ONE1932-62032016-01-011112e016686710.1371/journal.pone.0166867Design Principles of Biological Oscillators through Optimization: Forward and Reverse Analysis.Irene Otero-MurasJulio R BangaFrom cyanobacteria to human, sustained oscillations coordinate important biological functions. Although much has been learned concerning the sophisticated molecular mechanisms underlying biological oscillators, design principles linking structure and functional behavior are not yet fully understood. Here we explore design principles of biological oscillators from a multiobjective optimization perspective, taking into account the trade-offs between conflicting performance goals or demands. We develop a comprehensive tool for automated design of oscillators, based on multicriteria global optimization that allows two modes: (i) the automatic design (forward problem) and (ii) the inference of design principles (reverse analysis problem). From the perspective of synthetic biology, the forward mode allows the solution of design problems that mimic some of the desirable properties appearing in natural oscillators. The reverse analysis mode facilitates a systematic exploration of the design space based on Pareto optimality concepts. The method is illustrated with two case studies: the automatic design of synthetic oscillators from a library of biological parts, and the exploration of design principles in 3-gene oscillatory systems.http://europepmc.org/articles/PMC5158198?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Irene Otero-Muras
Julio R Banga
spellingShingle Irene Otero-Muras
Julio R Banga
Design Principles of Biological Oscillators through Optimization: Forward and Reverse Analysis.
PLoS ONE
author_facet Irene Otero-Muras
Julio R Banga
author_sort Irene Otero-Muras
title Design Principles of Biological Oscillators through Optimization: Forward and Reverse Analysis.
title_short Design Principles of Biological Oscillators through Optimization: Forward and Reverse Analysis.
title_full Design Principles of Biological Oscillators through Optimization: Forward and Reverse Analysis.
title_fullStr Design Principles of Biological Oscillators through Optimization: Forward and Reverse Analysis.
title_full_unstemmed Design Principles of Biological Oscillators through Optimization: Forward and Reverse Analysis.
title_sort design principles of biological oscillators through optimization: forward and reverse analysis.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2016-01-01
description From cyanobacteria to human, sustained oscillations coordinate important biological functions. Although much has been learned concerning the sophisticated molecular mechanisms underlying biological oscillators, design principles linking structure and functional behavior are not yet fully understood. Here we explore design principles of biological oscillators from a multiobjective optimization perspective, taking into account the trade-offs between conflicting performance goals or demands. We develop a comprehensive tool for automated design of oscillators, based on multicriteria global optimization that allows two modes: (i) the automatic design (forward problem) and (ii) the inference of design principles (reverse analysis problem). From the perspective of synthetic biology, the forward mode allows the solution of design problems that mimic some of the desirable properties appearing in natural oscillators. The reverse analysis mode facilitates a systematic exploration of the design space based on Pareto optimality concepts. The method is illustrated with two case studies: the automatic design of synthetic oscillators from a library of biological parts, and the exploration of design principles in 3-gene oscillatory systems.
url http://europepmc.org/articles/PMC5158198?pdf=render
work_keys_str_mv AT ireneoteromuras designprinciplesofbiologicaloscillatorsthroughoptimizationforwardandreverseanalysis
AT juliorbanga designprinciplesofbiologicaloscillatorsthroughoptimizationforwardandreverseanalysis
_version_ 1725023491805151232