Cargando…

A Formalized Design Process for Bacterial Consortia That Perform Logic Computing

The concept of microbial consortia is of great attractiveness in synthetic biology. Despite of all its benefits, however, there are still problems remaining for large-scaled multicellular gene circuits, for example, how to reliably design and distribute the circuits in microbial consortia with limit...

Descripción completa

Detalles Bibliográficos
Autores principales: Ji, Weiyue, Shi, Handuo, Zhang, Haoqian, Sun, Rui, Xi, Jingyi, Wen, Dingqiao, Feng, Jingchen, Chen, Yiwei, Qin, Xiao, Ma, Yanrong, Luo, Wenhan, Deng, Linna, Lin, Hanchi, Yu, Ruofan, Ouyang, Qi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3585339/
https://www.ncbi.nlm.nih.gov/pubmed/23468999
http://dx.doi.org/10.1371/journal.pone.0057482
_version_ 1782261150659903488
author Ji, Weiyue
Shi, Handuo
Zhang, Haoqian
Sun, Rui
Xi, Jingyi
Wen, Dingqiao
Feng, Jingchen
Chen, Yiwei
Qin, Xiao
Ma, Yanrong
Luo, Wenhan
Deng, Linna
Lin, Hanchi
Yu, Ruofan
Ouyang, Qi
author_facet Ji, Weiyue
Shi, Handuo
Zhang, Haoqian
Sun, Rui
Xi, Jingyi
Wen, Dingqiao
Feng, Jingchen
Chen, Yiwei
Qin, Xiao
Ma, Yanrong
Luo, Wenhan
Deng, Linna
Lin, Hanchi
Yu, Ruofan
Ouyang, Qi
author_sort Ji, Weiyue
collection PubMed
description The concept of microbial consortia is of great attractiveness in synthetic biology. Despite of all its benefits, however, there are still problems remaining for large-scaled multicellular gene circuits, for example, how to reliably design and distribute the circuits in microbial consortia with limited number of well-behaved genetic modules and wiring quorum-sensing molecules. To manage such problem, here we propose a formalized design process: (i) determine the basic logic units (AND, OR and NOT gates) based on mathematical and biological considerations; (ii) establish rules to search and distribute simplest logic design; (iii) assemble assigned basic logic units in each logic operating cell; and (iv) fine-tune the circuiting interface between logic operators. We in silico analyzed gene circuits with inputs ranging from two to four, comparing our method with the pre-existing ones. Results showed that this formalized design process is more feasible concerning numbers of cells required. Furthermore, as a proof of principle, an Escherichia coli consortium that performs XOR function, a typical complex computing operation, was designed. The construction and characterization of logic operators is independent of “wiring” and provides predictive information for fine-tuning. This formalized design process provides guidance for the design of microbial consortia that perform distributed biological computation.
format Online
Article
Text
id pubmed-3585339
institution National Center for Biotechnology Information
language English
publishDate 2013
publisher Public Library of Science
record_format MEDLINE/PubMed
spelling pubmed-35853392013-03-06 A Formalized Design Process for Bacterial Consortia That Perform Logic Computing Ji, Weiyue Shi, Handuo Zhang, Haoqian Sun, Rui Xi, Jingyi Wen, Dingqiao Feng, Jingchen Chen, Yiwei Qin, Xiao Ma, Yanrong Luo, Wenhan Deng, Linna Lin, Hanchi Yu, Ruofan Ouyang, Qi PLoS One Research Article The concept of microbial consortia is of great attractiveness in synthetic biology. Despite of all its benefits, however, there are still problems remaining for large-scaled multicellular gene circuits, for example, how to reliably design and distribute the circuits in microbial consortia with limited number of well-behaved genetic modules and wiring quorum-sensing molecules. To manage such problem, here we propose a formalized design process: (i) determine the basic logic units (AND, OR and NOT gates) based on mathematical and biological considerations; (ii) establish rules to search and distribute simplest logic design; (iii) assemble assigned basic logic units in each logic operating cell; and (iv) fine-tune the circuiting interface between logic operators. We in silico analyzed gene circuits with inputs ranging from two to four, comparing our method with the pre-existing ones. Results showed that this formalized design process is more feasible concerning numbers of cells required. Furthermore, as a proof of principle, an Escherichia coli consortium that performs XOR function, a typical complex computing operation, was designed. The construction and characterization of logic operators is independent of “wiring” and provides predictive information for fine-tuning. This formalized design process provides guidance for the design of microbial consortia that perform distributed biological computation. Public Library of Science 2013-02-28 /pmc/articles/PMC3585339/ /pubmed/23468999 http://dx.doi.org/10.1371/journal.pone.0057482 Text en © 2013 Ji 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 Research Article
Ji, Weiyue
Shi, Handuo
Zhang, Haoqian
Sun, Rui
Xi, Jingyi
Wen, Dingqiao
Feng, Jingchen
Chen, Yiwei
Qin, Xiao
Ma, Yanrong
Luo, Wenhan
Deng, Linna
Lin, Hanchi
Yu, Ruofan
Ouyang, Qi
A Formalized Design Process for Bacterial Consortia That Perform Logic Computing
title A Formalized Design Process for Bacterial Consortia That Perform Logic Computing
title_full A Formalized Design Process for Bacterial Consortia That Perform Logic Computing
title_fullStr A Formalized Design Process for Bacterial Consortia That Perform Logic Computing
title_full_unstemmed A Formalized Design Process for Bacterial Consortia That Perform Logic Computing
title_short A Formalized Design Process for Bacterial Consortia That Perform Logic Computing
title_sort formalized design process for bacterial consortia that perform logic computing
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3585339/
https://www.ncbi.nlm.nih.gov/pubmed/23468999
http://dx.doi.org/10.1371/journal.pone.0057482
work_keys_str_mv AT jiweiyue aformalizeddesignprocessforbacterialconsortiathatperformlogiccomputing
AT shihanduo aformalizeddesignprocessforbacterialconsortiathatperformlogiccomputing
AT zhanghaoqian aformalizeddesignprocessforbacterialconsortiathatperformlogiccomputing
AT sunrui aformalizeddesignprocessforbacterialconsortiathatperformlogiccomputing
AT xijingyi aformalizeddesignprocessforbacterialconsortiathatperformlogiccomputing
AT wendingqiao aformalizeddesignprocessforbacterialconsortiathatperformlogiccomputing
AT fengjingchen aformalizeddesignprocessforbacterialconsortiathatperformlogiccomputing
AT chenyiwei aformalizeddesignprocessforbacterialconsortiathatperformlogiccomputing
AT qinxiao aformalizeddesignprocessforbacterialconsortiathatperformlogiccomputing
AT mayanrong aformalizeddesignprocessforbacterialconsortiathatperformlogiccomputing
AT luowenhan aformalizeddesignprocessforbacterialconsortiathatperformlogiccomputing
AT denglinna aformalizeddesignprocessforbacterialconsortiathatperformlogiccomputing
AT linhanchi aformalizeddesignprocessforbacterialconsortiathatperformlogiccomputing
AT yuruofan aformalizeddesignprocessforbacterialconsortiathatperformlogiccomputing
AT ouyangqi aformalizeddesignprocessforbacterialconsortiathatperformlogiccomputing
AT jiweiyue formalizeddesignprocessforbacterialconsortiathatperformlogiccomputing
AT shihanduo formalizeddesignprocessforbacterialconsortiathatperformlogiccomputing
AT zhanghaoqian formalizeddesignprocessforbacterialconsortiathatperformlogiccomputing
AT sunrui formalizeddesignprocessforbacterialconsortiathatperformlogiccomputing
AT xijingyi formalizeddesignprocessforbacterialconsortiathatperformlogiccomputing
AT wendingqiao formalizeddesignprocessforbacterialconsortiathatperformlogiccomputing
AT fengjingchen formalizeddesignprocessforbacterialconsortiathatperformlogiccomputing
AT chenyiwei formalizeddesignprocessforbacterialconsortiathatperformlogiccomputing
AT qinxiao formalizeddesignprocessforbacterialconsortiathatperformlogiccomputing
AT mayanrong formalizeddesignprocessforbacterialconsortiathatperformlogiccomputing
AT luowenhan formalizeddesignprocessforbacterialconsortiathatperformlogiccomputing
AT denglinna formalizeddesignprocessforbacterialconsortiathatperformlogiccomputing
AT linhanchi formalizeddesignprocessforbacterialconsortiathatperformlogiccomputing
AT yuruofan formalizeddesignprocessforbacterialconsortiathatperformlogiccomputing
AT ouyangqi formalizeddesignprocessforbacterialconsortiathatperformlogiccomputing