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Cell-Free Characterization of Coherent Feed-Forward Loop-Based Synthetic Genetic Circuits

[Image: see text] Regulatory pathways inside living cells employ feed-forward architectures to fulfill essential signal processing functions that aid in the interpretation of various types of inputs through noise-filtering, fold-change detection and adaptation. Although it has been demonstrated comp...

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Autores principales: Pieters, Pascal A., Nathalia, Bryan L., van der Linden, Ardjan J., Yin, Peng, Kim, Jongmin, Huck, Wilhelm T. S., de Greef, Tom F. A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2021
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8218305/
https://www.ncbi.nlm.nih.gov/pubmed/34061505
http://dx.doi.org/10.1021/acssynbio.1c00024
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author Pieters, Pascal A.
Nathalia, Bryan L.
van der Linden, Ardjan J.
Yin, Peng
Kim, Jongmin
Huck, Wilhelm T. S.
de Greef, Tom F. A.
author_facet Pieters, Pascal A.
Nathalia, Bryan L.
van der Linden, Ardjan J.
Yin, Peng
Kim, Jongmin
Huck, Wilhelm T. S.
de Greef, Tom F. A.
author_sort Pieters, Pascal A.
collection PubMed
description [Image: see text] Regulatory pathways inside living cells employ feed-forward architectures to fulfill essential signal processing functions that aid in the interpretation of various types of inputs through noise-filtering, fold-change detection and adaptation. Although it has been demonstrated computationally that a coherent feed-forward loop (CFFL) can function as noise filter, a property essential to decoding complex temporal signals, this motif has not been extensively characterized experimentally or integrated into larger networks. Here we use post-transcriptional regulation to implement and characterize a synthetic CFFL in an Escherichia coli cell-free transcription-translation system and build larger composite feed-forward architectures. We employ microfluidic flow reactors to probe the response of the CFFL circuit using both persistent and short, noise-like inputs and analyze the influence of different circuit components on the steady-state and dynamics of the output. We demonstrate that our synthetic CFFL implementation can reliably repress background activity compared to a reference circuit, but displays low potential as a temporal filter, and validate these findings using a computational model. Our results offer practical insight into the putative noise-filtering behavior of CFFLs and show that this motif can be used to mitigate leakage and increase the fold-change of the output of synthetic genetic circuits.
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spelling pubmed-82183052021-06-22 Cell-Free Characterization of Coherent Feed-Forward Loop-Based Synthetic Genetic Circuits Pieters, Pascal A. Nathalia, Bryan L. van der Linden, Ardjan J. Yin, Peng Kim, Jongmin Huck, Wilhelm T. S. de Greef, Tom F. A. ACS Synth Biol [Image: see text] Regulatory pathways inside living cells employ feed-forward architectures to fulfill essential signal processing functions that aid in the interpretation of various types of inputs through noise-filtering, fold-change detection and adaptation. Although it has been demonstrated computationally that a coherent feed-forward loop (CFFL) can function as noise filter, a property essential to decoding complex temporal signals, this motif has not been extensively characterized experimentally or integrated into larger networks. Here we use post-transcriptional regulation to implement and characterize a synthetic CFFL in an Escherichia coli cell-free transcription-translation system and build larger composite feed-forward architectures. We employ microfluidic flow reactors to probe the response of the CFFL circuit using both persistent and short, noise-like inputs and analyze the influence of different circuit components on the steady-state and dynamics of the output. We demonstrate that our synthetic CFFL implementation can reliably repress background activity compared to a reference circuit, but displays low potential as a temporal filter, and validate these findings using a computational model. Our results offer practical insight into the putative noise-filtering behavior of CFFLs and show that this motif can be used to mitigate leakage and increase the fold-change of the output of synthetic genetic circuits. American Chemical Society 2021-06-01 2021-06-18 /pmc/articles/PMC8218305/ /pubmed/34061505 http://dx.doi.org/10.1021/acssynbio.1c00024 Text en © 2021 The Authors. Published by American Chemical Society Permits non-commercial access and re-use, provided that author attribution and integrity are maintained; but does not permit creation of adaptations or other derivative works (https://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Pieters, Pascal A.
Nathalia, Bryan L.
van der Linden, Ardjan J.
Yin, Peng
Kim, Jongmin
Huck, Wilhelm T. S.
de Greef, Tom F. A.
Cell-Free Characterization of Coherent Feed-Forward Loop-Based Synthetic Genetic Circuits
title Cell-Free Characterization of Coherent Feed-Forward Loop-Based Synthetic Genetic Circuits
title_full Cell-Free Characterization of Coherent Feed-Forward Loop-Based Synthetic Genetic Circuits
title_fullStr Cell-Free Characterization of Coherent Feed-Forward Loop-Based Synthetic Genetic Circuits
title_full_unstemmed Cell-Free Characterization of Coherent Feed-Forward Loop-Based Synthetic Genetic Circuits
title_short Cell-Free Characterization of Coherent Feed-Forward Loop-Based Synthetic Genetic Circuits
title_sort cell-free characterization of coherent feed-forward loop-based synthetic genetic circuits
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8218305/
https://www.ncbi.nlm.nih.gov/pubmed/34061505
http://dx.doi.org/10.1021/acssynbio.1c00024
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