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research article

Cell-free gene-regulatory network engineering with synthetic transcription factors

Swank, Zoe  
•
Laohakunakorn, Nadanai  
•
Maerkl, Sebastian J.  
March 26, 2019
Proceedings Of The National Academy Of Sciences Of The United States Of America (PNAS)

Gene-regulatory networks are ubiquitous in nature and critical for bottom-up engineering of synthetic networks. Transcriptional repression is a fundamental function that can be tuned at the level of DNA, protein, and cooperative protein-protein interactions, necessitating high-throughput experimental approaches for in-depth characterization. Here, we used a cell-free system in combination with a high-throughput microfluidic device to comprehensively study the different tuning mechanisms of a synthetic zinc-finger repressor library, whose affinity and co-operativity can be rationally engineered. The device is integrated into a comprehensive workflow that includes determination of transcription-factor binding-energy landscapes and mechanistic modeling, enabling us to generate a library of well-characterized synthetic transcription factors and corresponding promoters, which we then used to build gene-regulatory networks de novo. The well-characterized synthetic parts and insights gained should be useful for rationally engineering gene-regulatory networks and for studying the biophysics of transcriptional regulation.

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Type
research article
DOI
10.1073/pnas.1816591116
Web of Science ID

WOS:000462382800015

Author(s)
Swank, Zoe  
Laohakunakorn, Nadanai  
Maerkl, Sebastian J.  
Date Issued

2019-03-26

Publisher

National Academy of Sciences

Published in
Proceedings Of The National Academy Of Sciences Of The United States Of America (PNAS)
Volume

116

Issue

13

Start page

5892

End page

5901

Subjects

Multidisciplinary Sciences

•

Science & Technology - Other Topics

•

cell-free synthetic biology

•

biophysics

•

transcriptional regulation

•

gene regulatory network

•

synthetic transcription factors

•

dna-binding specificity

•

structure-based design

•

zinc fingers

•

escherichia-coli

•

phage display

•

protein

•

logic

•

expression

•

principles

•

framework

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
LBNC  
Available on Infoscience
April 10, 2019
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/155974
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