Keyword search (4,163 papers available)

"Kwan DH" Authored Publications:

Title Authors PubMed ID
1 Functional and structural characterization of an IclR family transcription factor for the development of dicarboxylic acid biosensors Pham C; Nasr MA; Skarina T; Di Leo R; Kwan DH; Martin VJJ; Stogios PJ; Mahadevan R; Savchenko A; 38696354
BIOLOGY
2 Divergent directed evolution of a TetR-type repressor towards aromatic molecules Nasr MA; Martin VJJ; Kwan DH; 37377432
BIOLOGY
3 A "biphasic glycosyltransferase high-throughput screen" identifies novel anthraquinone glycosides in the diversification of phenolic natural products Mohideen FI; Kwan DH; 36682498
CHEMBIOCHEM
4 Engineering the Enzyme Toolbox to Tailor Glycosylation in Small Molecule Natural Products and Protein Biologics Ouadhi S; López DMV; Mohideen FI; Kwan DH; 36444941
ENCS
5 A Versatile Transcription Factor Biosensor System Responsive to Multiple Aromatic and Indole Inducers Nasr MA; Timmins LR; Martin VJJ; Kwan DH; 35316041
CHEMBIOCHEM
6 In Vitro Reconstitution of the dTDP-l-Daunosamine Biosynthetic Pathway Provides Insights into Anthracycline Glycosylation Mohideen FI; Nguyen LH; Richard JD; Ouadhi S; Kwan DH; 34751552
CHEMBIOCHEM
7 Resources and Methods for Engineering "Designer" Glycan-Binding Proteins. Warkentin R, Kwan DH 33450899
CHEMBIOCHEM
8 Enzymatic Synthesis of a Fluorogenic Reporter Substrate and the Development of a High-Throughput Assay for Fucosyltransferase VIII Provide a Toolkit to Probe and Inhibit Core Fucosylation. Soroko M, Kwan DH 32441090
CHEMBIOCHEM
9 Structure-Guided Directed Evolution of Glycosidases: A Case Study in Engineering a Blood Group Antigen-Cleaving Enzyme. Kwan DH 28935105
CSFG

 

Title:A Versatile Transcription Factor Biosensor System Responsive to Multiple Aromatic and Indole Inducers
Authors:Nasr MATimmins LRMartin VJJKwan DH
Link:https://pubmed.ncbi.nlm.nih.gov/35316041/
DOI:10.1021/acssynbio.2c00063
Publication:ACS synthetic biology
Keywords:CmeRaTFaromaticsbiosensorgenetic circuitsindolessalicylic acid
PMID:35316041 Category: Date Added:2022-03-22
Dept Affiliation: CHEMBIOCHEM
1 Department of Biology, Centre for Applied Synthetic Biology, and Centre for Structural and Functional Genomics, Concordia University, Montréal, Quebec H4B 1R6, Canada.
2 PROTEO, Quebec Network for Research on Protein Function, Structure, and Engineering, Québec City, Quebec G1 V 0A6, Canada.
3 Department of Chemistry and Biochemistry, Concordia University, Montréal, Quebec H4B 1R6, Canada.

Description:

Allosteric transcription factor (aTF) biosensors are valuable tools for engineering microbes toward a multitude of applications in metabolic engineering, biotechnology, and synthetic biology. One of the challenges toward constructing functional and diverse biosensors in engineered microbes is the limited toolbox of identified and characterized aTFs. To overcome this, extensive bioprospecting of aTFs from sequencing databases, as well as aTF ligand-specificity engineering are essential in order to realize their full potential as biosensors for novel applications. In this work, using the TetR-family repressor CmeR from Campylobacter jejuni, we construct aTF genetic circuits that function as salicylate biosensors in the model organisms Escherichia coli and Saccharomyces cerevisiae. In addition to salicylate, we demonstrate the responsiveness of CmeR-regulated promoters to multiple aromatic and indole inducers. This relaxed ligand specificity of CmeR makes it a useful tool for detecting molecules in many metabolic engineering applications, as well as a good target for directed evolution to engineer proteins that are able to detect new and diverse chemistries.





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