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A Titratable Cell Lysis-on-Demand System for Droplet-Compartmentalized Ultrahigh-Throughput Screening in Functional Metagenomics and Directed Evolution

[Image: see text] Water-in-oil emulsion droplets are an attractive format for ultrahigh-throughput screening in functional metagenomics and directed evolution applications that allow libraries with more than 10(7) members to be characterized in a day. Single library members are compartmentalized in...

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Autores principales: Alex Wong, Che Fai, van Vliet, Liisa, Bhujbal, Swapnil Vilas, Guo, Chengzhi, Sletmoen, Marit, Stokke, Bjørn Torger, Hollfelder, Florian, Lale, Rahmi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2021
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8383311/
https://www.ncbi.nlm.nih.gov/pubmed/34260196
http://dx.doi.org/10.1021/acssynbio.1c00084
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author Alex Wong, Che Fai
van Vliet, Liisa
Bhujbal, Swapnil Vilas
Guo, Chengzhi
Sletmoen, Marit
Stokke, Bjørn Torger
Hollfelder, Florian
Lale, Rahmi
author_facet Alex Wong, Che Fai
van Vliet, Liisa
Bhujbal, Swapnil Vilas
Guo, Chengzhi
Sletmoen, Marit
Stokke, Bjørn Torger
Hollfelder, Florian
Lale, Rahmi
author_sort Alex Wong, Che Fai
collection PubMed
description [Image: see text] Water-in-oil emulsion droplets are an attractive format for ultrahigh-throughput screening in functional metagenomics and directed evolution applications that allow libraries with more than 10(7) members to be characterized in a day. Single library members are compartmentalized in droplets that are generated in microfluidic devices and tested for the presence of target biocatalysts. The target proteins can be produced intracellularly, for example, in bacterial hosts in-droplet cell lysis is therefore necessary to allow the enzymes to encounter the substrate to initiate an activity assay. Here, we present a titratable lysis-on-demand (LoD) system enabling the control of the cell lysis rate in Escherichia coli. We demonstrate that the rate of cell lysis can be controlled by adjusting the externally added inducer concentration. This LoD system is evaluated both at the population level (by optical density measurements) and at the single-cell level (on single-cell arrays and in alginate microbeads). Additionally, we validate the LoD system by droplet screening of a phosphotriesterase expressed from E. coli, with cell lysis triggered by inducer concentrations in the μM range. The LoD system yields sufficient release of the intracellularly produced enzymes to bring about a detectable quantity of product (measured by fluorescence in flow cytometry of double emulsions), while leaving viable cells for the downstream recovery of the genetic material.
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spelling pubmed-83833112021-08-31 A Titratable Cell Lysis-on-Demand System for Droplet-Compartmentalized Ultrahigh-Throughput Screening in Functional Metagenomics and Directed Evolution Alex Wong, Che Fai van Vliet, Liisa Bhujbal, Swapnil Vilas Guo, Chengzhi Sletmoen, Marit Stokke, Bjørn Torger Hollfelder, Florian Lale, Rahmi ACS Synth Biol [Image: see text] Water-in-oil emulsion droplets are an attractive format for ultrahigh-throughput screening in functional metagenomics and directed evolution applications that allow libraries with more than 10(7) members to be characterized in a day. Single library members are compartmentalized in droplets that are generated in microfluidic devices and tested for the presence of target biocatalysts. The target proteins can be produced intracellularly, for example, in bacterial hosts in-droplet cell lysis is therefore necessary to allow the enzymes to encounter the substrate to initiate an activity assay. Here, we present a titratable lysis-on-demand (LoD) system enabling the control of the cell lysis rate in Escherichia coli. We demonstrate that the rate of cell lysis can be controlled by adjusting the externally added inducer concentration. This LoD system is evaluated both at the population level (by optical density measurements) and at the single-cell level (on single-cell arrays and in alginate microbeads). Additionally, we validate the LoD system by droplet screening of a phosphotriesterase expressed from E. coli, with cell lysis triggered by inducer concentrations in the μM range. The LoD system yields sufficient release of the intracellularly produced enzymes to bring about a detectable quantity of product (measured by fluorescence in flow cytometry of double emulsions), while leaving viable cells for the downstream recovery of the genetic material. American Chemical Society 2021-07-14 2021-08-20 /pmc/articles/PMC8383311/ /pubmed/34260196 http://dx.doi.org/10.1021/acssynbio.1c00084 Text en © 2021 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by/4.0/Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Alex Wong, Che Fai
van Vliet, Liisa
Bhujbal, Swapnil Vilas
Guo, Chengzhi
Sletmoen, Marit
Stokke, Bjørn Torger
Hollfelder, Florian
Lale, Rahmi
A Titratable Cell Lysis-on-Demand System for Droplet-Compartmentalized Ultrahigh-Throughput Screening in Functional Metagenomics and Directed Evolution
title A Titratable Cell Lysis-on-Demand System for Droplet-Compartmentalized Ultrahigh-Throughput Screening in Functional Metagenomics and Directed Evolution
title_full A Titratable Cell Lysis-on-Demand System for Droplet-Compartmentalized Ultrahigh-Throughput Screening in Functional Metagenomics and Directed Evolution
title_fullStr A Titratable Cell Lysis-on-Demand System for Droplet-Compartmentalized Ultrahigh-Throughput Screening in Functional Metagenomics and Directed Evolution
title_full_unstemmed A Titratable Cell Lysis-on-Demand System for Droplet-Compartmentalized Ultrahigh-Throughput Screening in Functional Metagenomics and Directed Evolution
title_short A Titratable Cell Lysis-on-Demand System for Droplet-Compartmentalized Ultrahigh-Throughput Screening in Functional Metagenomics and Directed Evolution
title_sort titratable cell lysis-on-demand system for droplet-compartmentalized ultrahigh-throughput screening in functional metagenomics and directed evolution
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8383311/
https://www.ncbi.nlm.nih.gov/pubmed/34260196
http://dx.doi.org/10.1021/acssynbio.1c00084
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