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ACtivE: Assembly and CRISPR-Targeted in Vivo Editing for Yeast Genome Engineering Using Minimum Reagents and Time

[Image: see text] Thanks to its sophistication, the CRISPR/Cas system has been a widely used yeast genome editing method. However, CRISPR methods generally rely on preassembled DNAs and extra cloning steps to deliver gRNA, Cas protein, and donor DNA. These laborious steps might hinder its usefulness...

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Autores principales: Malcı, Koray, Jonguitud-Borrego, Nestor, van der Straten Waillet, Hugo, Puodžiu̅naitė, Urtė, Johnston, Emily J., Rosser, Susan J., Rios-Solis, Leonardo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2022
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9680028/
https://www.ncbi.nlm.nih.gov/pubmed/36252276
http://dx.doi.org/10.1021/acssynbio.2c00175
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author Malcı, Koray
Jonguitud-Borrego, Nestor
van der Straten Waillet, Hugo
Puodžiu̅naitė, Urtė
Johnston, Emily J.
Rosser, Susan J.
Rios-Solis, Leonardo
author_facet Malcı, Koray
Jonguitud-Borrego, Nestor
van der Straten Waillet, Hugo
Puodžiu̅naitė, Urtė
Johnston, Emily J.
Rosser, Susan J.
Rios-Solis, Leonardo
author_sort Malcı, Koray
collection PubMed
description [Image: see text] Thanks to its sophistication, the CRISPR/Cas system has been a widely used yeast genome editing method. However, CRISPR methods generally rely on preassembled DNAs and extra cloning steps to deliver gRNA, Cas protein, and donor DNA. These laborious steps might hinder its usefulness. Here, we propose an alternative method, Assembly and CRISPR-targeted in vivo Editing (ACtivE), that only relies on in vivo assembly of linear DNA fragments for plasmid and donor DNA construction. Thus, depending on the user’s need, these parts can be easily selected and combined from a repository, serving as a toolkit for rapid genome editing without any expensive reagent. The toolkit contains verified linear DNA fragments, which are easy to store, share, and transport at room temperature, drastically reducing expensive shipping costs and assembly time. After optimizing this technique, eight loci proximal to autonomously replicating sequences (ARS) in the yeast genome were also characterized in terms of integration and gene expression efficiencies and the impacts of the disruptions of these regions on cell fitness. The flexibility and multiplexing capacity of the ACtivE were shown by constructing a β-carotene pathway. In only a few days, >80% integration efficiency for single gene integration and >50% integration efficiency for triplex integration were achieved on Saccharomyces cerevisiae BY4741 from scratch without using in vitro DNA assembly methods, restriction enzymes, or extra cloning steps. This study presents a standardizable method to be readily employed to accelerate yeast genome engineering and provides well-defined genomic location alternatives for yeast synthetic biology and metabolic engineering purposes.
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spelling pubmed-96800282022-11-23 ACtivE: Assembly and CRISPR-Targeted in Vivo Editing for Yeast Genome Engineering Using Minimum Reagents and Time Malcı, Koray Jonguitud-Borrego, Nestor van der Straten Waillet, Hugo Puodžiu̅naitė, Urtė Johnston, Emily J. Rosser, Susan J. Rios-Solis, Leonardo ACS Synth Biol [Image: see text] Thanks to its sophistication, the CRISPR/Cas system has been a widely used yeast genome editing method. However, CRISPR methods generally rely on preassembled DNAs and extra cloning steps to deliver gRNA, Cas protein, and donor DNA. These laborious steps might hinder its usefulness. Here, we propose an alternative method, Assembly and CRISPR-targeted in vivo Editing (ACtivE), that only relies on in vivo assembly of linear DNA fragments for plasmid and donor DNA construction. Thus, depending on the user’s need, these parts can be easily selected and combined from a repository, serving as a toolkit for rapid genome editing without any expensive reagent. The toolkit contains verified linear DNA fragments, which are easy to store, share, and transport at room temperature, drastically reducing expensive shipping costs and assembly time. After optimizing this technique, eight loci proximal to autonomously replicating sequences (ARS) in the yeast genome were also characterized in terms of integration and gene expression efficiencies and the impacts of the disruptions of these regions on cell fitness. The flexibility and multiplexing capacity of the ACtivE were shown by constructing a β-carotene pathway. In only a few days, >80% integration efficiency for single gene integration and >50% integration efficiency for triplex integration were achieved on Saccharomyces cerevisiae BY4741 from scratch without using in vitro DNA assembly methods, restriction enzymes, or extra cloning steps. This study presents a standardizable method to be readily employed to accelerate yeast genome engineering and provides well-defined genomic location alternatives for yeast synthetic biology and metabolic engineering purposes. American Chemical Society 2022-10-17 2022-11-18 /pmc/articles/PMC9680028/ /pubmed/36252276 http://dx.doi.org/10.1021/acssynbio.2c00175 Text en © 2022 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 Malcı, Koray
Jonguitud-Borrego, Nestor
van der Straten Waillet, Hugo
Puodžiu̅naitė, Urtė
Johnston, Emily J.
Rosser, Susan J.
Rios-Solis, Leonardo
ACtivE: Assembly and CRISPR-Targeted in Vivo Editing for Yeast Genome Engineering Using Minimum Reagents and Time
title ACtivE: Assembly and CRISPR-Targeted in Vivo Editing for Yeast Genome Engineering Using Minimum Reagents and Time
title_full ACtivE: Assembly and CRISPR-Targeted in Vivo Editing for Yeast Genome Engineering Using Minimum Reagents and Time
title_fullStr ACtivE: Assembly and CRISPR-Targeted in Vivo Editing for Yeast Genome Engineering Using Minimum Reagents and Time
title_full_unstemmed ACtivE: Assembly and CRISPR-Targeted in Vivo Editing for Yeast Genome Engineering Using Minimum Reagents and Time
title_short ACtivE: Assembly and CRISPR-Targeted in Vivo Editing for Yeast Genome Engineering Using Minimum Reagents and Time
title_sort active: assembly and crispr-targeted in vivo editing for yeast genome engineering using minimum reagents and time
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9680028/
https://www.ncbi.nlm.nih.gov/pubmed/36252276
http://dx.doi.org/10.1021/acssynbio.2c00175
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