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Large scale microfluidic CRISPR screening for increased amylase secretion in yeast†

Key to our ability to increase recombinant protein production through secretion is a better understanding of the pathways that interact to translate, process and export mature proteins to the surrounding environment, including the supporting cellular machinery that supplies necessary energy and buil...

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Autores principales: Johansson, S. Andreas, Dulermo, Thierry, Jann, Cosimo, Smith, Justin D., Pryszlak, Anna, Pignede, Georges, Schraivogel, Daniel, Colavizza, Didier, Desfougères, Thomas, Rave, Christophe, Farwick, Alexander, Merten, Christoph A., Roy, Kevin R., Wei, Wu, Steinmetz, Lars M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7614956/
https://www.ncbi.nlm.nih.gov/pubmed/37483015
http://dx.doi.org/10.1039/d3lc00111c
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author Johansson, S. Andreas
Dulermo, Thierry
Jann, Cosimo
Smith, Justin D.
Pryszlak, Anna
Pignede, Georges
Schraivogel, Daniel
Colavizza, Didier
Desfougères, Thomas
Rave, Christophe
Farwick, Alexander
Merten, Christoph A.
Roy, Kevin R.
Wei, Wu
Steinmetz, Lars M.
author_facet Johansson, S. Andreas
Dulermo, Thierry
Jann, Cosimo
Smith, Justin D.
Pryszlak, Anna
Pignede, Georges
Schraivogel, Daniel
Colavizza, Didier
Desfougères, Thomas
Rave, Christophe
Farwick, Alexander
Merten, Christoph A.
Roy, Kevin R.
Wei, Wu
Steinmetz, Lars M.
author_sort Johansson, S. Andreas
collection PubMed
description Key to our ability to increase recombinant protein production through secretion is a better understanding of the pathways that interact to translate, process and export mature proteins to the surrounding environment, including the supporting cellular machinery that supplies necessary energy and building blocks. By combining droplet microfluidic screening with large-scale CRISPR libraries that perturb the expression of the majority of coding and non-coding genes in S. cerevisiae, we identified 345 genes for which an increase or decrease in gene expression resulted in increased secretion of α-amylase. Our results show that modulating the expression of genes involved in the trafficking of vesicles, endosome to Golgi transport, the phagophore assembly site, the cell cycle and energy supply improve α-amylase secretion. Besides protein-coding genes, we also find multiple long non-coding RNAs enriched in the vicinity of genes associated with endosomal, Golgi and vacuolar processes. We validated our results by overexpressing or deleting selected genes, which resulted in significant improvements in α-amylase secretion. The advantages, in terms of precision and speed, inherent to CRISPR based perturbations, enables iterative testing of new strains for increased protein secretion.
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spelling pubmed-76149562023-08-15 Large scale microfluidic CRISPR screening for increased amylase secretion in yeast† Johansson, S. Andreas Dulermo, Thierry Jann, Cosimo Smith, Justin D. Pryszlak, Anna Pignede, Georges Schraivogel, Daniel Colavizza, Didier Desfougères, Thomas Rave, Christophe Farwick, Alexander Merten, Christoph A. Roy, Kevin R. Wei, Wu Steinmetz, Lars M. Lab Chip Article Key to our ability to increase recombinant protein production through secretion is a better understanding of the pathways that interact to translate, process and export mature proteins to the surrounding environment, including the supporting cellular machinery that supplies necessary energy and building blocks. By combining droplet microfluidic screening with large-scale CRISPR libraries that perturb the expression of the majority of coding and non-coding genes in S. cerevisiae, we identified 345 genes for which an increase or decrease in gene expression resulted in increased secretion of α-amylase. Our results show that modulating the expression of genes involved in the trafficking of vesicles, endosome to Golgi transport, the phagophore assembly site, the cell cycle and energy supply improve α-amylase secretion. Besides protein-coding genes, we also find multiple long non-coding RNAs enriched in the vicinity of genes associated with endosomal, Golgi and vacuolar processes. We validated our results by overexpressing or deleting selected genes, which resulted in significant improvements in α-amylase secretion. The advantages, in terms of precision and speed, inherent to CRISPR based perturbations, enables iterative testing of new strains for increased protein secretion. 2023-07-24 2023-07-24 /pmc/articles/PMC7614956/ /pubmed/37483015 http://dx.doi.org/10.1039/d3lc00111c Text en https://creativecommons.org/licenses/by/3.0/This article is licensed under a Creative Commons Attribution 3.0 Unported Licence (https://creativecommons.org/licenses/by/3.0/) .
spellingShingle Article
Johansson, S. Andreas
Dulermo, Thierry
Jann, Cosimo
Smith, Justin D.
Pryszlak, Anna
Pignede, Georges
Schraivogel, Daniel
Colavizza, Didier
Desfougères, Thomas
Rave, Christophe
Farwick, Alexander
Merten, Christoph A.
Roy, Kevin R.
Wei, Wu
Steinmetz, Lars M.
Large scale microfluidic CRISPR screening for increased amylase secretion in yeast†
title Large scale microfluidic CRISPR screening for increased amylase secretion in yeast†
title_full Large scale microfluidic CRISPR screening for increased amylase secretion in yeast†
title_fullStr Large scale microfluidic CRISPR screening for increased amylase secretion in yeast†
title_full_unstemmed Large scale microfluidic CRISPR screening for increased amylase secretion in yeast†
title_short Large scale microfluidic CRISPR screening for increased amylase secretion in yeast†
title_sort large scale microfluidic crispr screening for increased amylase secretion in yeast†
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7614956/
https://www.ncbi.nlm.nih.gov/pubmed/37483015
http://dx.doi.org/10.1039/d3lc00111c
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