Validating genome-wide CRISPR-Cas9 function improves screening in the oleaginous yeast Yarrowia lipolytica

Genome-wide mutational screens are central to understanding the genetic underpinnings of evolved and engineered phenotypes. The widespread adoption of CRISPR-Cas9 genome editing has enabled such screens in many organisms, but identifying functional sgRNAs still remains a challenge. Here, we develope...

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Veröffentlicht in:Metabolic engineering 2019-09, Vol.55 (C), p.102-110
Hauptverfasser: Schwartz, Cory, Cheng, Jan-Fang, Evans, Robert, Schwartz, Christopher A., Wagner, James M., Anglin, Scott, Beitz, Adam, Pan, Weihua, Lonardi, Stefano, Blenner, Mark, Alper, Hal S., Yoshikuni, Yasuo, Wheeldon, Ian
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container_end_page 110
container_issue C
container_start_page 102
container_title Metabolic engineering
container_volume 55
creator Schwartz, Cory
Cheng, Jan-Fang
Evans, Robert
Schwartz, Christopher A.
Wagner, James M.
Anglin, Scott
Beitz, Adam
Pan, Weihua
Lonardi, Stefano
Blenner, Mark
Alper, Hal S.
Yoshikuni, Yasuo
Wheeldon, Ian
description Genome-wide mutational screens are central to understanding the genetic underpinnings of evolved and engineered phenotypes. The widespread adoption of CRISPR-Cas9 genome editing has enabled such screens in many organisms, but identifying functional sgRNAs still remains a challenge. Here, we developed a methodology to quantify the cutting efficiency of each sgRNA in a genome-scale library, and in doing so improve screens in the biotechnologically important yeast Yarrowia lipolytica. Screening in the presence and absence of native DNA repair enabled high-throughput quantification of sgRNA function leading to the identification of high efficiency sgRNAs that cover 94% of genes. Library validation enhanced the classification of essential genes by identifying inactive guides that create false negatives and mask the effects of successful disruptions. Quantification of guide effectiveness also creates a dataset from which determinants of CRISPR-Cas9 can be identified. Finally, application of the library identified novel mutations for metabolic engineering of high lipid accumulation. •A library of highly functional Cas9 sgRNA for >94% of Y.lipolytica genes was identified.•Disruption of native DNA repair enabled quantitative analysis of sgRNA function.•Chromatin structure and chromosomal position significantly influenced sgRNA activity.•Validation of sgRNA function improved essential gene classification.•Functional genomic screening revealed 4 gene knockouts for lipid overproduction.
doi_str_mv 10.1016/j.ymben.2019.06.007
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subjects BASIC BIOLOGICAL SCIENCES
CRISPR-Cas Systems
Gene Editing
Gene Library
Genes, Fungal
Yarrowia - genetics
title Validating genome-wide CRISPR-Cas9 function improves screening in the oleaginous yeast Yarrowia lipolytica
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