Functional insulator scanning of CpG islands to identify regulatory regions of promoters using CRISPR
File(s)18_02_08_CpG protocol submitted and approved.docx (378.21 KB)
Accepted version
Author(s)
Grob, Alice
Marbiah, MM
Isalan, Mark
Type
Journal Article
Abstract
The ability to mutate a promoter in situ is potentially a very useful approach for gaining insights into endogenous gene regulation mechanisms. The advent of CRISPR/Cas systems has provided simple, efficient, and targeted genetic manipulation in eukaryotes, which can be applied to studying genome structure and function.
The basic CRISPR toolkit comprises an endonuclease, Cas9, and a short DNA-targeting sequence, made up of a single guide RNA (sgRNA). The catalytic domains of Cas9 are rendered active upon dimerization of Cas9 with sgRNA, resulting in targeted double stranded DNA breaks. Among other applications, this method of DNA cleavage can be coupled to endogenous homology-directed repair (HDR) mechanisms for the generation of site-specific editing or knockin mutations, at both promoter regulatory and gene coding sequences.
A well-characterized regulatory feature of promoter regions is the high abundance of CpGs. These CpG islands tend to be unmethylated, ensuring a euchromatic environment that promotes gene transcription. Here, we demonstrate CRISPR-mediated editing of two CpG islands located within the promoter region of the MDR1 gene (Multi Drug Resistance 1). Cas9 is used to generate double stranded breaks across multiple target sites, which are then repaired while inserting the beta globin (β-globin) insulator, 5′HS5. Thus, we are screening through promoter regulatory sequences with a chromatin barrier element to identify functional regions via “insulator scanning.” Transcriptional and functional assessment of MDR1 expression provides evidence of genome engineering. Overall, this method allows the scanning of CpG islands to identify their promoter functions.
The basic CRISPR toolkit comprises an endonuclease, Cas9, and a short DNA-targeting sequence, made up of a single guide RNA (sgRNA). The catalytic domains of Cas9 are rendered active upon dimerization of Cas9 with sgRNA, resulting in targeted double stranded DNA breaks. Among other applications, this method of DNA cleavage can be coupled to endogenous homology-directed repair (HDR) mechanisms for the generation of site-specific editing or knockin mutations, at both promoter regulatory and gene coding sequences.
A well-characterized regulatory feature of promoter regions is the high abundance of CpGs. These CpG islands tend to be unmethylated, ensuring a euchromatic environment that promotes gene transcription. Here, we demonstrate CRISPR-mediated editing of two CpG islands located within the promoter region of the MDR1 gene (Multi Drug Resistance 1). Cas9 is used to generate double stranded breaks across multiple target sites, which are then repaired while inserting the beta globin (β-globin) insulator, 5′HS5. Thus, we are screening through promoter regulatory sequences with a chromatin barrier element to identify functional regions via “insulator scanning.” Transcriptional and functional assessment of MDR1 expression provides evidence of genome engineering. Overall, this method allows the scanning of CpG islands to identify their promoter functions.
Date Issued
2018-04-01
Date Acceptance
2018-02-08
Citation
Methods in Molecular Biology, 2018, 1766, pp.285-301
ISSN
1940-6029
Publisher
Humana Press (Springer Imprint)
Start Page
285
End Page
301
Journal / Book Title
Methods in Molecular Biology
Volume
1766
Copyright Statement
© Springer Science+Business Media, LLC, part of Springer Nature 2018. The final publication is available at Springer via https://www.sciencedirect.com/science/article/pii/S2352464218300385?via%3Dihub
Sponsor
Wellcome Trust
Wellcome Trust
Biotechnology and Biological Sciences Research Council (BBSRC)
Grant Number
102944/Z/13/Z
102944/Z/13/Z
BB/M028933/1
Subjects
CRISPR
CpG islands
DNA methylation
Genome engineering
Insulator scanning
MDR1
0601 Biochemistry And Cell Biology
Developmental Biology
Publication Status
Published