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Real-Time Imaging of Specific Genomic Loci With CRISPR/dCas9 in Human Cells Using CRISPRainbow

清脆的 生物 遗传学 计算生物学 基因
作者
Thomas J Versosky,Dilshodbek U Nishonov,Li‐Chun Tu
出处
期刊:Bio-protocol [American Academy of Arts and Sciences]
卷期号:15 (1379): e5432-e5432 被引量:1
标识
DOI:10.21769/bioprotoc.5432
摘要

Proper genome organization is essential for genome function and stability. Disruptions to this organization can lead to detrimental effects and the transformation of cells into diseased states. Individual chromosomes and their subregions can move or rearrange during transcriptional activation, in response to DNA damage, and during terminal differentiation. Techniques such as fluorescence in situ hybridization (FISH) and chromosome conformation capture (e.g., 3C and Hi-C) have provided valuable insights into genome architecture. However, these techniques require cell fixation, limiting studies of the temporal evolution of chromatin organization in detail. Our understanding of the heterogeneity and dynamics of chromatin organization at the single-cell level is still emerging. To address this, clustered regularly interspaced short palindromic repeats (CRISPR)/dead Cas9 (dCas9) systems have been repurposed for precise live-cell imaging of genome dynamics. This protocol uses a system called CRISPRainbow, a powerful tool that allows simultaneous targeting of up to seven genomic loci and tracks their locations over time using spectrally distinct fluorescent markers to study real-time chromatin organization. Multiple single-guide RNA (sgRNA), carrying specific RNA aptamers for labeling, can be cloned into a single vector to improve transfection efficiency in human cells. The precise targeting of CRISPRainbow offers distinct advantages over previous techniques while also complementing them by validating findings in live cells. Key features • Simultaneous imaging of up to seven specific genomic loci in living cells. • Multicolor imaging using a single CRISPR system from Streptococcus pyogenes. • Signal amplification through targeting repetitive sequences. • Targeting endogenous DNA without the need for foreign DNA insertion.

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