Profiling the long noncoding RNA interaction network in the regulatory elements of target genes by chromatin in situ reverse transcription sequencing

  1. Jiuwei Cui2
  1. 1 Stanford University Medical School;
  2. 2 The First Hospital of Jilin University;
  3. 3 Institute of Biophysics, Chinese Academy of Sciences;
  4. 4 Guangzhou Institutes of Biomedicine and Health, Chinese Academy of Sciences;
  5. 5 Google Inc;
  6. 6 Jilin University;
  7. 7 La Jolla Institute for Allergy and Immunology
  • * Corresponding author; email: jifan{at}stanford.edu
  • Abstract

    Long noncoding RNAs (lncRNAs) can regulate the activity of target genes by participating in the organization of chromatin architecture. We have devised a 'chromatin-RNA in situ reverse-transcription sequencing'; (CRIST-seq) approach to profile the lncRNA interaction network in gene regulatory elements by combining the simplicity of RNA biotin labeling with the specificity of the CRISPR/Cas9 system. Using gene-specific gRNAs, we describe a pluripotency-specific lncRNA interacting network in the promoters of Sox2 and Pou5f1, two critical stem cell factors that are required for the maintenance of pluripotency. The promoter-interacting lncRNAs were specifically activated during reprogramming into pluripotency. Knockdown of these lncRNAs caused the stem cells to exit from pluripotency. In contrast, overexpression of the pluripotency-associated lncRNA activated the promoters of core stem cell factor genes, and enhanced fibroblast reprogramming into pluripotency. These CRIST-seq data suggest that the Sox2 and Pou5f1 promoters are organized within a unique lncRNA interaction network that determines the fate of pluripotency during reprogramming. This CRIST approach may be broadly used to map lncRNA interaction networks at target loci across the genome.

    • Received October 10, 2018.
    • Accepted July 10, 2019.

    This manuscript is Open Access.

    This article, published in Genome Research, is available under a Creative Commons License (Attribution 4.0 International license), as described at http://creativecommons.org/licenses/by/4.0/.

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    1. Genome Res. gr.244996.118 Published by Cold Spring Harbor Laboratory Press

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