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Evaluating Synthetic Activation and Repression of Neuropsychiatric-Related Genes in hiPSC-Derived NPCs, Neurons, and Astrocytes

  • Seok Man Ho
  • , Brigham J. Hartley
  • , Erin Flaherty
  • , Prashanth Rajarajan
  • , Rawan Abdelaal
  • , Ifeanyi Obiorah
  • , Natalie Barretto
  • , Hamza Muhammad
  • , Hemali P. Phatnani
  • , Schahram Akbarian
  • , Kristen J. Brennand

Research output: Contribution to journalArticlepeer-review

62 Scopus citations

Abstract

Modulation of transcription, either synthetic activation or repression, via dCas9-fusion proteins is a relatively new methodology with the potential to facilitate high-throughput up- or downregulation studies of gene function. Genetic studies of neurodevelopmental disorders have identified a growing list of risk variants, including both common single-nucleotide variants and rare copy-number variations, many of which are associated with genes having limited functional annotations. By applying a CRISPR-mediated gene-activation/repression platform to populations of human-induced pluripotent stem cell-derived neural progenitor cells, neurons, and astrocytes, we demonstrate that it is possible to manipulate endogenous expression levels of candidate neuropsychiatric risk genes across these three cell types. Although proof-of-concept studies using catalytically inactive Cas9-fusion proteins to modulate transcription have been reported, here we present a detailed survey of the reproducibility of gRNA positional effects across a variety of neurodevelopmental disorder-relevant risk genes, donors, neural cell types, and dCas9 effectors.

Original languageEnglish
Pages (from-to)615-628
Number of pages14
JournalStem Cell Reports
Volume9
Issue number2
DOIs
StatePublished - 8 Aug 2017

Keywords

  • CRISPR
  • dCas9-KRAB
  • dCas9-VP64
  • dCas9-VPR
  • human-induced pluripotent stem cell
  • neural progenitor cell
  • transcriptional modulation

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