Machine learning methods for predicting guide RNA effects in CRISPR epigenome editing experiments

Author:

Mu WancenORCID,Luo Tianyou,Barrera Alejandro,Bounds Lexi R.,Klann Tyler S.,Weele Maria ter,Bryois Julien,Crawford Gregory E.,Sullivan Patrick F.,Gersbach Charles A.,Love Michael I.,Li Yun

Abstract

AbstractCRISPR epigenomic editing technologies enable functional interrogation of non-coding elements. However, current computational methods for guide RNA (gRNA) design do not effectively predict the power potential, molecular and cellular impact to optimize for efficient gRNAs, which are crucial for successful applications of these technologies.We present “launch-dCas9” (machine LeArning based UNified CompreHensive framework for CRISPR-dCas9) to predict gRNA impact from multiple perspectives, including cell fitness, wild-type abundance (gauging power potential), and gene expression in single cells. Our launch-dCas9, built and evaluated using experiments involving >1 million gRNAs targeted across the human genome, demonstrates relatively high prediction accuracy (AUC up to 0.81) and generalizes across cell lines. Method-prioritized top gRNA(s) are 4.6-fold more likely to exert effects, compared to other gRNAs in the same cis-regulatory region. Furthermore, launch-dCas9 identifies the most critical sequence-related features and functional annotations from >40 features considered. Our results establish launch-dCas9 as a promising approach to design gRNAs for CRISPR epigenomic experiments.

Publisher

Cold Spring Harbor Laboratory

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