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Updated: Jun 4, 2026

Pooled CRISPR-Based Genetic Screens in Mammalian Cells
Published on: September 4, 2019
A tunable Cas12a platform for single-cell perturbation screening and CRISPRi
Valentina Snetkova1, Carolina Galan1, Romain Lopez1,2
1Genentech, Inc, 1 DNA Way, South San Francisco, CA, USA.
Abstract:
Single-cell perturbation (Perturb-seq) screens have primarily relied on Cas9 for inducing loss-of-function phenotypes, whereas Cas12a, despite its unique effectiveness for multiplex guide expression, remains underexplored. This may be due to Cas12a's guide RNA array (pre-crRNA) self-processing activity and the subsequent challenges associated with pre-crRNA sequence recovery during single-cell RNA sequencing library preparation. To overcome the self-processing constraint, we optimized pre-crRNA expression vectors and established a degron-based, enhanced Cas12a system for gene knock-out. As demonstrated across cell types, target genes, and with a minimized guide RNA library, this platform allows for accurate detection of pre-crRNAs and gene editing-induced effects on the transcriptome in single cells. Additionally, we show that HyperLbCas12a outperforms other existing variants for multiplexed gene suppression. While the rapid reversibility of this repressor highlights specific kinetic constraints for degron-based single-cell recording, the system provides a potent, modular tool for contexts requiring tunable, transient silencing. Together, this suite of technologies greatly expands the possibilities for future Perturb-seq efforts and broader application of Cas12a for genetic disruption at scale.
Insights
This study introduces an enhanced Cas12a system for gene knock-out in single-cell perturbation screens. The optimized platform accurately detects gene editing effects and expands Cas12a applications for large-scale genetic disruption.
Area of Science:
- Molecular Biology
- Genetics
- Biotechnology
Background:
- Single-cell perturbation (Perturb-seq) screens commonly use Cas9 for gene knock-out.
- Cas12a offers advantages for multiplexed guide RNA expression but is underexplored due to self-processing issues and recovery challenges in single-cell RNA sequencing.
- Existing Cas12a systems face limitations in pre-crRNA recovery and gene editing efficiency.
Purpose of the Study:
- To overcome Cas12a's pre-crRNA self-processing constraint for improved Perturb-seq applications.
- To develop and validate a degron-based, enhanced Cas12a system for efficient gene knock-out and transcriptome analysis in single cells.
- To evaluate the performance of Cas12a variants for multiplexed gene suppression and transient gene silencing.
Main Methods:
- Optimization of pre-crRNA expression vectors for Cas12a.
- Development of a degron-based, enhanced Cas12a system for gene knock-out.
- Application of the system across diverse cell types and target genes with a minimized guide RNA library.
- Assessment of pre-crRNA detection and gene editing-induced transcriptomic effects in single cells.
- Comparative analysis of Cas12a variants, including HyperLbCas12a, for multiplexed gene suppression.
Main Results:
- The optimized Cas12a system accurately detects pre-crRNAs and gene editing effects on the transcriptome in single cells.
- The degron-based system enables efficient gene knock-out across various cell types and targets.
- HyperLbCas12a demonstrated superior performance for multiplexed gene suppression compared to other variants.
- The system allows for tunable, transient gene silencing, highlighting kinetic constraints for degron-based recording.
Conclusions:
- The developed Cas12a platform overcomes self-processing limitations, enabling robust single-cell genetic disruption.
- This technology significantly expands the utility of Cas12a for large-scale Perturb-seq and genetic screening.
- The findings provide a potent and modular tool for researchers studying gene function and regulation at the single-cell level.
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