Study / S2FGUO56G2018-01-31

Molecular barcoding of viral vectors enables mapping and optimization of mRNA trans-splicing

Marcus Davidsson, Paula Díaz-Fernández, Marcos Torroba, Oliver D. Schwich, Patrick Aldrin-Kirk et al.

About this study

Genome editing has proven to be highly potent in the generation of functional gene knockouts in dividing cells. In the CNS however, efficient technologies to repair sequences are yet to materialize. Reprogramming on the mRNA level is an attractive alternative as it provides means to perform in situ editing of coding sequences without nuclease dependency. Furthermore, de novo sequences can be inserted without the requirement of homologous recombination. Such reprogramming would enable efficient editing in quiescent cells (e.g., neurons) with an attractive safety profile for translational therapies. In this study, we applied a novel molecular-barcoded screening assay to investigate RNA trans-splicing in mammalian neurons. Through three alternative screening systems in cell culture and in vivo, we demonstrate that factors determining trans-splicing are reproducible regardless of the screening system. With this screening, we have located the most permissive trans-splicing sequences targeting an intron in the Synapsin I gene. Using viral vectors, we were able to splice full-length fluorophores into the mRNA while retaining very low off-target expression. Furthermore, this approach also showed evidence of functionality in the mouse striatum. However, in its current form, the trans-splicing events are stochastic and the overall activity lower than would be required for therapies targeting loss-of-function mutations. Nevertheless, the herein described barcode-based screening assay provides a unique possibility to screen and map large libraries in single animals or cell assays with very high precision.

Full author list & citation

Marcus Davidsson, Paula Díaz-Fernández, Marcos Torroba, Oliver D. Schwich, Patrick Aldrin-Kirk, Luis Quintino, Andreas Heuer, Gang Wang, Cecilia Lundberg, Tomas Björklund. Molecular barcoding of viral vectors enables mapping and optimization of mRNA trans-splicing. 2018-01-31. https://doi.org/10.1261/rna.063925.117

Experiments 3

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In-vivo mouse striatum lentiviral barcode screen

A barcoded Syn1 intron-fragment lentiviral acceptor library was injected into the striatum of adult C57BL/6 mice, and striatal tissue was collected four weeks later. Targeted sequencing of trans-spliced cDNA maps barcode-level activity to the Syn1 intron fragment lookup.

Integrated lentiMPRAMouseGRCm39
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E6XADZP91

Stable HEK293T integrated lentiviral barcode screen

HEK293T cells stably transduced with the barcoded Syn1 intron-fragment lentiviral acceptor library were transfected with the splice-donor plasmid. Targeted sequencing of trans-spliced cDNA measures barcode-level activity, with the paired reference-amplicon run providing the DNA denominator.

Integrated lentiMPRAHumanGRCm39
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E9SY880PG

Transient HEK293T plasmid barcode screen

A barcoded splice-acceptor plasmid library containing random Syn1 intron 9-10 fragments was co-transfected with the splice-donor plasmid in HEK293T cells. Targeted sequencing of trans-spliced cDNA 48 hours after transfection reports barcode-level splicing output.

Episomal Plasmid MPRAHumanGRCm39
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Raw source data 17 files

Original supplemental and deposited inputs retained for this study. Download files individually or together as a ZIP; nested folders are preserved. Source reuse terms apply, and sequencing reads may be omitted.

Download all 17 files (ZIP)barcode_counts_in_vivo_mouse_DNA_SRR6019581.tsvbarcode_counts_in_vivo_mouse_DNA_SRR6019581_qc.jsonbarcode_counts_in_vivo_mouse_RNA_SRR6019580.tsvbarcode_counts_in_vivo_mouse_RNA_SRR6019580_qc.jsonbarcode_counts_stable_HEK293T_DNA_SRR6019583.tsvbarcode_counts_stable_HEK293T_DNA_SRR6019583_qc.jsonbarcode_counts_stable_HEK293T_RNA_SRR6019582.tsvbarcode_counts_stable_HEK293T_RNA_SRR6019582_qc.jsonbarcode_counts_transient_HEK293T_SRR6019579.tsvbarcode_counts_transient_HEK293T_SRR6019579_qc.jsonpacbio_barcode_fragment_lookup.tsvpacbio_mapping_qc.jsonPRJNA403798_sra_metadata.xmlREADME.txtsra_run_summary.tsvSyn1_intron9_10_GRCm39_positive_orientation.faSyn1_intron9_10_GRCm39_transcript_orientation.fa

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