Mechanism-guided engineering of a minimal biological particle for genome editing
Abstract
The widespread application of genome editing to treat and cure disease requires the delivery of genome editors into the nucleus of target cells. Enveloped delivery vehicles (EDVs) are engineered virally derived particles capable of packaging and delivering CRISPR-Cas9 ribonucleoproteins (RNPs). However, the presence of lentiviral genome encapsulation and replication proteins in EDVs has obscured the underlying delivery mechanism and precluded particle optimization. Here, we show that Cas9 RNP nuclear delivery is independent of the native lentiviral capsid structure. Instead, EDV-mediated genome editing activity corresponds directly to the number of nuclear localization sequences on the Cas9 enzyme. EDV structural analysis using cryo-electron tomography and small molecule inhibitors guided the removal of ~80% of viral residues, creating a minimal EDV (miniEDV) that retains full RNP delivery capability. MiniEDVs are 25% smaller yet package equivalent amounts of Cas9 RNPs relative to the original EDVs and demonstrated increased editing in cell lines and therapeutically relevant primary human T cells. These results show that virally derived particles can be streamlined to create efficacious genome editing delivery vehicles with simpler production and manufacturing.
Article Details
Journal Info
Proceedings of the National Academy of Sciences
National Academy of Sciences
Authors (12)
Wayne Ngo
Julia Peukes
California Institute for Quantitative Biosciences, University of California
Alisha Baldwin
Zhiwei Wayne Xue
Innovative Genomics Institute, University of California
Sidney Hwang
Robert R. Stickels
Department of Pathology, Stanford University
Zhi Lin
Department of Chemistry and Chemical Biology
Ansuman T. Satpathy
James A. Wells
Randy Schekman
Department of Molecular and Cell Biology, University of California Berkeley
Eva Nogales
HHMI, University of California
Jennifer A. Doudna