Advanced peptide nanoparticles enable robust and efficient delivery of gene editors across cell types

Publication date

2025-10-10

Authors

Gustafsson, Oskar
Krishna, Supriya
Borate, Sophia
Ghaeidamini, Marziyeh
Liang, Xiuming
Saher, Osama
Cuellar, Raul
Birdsong, Björn K
Roudi, Samantha
Estupiñán, H Yesid

Editors

Advisors

Supervisors

Document Type

Article
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License

cc_by

Abstract

Efficient delivery of the CRISPR/Cas9 system and its larger derivatives, base editors, and prime editors remain a major challenge, particularly in tissue-specific stem cells and induced pluripotent stem cells (iPSCs). This study optimized a novel family of cell-penetrating peptides, hPep, to deliver gene-editing ribonucleoproteins. The hPep-based nanoparticles enable highly efficient and biocompatible delivery of Cre recombinase, Cas9, base-, and prime editors. Using base editors, robust and nearly complete genome editing was achieved in the human cells: HEK293T (96 %), iPSCs (74 %), and muscle stem cells (80 %). This strategy opens promising avenues for ex vivo and, potentially, in vivo applications. Incorporating silica particles enhanced the system's versatility, facilitating cargo-agnostic delivery. Notably, the nanoparticles can be synthesized quickly on a benchtop and stored as lyophilized powder without compromising functionality. This represents an important advancement in the feasibility and scalability of gene-editing delivery technologies.

Keywords

Base and primer editor, Cell-penetrating peptide (CPP), Diverse cells, including MuSC and iPSC, Gene editing, Protein delivery, Synthetic gene editor delivery, Pharmaceutical Science

Citation

Gustafsson, O, Krishna, S, Borate, S, Ghaeidamini, M, Liang, X, Saher, O, Cuellar, R, Birdsong, B K, Roudi, S, Estupiñán, H Y, Alici, E, Smith, C I E, Esbjörner, E K, Spuler, S, de Jong, O G, Escobar, H, Nordin, J Z & Andaloussi, S E L 2025, 'Advanced peptide nanoparticles enable robust and efficient delivery of gene editors across cell types', Journal of controlled release : official journal of the Controlled Release Society, vol. 386, 114038. https://doi.org/10.1016/j.jconrel.2025.114038