A combinatorial synthetic strategy for developing genome-editing protein-delivery agents targeting mouse retina

J Jianye Zhang R Rafał Hołubowicz (Gavin Herbert Eye Institute—Robert M. Brunson Center for Translational Vision Research, Department of Ophthalmology and Visual Sciences, University of California Irvine) R Roman Smidak (Department of Ophthalmology, Gavin Herbert Eye Institute, University of California) Y Yulun Hu (Department of Chemistry, College of Arts and Sciences) S Samuel W. Du J Jiin H. Felgner G Grazyna Palczewska C Carolline Rodrigues Menezes E Eleonora Risaliti (Brunson Center for Translational Vision Research, Department of Ophthalmology and Visual Sciences, Gavin Herbert Eye Institute, University of California) Z Zhiqian Dong (Gavin Herbert Eye Institute—Robert M. Brunson Center for Translational Vision Research, Department of Ophthalmology and Visual Sciences, University of California Irvine) X Xiuli Ma M Mojtaba H. Shayegan P Paul Z. Chen L Li Xing M Maria Hołubowicz B Bowen Li (Department of Chemistry, College of Arts and Sciences) D David R. Liu P Philip L. Felgner G Gregory P. Tochtrop (Department of Chemistry, College of Arts and Sciences) K Krzysztof Palczewski

Abstract

Abstract CRISPR/Cas9-based gene-editing technologies offer promise for treating inherited retinal diseases (IRDs), however safe and efficient ocular delivery of precision editors remains challenging. To address this challenge, we report a class of Coomassie brilliant blue (CBB)-derived lipidoids that bind and deliver proteins. Subretinal injection of Cre complexed with these lipidoids into mT/mG mice leads to robust recombination in the retinal pigment epithelium and photoreceptors. We employ the CBB-lipidoid platform to deliver adenine base editor (ABE) ribonucleoproteins (RNP). Incorporating CBB lipidoids into liposomes improves delivery efficiency. CBB11 stands out for facilitating precise in vivo ABE-mediated gene editing. Delivery of liposome-CBB11-RNP complexes results in a 120-fold increase in base editing compared to RNP alone and restores the scotopic ERG b-wave response in the rd12 mouse model. These results demonstrate the potential of CBB-augmented, liposome-RNP systems for therapeutic gene editing in the eye, paving the way for single-dose precision medicines to treat IRDs.

Article Details

Volume / Issue Vol. 17, Issue 1
Published February 07, 2026
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (20)

J

Jianye Zhang

R

Rafał Hołubowicz

Gavin Herbert Eye Institute—Robert M. Brunson Center for Translational Vision Research, Department of Ophthalmology and Visual Sciences, University of California Irvine

R

Roman Smidak

Department of Ophthalmology, Gavin Herbert Eye Institute, University of California

Y

Yulun Hu

Department of Chemistry, College of Arts and Sciences

S

Samuel W. Du

J

Jiin H. Felgner

G

Grazyna Palczewska

C

Carolline Rodrigues Menezes

E

Eleonora Risaliti

Brunson Center for Translational Vision Research, Department of Ophthalmology and Visual Sciences, Gavin Herbert Eye Institute, University of California

Z

Zhiqian Dong

Gavin Herbert Eye Institute—Robert M. Brunson Center for Translational Vision Research, Department of Ophthalmology and Visual Sciences, University of California Irvine

X

Xiuli Ma

M

Mojtaba H. Shayegan

P

Paul Z. Chen

L

Li Xing

M

Maria Hołubowicz

B

Bowen Li

Department of Chemistry, College of Arts and Sciences

D

David R. Liu

P

Philip L. Felgner

G

Gregory P. Tochtrop

Department of Chemistry, College of Arts and Sciences

K

Krzysztof Palczewski