Anionic polymer coating for enhanced delivery of Cas9 mRNA and sgRNA nanoplexes

Abstract

Polymeric carriers have long been recognized as some of the most effective and promising systems for nucleic acid delivery. In this study, we utilized an anionic di-block co-polymer, PEG-PLE, to enhance the performance of lipid-modified PEI (C14-PEI) nanoplexes for delivering Cas9 mRNA and sgRNA targeting KRAS G12S mutations in lung cancer cells. Our results demonstrated that PEG-PLE, when combined with C14-PEI at a weight-to-weight ratio of 0.2, produced nanoplexes with a size of approximately 140 nm, a polydispersity index (PDI) of 0.08, and a zeta potential of around −1 mV. The PEG-PLE/C14-PEI nanoplexes at this ratio were observed to be both non-cytotoxic and effective in encapsulating Cas9 mRNA and sgRNA. Confocal microscopy imaging revealed efficient endosomal escape and intracellular distribution of the RNAs. Uptake pathway inhibition studies indicated that the internalization of PEG-PLE/C14-PEI primarily involves scavenger receptors and clathrin-mediated endocytosis. Compared to C14-PEI formulations, PEG-PLE/C14-PEI demonstrated a significant increase in luciferase mRNA expression and gene editing efficiency, as confirmed by T7EI and ddPCR, in A549 cells. Sanger sequencing identified insertions and/or deletions around the PAM sequence, with a total of 69% indels observed. Post-transfection, the KRAS-ERK pathway was downregulated, resulting in significant increases in cell apoptosis and inhibition of cell migration. Taken together, this study reveals a new and promising formulation for CRISPR delivery as potential lung cancer treatment.

Graphical abstract: Anionic polymer coating for enhanced delivery of Cas9 mRNA and sgRNA nanoplexes

Supplementary files

Article information

Article type
Paper
Submitted
26 Sep 2024
Accepted
05 Dec 2024
First published
11 Dec 2024
This article is Open Access
Creative Commons BY license

Biomater. Sci., 2025, Advance Article

Anionic polymer coating for enhanced delivery of Cas9 mRNA and sgRNA nanoplexes

S. Chen, S. Pinto Carneiro and O. M. Merkel, Biomater. Sci., 2025, Advance Article , DOI: 10.1039/D4BM01290A

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