ArticleJournal of advanced research2025
Glutathione hybrid poly (beta-amino ester)-plasmid nanoparticles for enhancing gene delivery and biosafety.
Article in Journal of advanced research, 2025. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 7 papers.
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Who cites it
7 citing papers in PubMed.
- Delivery Systems for Therapeutic Genome Editing: Challenges, Innovations, and Future Perspectives.MedComm · 2026Review
- Overcoming barriers: mechanisms and strategies of nanoparticles in overcoming the blood-brain barrier and drug resistance in glioblastomas.Journal of the Egyptian National Cancer Institute · 2026Review
- GSH-Responsive PBAE Polymers for IL-12 mRNA Delivery in Melanoma Immunotherapy.Investigative ophthalmology & visual science · 2026Article
- Reshaping tumor immune microenvironment through ROS-responsive prodrug polyplexes via synergistic effect of CRISPRi system and epigenetic inhibitor for breast cancer therapy.Materials today. Bio · 2025Article
- Carbon dot-based polyplexes with cell penetration peptides for gene transfection.RSC advances · 2025Article
- Evaluation of the Antitumor Efficacy of Human Papillomavirus Type 16 E7-Affitoxin in C57BL/6JNifdc Mice Bearing TC-1 Tumors.Molecular pharmaceutics · 2025Article
- Biosafety considerations triggered by genome-editing technologies.Biosafety and health · 2025Review
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Authors and funding
10 authors.
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No grant is acknowledged in the PubMed record.
Abstract
introductionCRISPR/Cas9 gene editing technology has significantly advanced gene therapy, with gene vectors being one of the key factors for its success. Poly (beta-amino ester) (PBAE), a distinguished non-viral cationic gene vector, is known to elevate intracellular reactive oxygen species (ROS) levels, which may cause cytotoxicity and, consequently, impact gene transfection efficacy (T.E.).
objectivesTo develop a simple but efficient strategy to improve the gene delivery ability and biosafety of PBAE both in vivo and in vitro.
methodsWe used glutathione (GSH), a clinically utilized drug with capability to modulating intracellular ROS level, to prepare a hybrid system with PBAE-plasmid nanoparticles (NPs). This system was characterized by flow cytometry, RNA-seq, Polymerase Chain Reaction (PCR) and Sanger sequencing in vitro, and its safety and efficacy in vivo was evaluated by imaging, PCR, Sanger sequencing and histology analysis.
resultsThe particle size of GSH-PBAE-plasmid NPs were 168.31 nm with a ζ-potential of 15.21 mV. An enhancement in T.E. and gene editing efficiency, ranging from 10 % to 100 %, was observed compared to GSH-free PBAE-plasmid NPs in various cell lines. In vitro results proved that GSH-PBAE-plasmid NPs reduced intracellular ROS levels by 25 %-40 %, decreased the total number of upregulated/downregulated genes from 4,952 to 789, and significantly avoided the disturbance in gene expression related to cellular oxidative stress-response and cell growth regulation signaling pathway compared to PBAE-plasmid NPs. They also demonstrated lower impact on the cell cycle, slighter hemolysis, and higher cell viability after gene transfection. Furthermore, GSH hybrid PBAE-plasmid NPs exhibited superior safety and improved tumor suppression ability in an Epstein-Barr virus (EBV)-infected murine tumor model, via targeting cleavage the EBV related oncogene by delivering CRISPR/Cas9 gene editing system and down-regulating the expression levels. This simple but effective strategy is expected to promote clinical applications of non-viral vector gene delivery.
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