Enhanced lysosome escape mediated by 1,2-dicarboxylic-cyclohexene anhydride-modified poly-l-lysine dendrimer as a
Jianmin Shen1,2, Jing Chen1,2, Jingbo Ma1,2
1School of Life Sciences, Lanzhou University, Lanzhou 730000, China.
Abstract:
Antisense oligodeoxynucleotide (ASODN) can directly interfere a series of biological events of the target RNA derived from tumor cells through Watson-Crick base pairing, in turn, plays antitumor therapeutic roles. In the study, a novel HIF-1α ASODN-loaded nanocomposite was formulated to efficiently deliver gene to the target RNA. The physicochemical properties of nanocomposite were characterized using TEM, FTIR, DLS and zeta potentials. The mean diameter of resulting GEL-DGL-FA-ASODN-DCA nanocomposite was about 170-192 nm, and according to the agarose gel retardation assay, the loading amount of ASODN accounted for 166.7 mg/g. The results of cellular uptake showed that the nanocomposite could specifically target to HepG2 and Hela cells. The cytotoxicity assay demonstrated that the toxicity of vectors was greatly reduced by using DCA to reversibly block the cationic DGL. The subcellular distribution images clearly displayed the lysosomal escape ability of the DCA-modified nanocomposite. In vitro exploration of molecular mechanism indicated that the nanocomposite could inhibit mRNA expression and HIF-1α protein translation at different levels. In vivo optical images and quantitative assay testified that the formulation accumulated preferentially in the tumor tissue. In vivo antitumor efficacy research confirmed that this nanocomposite had significant antitumor activity and the tumor inhibitory rate was 77.99%. These results manifested that the GEL-DGL-FA-ASODN-DCA nanocomposite was promising in gene therapeutics for antitumor by interacting directly with target RNA.
Insights
A novel nanocomposite delivers antisense oligodeoxynucleotides (ASODN) to target tumor RNA, inhibiting gene expression and protein translation. This targeted approach demonstrates significant antitumor activity with a 77.99% tumor inhibitory rate.
Area of Science:
- Biotechnology
- Nanomedicine
- Cancer Therapeutics
Background:
- Antisense oligodeoxynucleotides (ASODN) offer therapeutic potential by targeting tumor cell RNA via Watson-Crick base pairing.
- Developing efficient and targeted delivery systems for ASODN is crucial for effective cancer gene therapy.
Purpose of the Study:
- To formulate and characterize a novel nanocomposite for targeted delivery of HIF-1α ASODN.
- To evaluate the physicochemical properties, cellular uptake, cytotoxicity, and antitumor efficacy of the developed nanocomposite.
Main Methods:
- Characterization of the GEL-DGL-FA-ASODN-DCA nanocomposite using TEM, FTIR, DLS, and zeta potential measurements.
- Assessment of cellular uptake in HepG2 and Hela cells, cytotoxicity, and lysosomal escape ability.
- In vitro evaluation of mRNA expression and protein translation inhibition, and in vivo antitumor efficacy studies.
Main Results:
- The nanocomposite (GEL-DGL-FA-ASODN-DCA) exhibited a mean diameter of 170-192 nm and an ASODN loading of 166.7 mg/g.
- Demonstrated specific targeting to cancer cells (HepG2, Hela) with enhanced lysosomal escape.
- Successfully inhibited HIF-1α mRNA and protein expression, showing significant in vivo antitumor activity (77.99% inhibition).
Conclusions:
- The DCA-modified nanocomposite effectively delivers ASODN to target RNA, reducing vector toxicity and enhancing therapeutic outcomes.
- The developed nanocomposite shows promise as a targeted gene therapeutic agent for cancer treatment.
- This formulation facilitates direct interaction with target RNA for potent antitumor effects.
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