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Updated: Mar 20, 2026

Generation of Cationic Nanoliposomes for the Efficient Delivery of In Vitro Transcribed Messenger RNA
Published on: February 1, 2019
Rab11 and Lysotracker Markers Reveal Correlation between Endosomal Pathways and Transfection Efficiency of
Ramsey N Majzoub, Emily Wonder, Kai K Ewert
1Cancer Research Center, Sanford Burnham Prebys Medical Discovery Institute , La Jolla, California 92037, United States.
Abstract:
Cationic liposomes (CLs) are widely studied as carriers of DNA and short-interfering RNA for gene delivery and silencing, and related clinical trials are ongoing. Optimization of transfection efficiency (TE) requires understanding of CL-nucleic acid nanoparticle (NP) interactions with cells, NP endosomal pathways, endosomal escape, and events leading to release of active nucleic acid from the lipid carrier. Here, we studied endosomal pathways and TE of surface-functionalized CL-DNA NPs in PC-3 prostate cancer cells displaying overexpressed integrin and neuropilin-1 receptors. The NPs contained RGD-PEG-lipid or RPARPAR-PEG-lipid, targeting integrin, and neuropilin-1 receptors, respectively, or control PEG-lipid. Fluorescence colocalization using Rab11-GFP and Lysotracker enabled simultaneous colocalization of NPs with recycling endosome (Rab11) and late endosome/lysosome (Rab7/Lysotracker) pathways at increasing mole fractions of pentavalent MVL5 (+5 e) at low (10 mol %), high (50 mol %), and very high (70 mol %) membrane charge density (σM). For these cationic NPs (lipid/DNA molar charge ratio, ρchg = 5), the influence of membrane charge density on pathway selection and transfection efficiency is similar for both peptide-PEG NPs, although, quantitatively, the effect is larger for RGD-PEG compared to RPARPAR-PEG NPs. At low σM, peptide-PEG NPs show preference for the recycling endosome over the late endosome/lysosome pathway. Increases in σM, from low to high, lead to decreases in colocalization with recycling endosomes and simultaneous increases in colocalization with the late endosome/lysosome pathway. Combining colocalization and functional TE data at low and high σM shows that higher TE correlates with a larger fraction of NPs colocalized with the late endosome/lysosome pathway while lower TE correlates with a larger fraction of NPs colocalized with the Rab11 recycling pathway. The findings lead to a hypothesis that increases in σM, leading to enhanced late endosome/lysosome pathway selection and higher TE, result from increased nonspecific electrostatic attractions between NPs and endosome luminal membranes, and conversely, enhanced recycling pathway for NPs and lower TE are due to weaker attractions. Surprisingly, at very high σM, the inverse relation between the two pathways observed at low and high σM breaks down, pointing to a more complex NP pathway behavior.
Insights
Cationic liposomes (CLs) carrying DNA were studied for gene delivery. Higher membrane charge density on CL-DNA nanoparticles (NPs) enhanced late endosome/lysosome pathways and transfection efficiency (TE), while lower density favored recycling endosomes, impacting gene delivery outcomes.
Area of Science:
- Nanomedicine and Drug Delivery
- Biotechnology and Genetic Engineering
- Cell Biology and Molecular Medicine
Background:
- Cationic liposomes (CLs) are crucial for gene delivery, with ongoing clinical trials for DNA and short-interfering RNA applications.
- Optimizing transfection efficiency (TE) necessitates understanding nanoparticle (NP) interactions with cellular endosomal pathways, endosomal escape, and nucleic acid release.
Purpose of the Study:
- To investigate the endosomal pathways and TE of surface-functionalized CL-DNA NPs in PC-3 prostate cancer cells.
- To determine the influence of varying membrane charge density (σM) on NP pathway selection and subsequent transfection efficiency.
Main Methods:
- Utilized RGD-PEG-lipid and RPARPAR-PEG-lipid functionalized CL-DNA NPs targeting specific cell receptors.
- Employed fluorescence colocalization with Rab11-GFP and Lysotracker to track NP pathways (recycling endosome vs. late endosome/lysosome).
- Assessed TE at different membrane charge densities (low, high, very high) and lipid/DNA charge ratios.
Main Results:
- At low membrane charge density (σM), NPs preferentially entered the recycling endosome pathway, correlating with lower TE.
- Increasing σM shifted NP colocalization towards the late endosome/lysosome pathway, significantly enhancing TE.
- A breakdown in the inverse relationship between pathway selection and TE was observed at very high σM, indicating complex NP behavior.
Conclusions:
- Membrane charge density critically influences CL-DNA NP endosomal trafficking and transfection efficiency.
- Enhanced late endosome/lysosome pathway association, driven by higher σM, promotes greater TE, likely due to increased electrostatic interactions.
- The findings provide insights into optimizing CL-based gene delivery systems by controlling NP surface charge and endosomal targeting.
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