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.

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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