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The fate of poly(2-dimethyl amino ethyl)methacrylate-based polyplexes after intravenous administration

F J Verbaan1, C Oussoren, I M van Dam

  • 1Department of Pharmaceutics, Utrecht Institute for Pharmaceutical Sciences (UIPS), Utrecht University, PO Box 80082, 3508 TB, Utrecht, The Netherlands. f.j.verbaan@pharm.uu.nl

Insights

Poly(2-dimethyl amino ethyl) methacrylate (pDMAEMA) cationic polymers effectively deliver genes in vivo, primarily to the lungs. Aggregate formation, not electrostatic interactions, likely causes this lung-specific uptake.

Area of Science:

  • Biomaterials Science
  • Gene Therapy
  • Nanomedicine

Background:

  • Cationic polymers like pDMAEMA are promising for in vitro gene delivery.
  • Understanding their in vivo behavior is crucial for therapeutic applications.

Purpose of the Study:

  • To investigate the in vivo biodistribution and gene expression of pDMAEMA/DNA polyplexes.
  • To elucidate the mechanisms behind the observed lung-specific accumulation.

Main Methods:

  • In vivo biodistribution studies in mice using radiolabeled polyplexes.
  • In vitro turbidity and zeta potential measurements in serum and with albumin.
  • Hemagglutination assays with erythrocytes.

Main Results:

  • pDMAEMA polyplexes predominantly accumulated in the lungs in mice.
  • In vitro, polyplexes aggregated in serum, and zeta potential decreased upon albumin incubation.
  • Polyplexes induced significant hemagglutination, suggesting aggregate formation is key.

Conclusions:

  • Aggregate formation and subsequent trapping in lung capillaries likely drive the lung-specific uptake of pDMAEMA polyplexes.
  • PEGylation may mitigate aggregation and erythrocyte interactions, warranting further investigation.

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