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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
Abstract:
Poly(2-dimethyl amino ethyl) methacrylate (pDMAEMA) cationic polymers have been shown to be efficient vectors for gene delivery in vitro. This contribution deals with the in vivo properties of polyplexes based on this polymer. In mice, pDMAEMA/[32P]-pLuc complexes distributed primarily to the lungs. The gene expression profile matched the biodistribution profile. In vitro turbidity experiments in serum showed severe aggregation upon addition of cationic polyplexes, pointing out the involvement of aggregates in the dominant lung uptake of the positively charged polyplexes. Incubations of polyplexes with albumin yielded a decline of the zeta potential of the complexes to negative values, making an electrostatic mechanism in the dominant lung uptake less likely. Hemagglutination experiments showed that the polyplexes induce the formation of extremely large structures when incubated with washed erythrocytes. Altogether, the present data indicate that aggregate formation and trapping of the formed aggregates in the lung capillary bed is probably responsible for the dominant lung uptake and transfection. Poly(ethylene)glycol (PEG) of the polymeric structures prevented the increase in the observed turbidity in serum seen with polyplexes and was also able to reduce interactions with erythrocytes. Currently, the in vivo fate of the PEGylated polyplexes is under investigation.
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.