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PMID: 15543529 Published · ppublish English Comparative Study Journal Article Research Support, N.I.H., Extramural Research Support, U.S. Gov't, Non-P.H.S. Research Support, U.S. Gov't, P.H.S.

Exploring polyethylenimine-mediated DNA transfection and the proton sponge hypothesis.

The journal of gene medicine ·Vol. 7 ·No. 5 ·2005-05-00 ·Pages 657-63

Akinc A, Thomas M, Klibanov AM, Langer R

Abstract

The relatively high transfection efficiency of polyethylenimine (PEI) vectors has been hypothesized to be due to their ability to avoid trafficking to degradative lysosomes. According to the proton sponge hypothesis, the buffering capacity of PEI leads to osmotic swelling and rupture of endosomes, resulting in the release of the vector into the cytoplasm. The mechanism of PEI-mediated DNA transfer was investigated using quantitative methods to study individual steps in the overall transfection process. In addition to transfection efficiency, the cellular uptake, local pH environment, and stability of vectors were analyzed. N-Quaternized (and therefore non-proton sponge) versions of PEI and specific cell function inhibitors were used to further probe the proton sponge hypothesis. Both N-quaternization and the use of bafilomycin A1 (a vacuolar proton pump inhibitor) reduced the transfection efficiency of PEI by approximately two orders of magnitude. Chloroquine, which buffers lysosomes, enhanced the transfection efficiency of N-quaternized PEIs and polylysine by 2-3-fold. In contrast, chloroquine did not improve the transfection efficiency of PEI. The measured average pH environment of PEI vectors was 6.1, indicating that they successfully avoid trafficking to acidic lysosomes. Significantly lower average pH environments were observed for permethyl-PEI (pH 5.4), perethyl-PEI (pH 5.1), and polylysine (pH 4.6) vectors. Cellular uptake levels of permethyl-PEI and perethyl-PEI vectors were found to be 20 and 90% higher, respectively, than that of parent PEI vectors, indicating that the reduction in transfection activity of the N-quaternized PEIs is due to a barrier downstream of cellular uptake. A polycation/DNA-binding affinity assessment showed that the more charge dense N-quaternized PEIs bind DNA less tightly than PEI, demonstrating that poor vector unpackaging was not responsible for the reduced transfection activity of the N-quaternized PEIs. The results obtained are consistent with the proton sponge hypothesis and strongly suggest that the transfection activity of PEI vectors is due to their unique ability to avoid acidic lysosomes.

MeSH Terms
Animals Anti-Bacterial Agents/pharmacology COS Cells Chlorocebus aethiops Chloroquine/pharmacology Cytoplasm/metabolism DNA/administration & dosage Endosomes/metabolism Gene Transfer Techniques Genetic Vectors/metabolism Hydrogen-Ion Concentration Luciferases/metabolism Macrolides/pharmacology Polyethyleneimine/analogs & derivatives,pharmacology Polylysine/metabolism Polymers/metabolism Proton Pump Inhibitors
Chemicals
Anti-Bacterial Agents Macrolides Polymers Proton Pump Inhibitors Polylysine Chloroquine bafilomycin A1 Polyethyleneimine DNA Luciferases
Authors & Affiliations
4 authors, click to expand affiliations / ORCID
Akinc Akin
Department of Chemical Engineering, Massachusetts Institute of Technology, Cambridge, MA 02139, USA.
Thomas Mini
Klibanov Alexander M
Langer Robert
Article Info
Journal
The journal of gene medicine
Abbr.
J Gene Med
ISSN
1099-498X
Published
2005-05-00
Pages
657-63
Language
English
Region
England
NLM ID
9815764
Subset
IM
Grants
NIBIB NIH HHS · EB 00244 · United States
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