Interaction of Poly(ethylenimine)–DNA Polyplexes with Mitochondria: Implications for a Mechanism of Cytotoxicity
Open Access
- 23 June 2011
- journal article
- research article
- Published by American Chemical Society (ACS) in Molecular Pharmaceutics
- Vol. 8 (5) , 1709-1719
- https://doi.org/10.1021/mp200078n
Abstract
Poly(ethylenimine) (PEI) and PEI-based systems have been widely studied for use as nucleic acid delivery vehicles. However, many of these vehicles display high cytotoxicity, rendering them unfit for therapeutic use. By exploring the mechanisms that cause cytotoxicity, and through understanding structure–function relationships between polymers and intracellular interactions, nucleic acid delivery vehicles with precise intracellular properties can be tailored for specific function. Previous research has shown that PEI is able to depolarize mitochondria, but the exact mechanism as to how depolarization is induced remains elusive and therefore is the focus of the current study. Potential mechanisms for mitochondrial depolarization include direct mitochondrial membrane permeabilization by PEI or PEI polyplexes, activation of the mitochondrial permeability transition pore, and interference with mitochondrial membrane proton pumps, specifically Complex I of the electron transport chain and F0F1-ATPase. Herein, confocal microscopy and live cell imaging showed that PEI polyplexes do colocalize to some degree with mitochondria early in transfection, and the degree of colocalization increases over time. Cyclosporin a was used to prevent activation of the mitochondrial membrane permeability transition pore, and it was found that early in transfection cyclosporin a was unable to prevent the loss of mitochondrial membrane potential. Further studies done using rotenone and oligomycin to inhibit Complex I of the electron transport chain and F0F1-ATPase, respectively, indicate that both of these mitochondrial proton pumps are functioning during PEI transfection. Overall, we conclude that direct interaction between polyplexes and mitochondria may be the reason why mitochondrial function is impaired during PEI transfection.Keywords
This publication has 57 references indexed in Scilit:
- Toxicity Pathway Focused Gene Expression Profiling of PEI-Based Polymers for Pulmonary ApplicationsMolecular Pharmaceutics, 2010
- Polycation-Induced Cell Membrane Permeability Does Not Enhance Cellular Uptake or Expression Efficiency of Delivered DNAMolecular Pharmaceutics, 2010
- Polyethylenimine-mediated gene delivery to the lung and therapeutic applicationsDrug Design, Development and Therapy, 2008
- Mitochondrial Dysfunction Induced by a Cytotoxic Adenine Dinucleotide Produced by ADP-ribosyl Cyclases from cADPRPublished by Elsevier ,2007
- Low Molecular Weight Polyethylenimine-Mitochondrial Leader Peptide Conjugate for DNA Delivery to MitochondriaBulletin of the Korean Chemical Society, 2006
- Effects of polyamines on mitochondrial Ca2+ transportBiochimica et Biophysica Acta (BBA) - Biomembranes, 2004
- Oligomycin, inhibitor of the F0 part of H+-ATP-synthase, suppresses the TNF-induced apoptosisOncogene, 2002
- The Release of Cytochrome c from Mitochondria: A Primary Site for Bcl-2 Regulation of ApoptosisScience, 1997
- Inhibitors of permeability transition interfere with the disruption of the mitochondrial transmembrane potential during apoptosisFEBS Letters, 1996
- Correlation between the inhibition of cell growth by bis(ethyl)polyamine analogues and the decrease in the function of mitochondriaEuropean Journal of Biochemistry, 1994