Binding and Uptake of Cationic Lipid: pDNA Complexes by Polarized Airway Epithelial Cells
- 1 January 1999
- journal article
- research article
- Published by Mary Ann Liebert Inc in Human Gene Therapy
- Vol. 10 (1), 25-36
- https://doi.org/10.1089/10430349950019165
Abstract
To better understand the barriers associated with cationic lipid-mediated gene transfer to polarized epithelial cells, Fischer rat thyroid (FRT) cells and polarized normal human bronchial epithelial (NHBE) cells grown on filter supports at an air-liquid interface were used to study the binding and uptake of cationic lipid:plasmid DNA (pDNA) complexes. The efficiencies of binding and uptake of cationic lipid:pDNA complexes by these cell systems were monitored using fluorescence microscopy of fluorescently tagged lipid or pDNA probes. Fluorescent probe bound to the cell surface was differentiated from internalized probe by adding trypan blue, which quenched the fluorescence of bound but not internalized probes. For proliferating cells, binding and internalization of the cationic lipid:pDNA complexes were determined to be efficient. In contrast, little binding or internalization of the com- plexes was observed using polarized epithelial cells. However, after aspirating a small area of cells from the fil- ter support, virtually all of the cells adjoining this newly formed edge bound and internalized the cationic lipid:pDNA complexes. To determine if their uptake in edge cells was related to the ability of the complexes to access the basolateral membranes of these cells, the binding and uptake of complexes was monitored in polarized NHBE cells that had been pretreated with EGTA or Ca2+-free media, strategies known to disrupt tight junctions. Cells treated in this manner bound and internalized cationic lipid:pDNA complexes efficiently and also expressed significant levels of transgene product. Control cells with intact tight junctions neither bound complexes nor ex- pressed significant transgene product. These data confirm and extend earlier observations that the polarized api- cal membranes of airway epithelial cells are resistant to transfection by lipid:pDNA complexes. Further, in con- trast to previous studies that have shown the entry step of complexes is not an important barrier for COS and HeLa cells, binding and entry of complexes in polarized NHBE cells appear to be rate limiting. These findings suggest that strategies designed to open the tight junctions of polarized epithelial cells may improve gene deliv- ery to these cells for diseases such as cystic fibrosis (CF).Keywords
This publication has 42 references indexed in Scilit:
- Efficiency of Cationic Lipid-Mediated Transfection of Polarized and Differentiated Airway Epithelial CellsIn VitroandIn VivoHuman Gene Therapy, 1998
- A low rate of cell proliferation and reduced DNA uptake limit cationic lipid-mediated gene transfer to primary cultures of ciliated human airway epitheliaGene Therapy, 1997
- Safety of a single aerosol administration of escalating doses of the cationic lipid GL-67/DOPE/DMPE-PEG5000 formulation to the lungs of normal volunteersGene Therapy, 1997
- Cell polarity of the insulin-like growth factor system in human intestinal epithelial cells. Unique apical sorting of insulin-like growth factor binding protein-6 in differentiated human colon cancer cells.Journal of Clinical Investigation, 1995
- Preferential Distribution of the Fluorescent Phospholipid Probes NBD-Phosphatidylcholine and Rhodamine-Phosphatidylethanolamine in the Exofacial Leaflet of Acetylcholine Receptor-Rich Membranes from Torpedo marmorataBiochemistry, 1995
- Breaking through the tight junction barrier.The Journal of cell biology, 1993
- Fluorescence quenching at interfaces and the permeation of acrylamide and iodide across phospholipid bilayersFEBS Letters, 1993
- Use of FITC-labeled influenza virus and flow cytometry to assess binding and internalization of virus by monocytes-macrophages and lymphocytesArchiv für die gesamte Virusforschung, 1993
- Energy dependent insulin binding, internalization and degradation in isolated cardiac myocytes from normal and diabetic ratsJournal of Molecular and Cellular Cardiology, 1986