Chemically controlled formation of a DNA/calcium phosphate coprecipitate: Application for transfection of mature hippocampal neurons
- 28 July 2004
- journal article
- research article
- Published by Wiley in Journal of Neurobiology
- Vol. 60 (4) , 517-525
- https://doi.org/10.1002/neu.20073
Abstract
Numerous methods exist for transfecting postmitotic neurons, for example, DNA/calcium phosphate coprecipitation, cationic lipids, viruses, and physical methods such as microinjection, electroporation, and biolistics. Most methods, however, are either toxic to the cell, yield only poor transfection efficiencies, or cells have to be electroporated before plating. In this article, we present a standardized and fast transfection method using DNA/calcium phosphate coprecipitates that efficiently transfer DNA into mature, postmitotic hippocampal neurons. Shifting to CO2-independent media with a well-defined pH allows for the tight control of the coprecipitate formation and for adjusting the transfection parameters for the individual DNA plasmid used. The two critical parameters for reproducible and efficient transfections are: the precise pH during crystal formation, and the incubation time of the cells with the coprecipitate. This improved procedure now enables biochemical approaches. By transfecting a dominant-positive Ras mutant, we activate the Erk/MAP kinase signal transduction pathway. Furthermore, using a siRNA plasmid directed against MAP2, the level of an endogenously expressed protein is down-regulated upon transfection. These two approaches demonstrate that the presented transient transfection method can now be used to address questions on a biochemical level in hippocampal neurons. © 2004 Wiley Periodicals, Inc. J Neurobiol 60: 517–525, 2004Keywords
This publication has 21 references indexed in Scilit:
- Coupling the Iron-Responsive Element to GFP--An Inducible System to Study Translation in a Single Living CellScience's STKE, 2003
- Induction of dendritic spines by an extracellular domain of AMPA receptor subunit GluR2Nature, 2003
- A GFP-based System to Uncouple mRNA Transport from Translation in a Single Living NeuronMolecular Biology of the Cell, 2003
- RNAi functions in cultured mammalian neuronsProceedings of the National Academy of Sciences, 2002
- A System for Stable Expression of Short Interfering RNAs in Mammalian CellsScience, 2002
- Neuron-Specific Expression of Therapeutic Proteins: Evaluation of Different Cellular Promoters in Recombinant Adenoviral VectorsMolecular and Cellular Neuroscience, 2001
- Fast, convenient, and effective method to transiently transfect primary hippocampal neuronsJournal of Neuroscience Research, 1999
- Cell cycle-dependent activation of RasCurrent Biology, 1996
- Stimulation of Membrane Ruffling and MAP Kinase Activation by Distinct Effectors of RASScience, 1996
- Improved lipid-mediated gene transfer into primary cultures of hippocampal neuronsMolecular Brain Research, 1996