α Complementation in the Cre recombinase enzyme
- 8 September 2003
- Vol. 37 (1) , 25-29
- https://doi.org/10.1002/gene.10227
Abstract
Summary: The Cre‐loxP system is increasingly exploited for spatial and temporal gene inactivation. Here we present a novel approach to achieve this goal of selective gene inactivation. Following the model of α complementation in the β‐galactosidase enzyme, where the enzyme is split into independent polypeptides which are able to associate and maintain the enzymatic activity, we divided the Cre recombinase into two independent polypeptides (one containing the NH2 terminus (α) and a second one containing the COOH‐terminus (β)). Individually, the two polypeptides have no detectable activity. However, when coexpressed the polypeptides are able to associate, giving rise to Cre enzymatic activity, which optimally is as high as 30% of that seen with wildtype Cre recombinase in vitro. We present this strategy as a modification of the traditional Cre‐loxP system, which could be used to obtain a highly specific recombination pattern by expressing the two halves under the control of separate promoters. genesis 37:25–29, 2003.Keywords
This publication has 17 references indexed in Scilit:
- Disruption of CREB function in brain leads to neurodegenerationNature Genetics, 2002
- Codon‐improved Cre recombinase (iCre) expression in the mouseGenesis, 2002
- Cre recombinase: The universal reagent for genome tailoringGenesis, 2000
- Nuclear targeting determinants of the phage P1 cre DNA recombinaseNucleic Acids Research, 1999
- Engineering the mouse genome by site-specific recombinationCurrent Opinion in Biotechnology, 1999
- Subregion- and Cell Type–Restricted Gene Knockout in Mouse BrainCell, 1996
- Regulation of Cre recombinase activity by the synthetic steroid RU 486Nucleic Acids Research, 1996
- Independent control of immunoglobulin switch recombination at individual switch regions evidenced through Cre-loxP-mediated gene targetingCell, 1993
- Site-directed mutagenesis by gene targeting in mouse embryo-derived stem cellsCell, 1987
- Studies on the properties of P1 site-specific recombination: Evidence for topologically unlinked products following recombinationCell, 1983