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The Cre-loxP system: a versatile tool for targeting genes in a cell- and stage-specific manner
M K Ray1, S P Fagan, F C Brunicardi
1Michael E. DeBakey Department of Surgery, Baylor College of Medicine, Houston, TX 77030, USA.
Abstract:
Gene-targeted mice, derived from embryonic stem cells, are useful tools to study gene function during development. However, if the inactivation of the target gene results in embryonic lethality, the postdevelopmental function of the gene cannot be further studied. The Cre recombinase-loxP (Cre-loxP) system was developed to overcome this limitation as well as to confine the inactivation of the target gene in a cell- or tissue-specific manner. This system allows for the inactivation of the target gene in a single cell type, thereby allowing the analysis of physiological and pathophysiological consequences of the genetic alteration in mature animals. A unique property of the insulin gene to be expressed only in pancreatic beta cells has allowed using the beta-cell-specific rat insulin promoter (RIP) for Cre recombinase expression to inactivate genes in beta cells. The RIP has been used to inactivate genes in beta cells and analysis of these genetically altered mice has provided important information regarding the role of potential transcription factors and the receptors in vivo, for regulation of insulin gene transcription and in the development of beta cells. The Cre-loxP system is at a relatively early stage of development, and the ability of this technique to virtually target any gene in any tissue at any stage of development makes the study of gene function in a single cell type in vivo an attainable goal. It is anticipated that the continued experience with this system will provide an important tool to determine the role of the transcription factors involved in insulin gene regulation and islet cell differentiation and ultimately provide the basis for novel therapy to treat diabetes.
Insights
The Cre-loxP system enables targeted gene inactivation in specific cells, like pancreatic beta cells, to study gene function in mature animals. This tool is crucial for understanding gene regulation in diabetes and developing new therapies.
Area of Science:
- Genetics
- Developmental Biology
- Molecular Biology
Background:
- Gene-targeted mice are essential for studying gene function during development.
- Embryonic lethality of target genes limits postdevelopmental studies.
- The Cre recombinase-loxP (Cre-loxP) system offers a solution for cell-specific gene inactivation.
Purpose of the Study:
- To overcome limitations of embryonic lethality in gene function studies.
- To enable cell- or tissue-specific gene inactivation using the Cre-loxP system.
- To investigate gene function in mature animals by targeting specific cell types, such as pancreatic beta cells.
Main Methods:
- Utilizing the Cre recombinase-loxP (Cre-loxP) system for targeted gene inactivation.
- Employing the beta-cell-specific rat insulin promoter (RIP) for Cre recombinase expression in pancreatic beta cells.
- Generating and analyzing genetically altered mice with inactivated genes in beta cells.
Main Results:
- The Cre-loxP system allows for gene inactivation in a single cell type, facilitating analysis in mature animals.
- RIP-driven Cre expression successfully inactivated genes specifically in beta cells.
- Studies provided insights into transcription factors and receptors regulating insulin gene transcription and beta cell development.
Conclusions:
- The Cre-loxP system is a powerful tool for studying gene function in specific cell types in vivo.
- This technology is vital for understanding insulin gene regulation and islet cell differentiation.
- Continued application of the Cre-loxP system may lead to novel therapeutic strategies for diabetes.