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Generation of Genetically Modified Organotypic Skin Cultures Using Devitalized Human Dermis
Published on: December 14, 2015
Development of gene-switch transgenic mice that inducibly express transforming growth factor beta1 in the epidermis
1Department of Cell Biology, Baylor College of Medicine, Houston, TX 77030, USA. xwang@bcm.tmc.edu
Abstract:
Previous attempts to establish transgenic mouse models to study the functions of transforming growth factor beta1 (TGFbeta1) in the skin revealed controversial roles for TGFbeta1 in epidermal growth (inhibition vs. stimulation) and resulted in neonatal lethality in one instance. To establish a viable transgenic model for studying functions of TGFbeta1 in the skin, we have now developed transgenic mice, which allow focal induction of the TGFbeta1 transgene in the epidermis at different expression levels and at different developmental stages. This system, termed "gene-switch," consists of two transgenic lines. The mouse loricrin vector targets the GLVPc transactivator (a fusion molecule of the truncated progesterone receptor and the GAL4 DNA binding domain), and a thymidine kinase promoter drives the TGFbeta1 target gene with GAL4 binding sites upstream of the promoter. These two transgenic lines were mated to generate bigenic mice, and TGFbeta1 transgene expression was controlled by topical application of an antiprogestin. On epidermal-specific induction of the TGFbeta1 transgene, the BrdUrd labeling index in the transgenic epidermis decreased 6-fold compared with controls. Induction of the TGFbeta1 transgene expression also caused epidermal resistance to phorbol 12-myristate 13-acetate-induced hyperplasia, with a reduction in both epidermal thickness and BrdUrd labeling compared with those in controls. In addition, TGFbeta1 transgene expression induced an increase in angiogenesis in the dermis. Given that the TGFbeta1 transgene can affect both the epidermis and dermis, this transgenic model will provide a useful tool for studying roles of TGFbeta1 in wound-healing and skin carcinogenesis in the future.
Insights
This study developed a novel "gene-switch" transgenic mouse model for controlled epidermal transforming growth factor beta1 (TGFbeta1) expression, revealing its inhibitory effects on epidermal growth and promoting angiogenesis.
Area of Science:
- Dermatology
- Molecular Biology
- Genetics
Background:
- Previous transgenic models for studying transforming growth factor beta1 (TGFbeta1) in skin exhibited controversial results and neonatal lethality.
- A need exists for a viable model to precisely investigate TGFbeta1 functions in skin development and disease.
Purpose of the Study:
- To develop a novel transgenic mouse model enabling controlled, focal induction of TGFbeta1 in the epidermis.
- To investigate the specific roles of TGFbeta1 in epidermal growth, hyperplasia, and dermal angiogenesis.
Main Methods:
- Development of a two-line transgenic system (
- gene-switch
- ) combining a loricrin vector for transactivator delivery and a thymidine kinase promoter for TGFbeta1 expression.
- Bigenic mice were generated and treated with an antiprogestin to induce focal epidermal TGFbeta1 transgene expression.
- Epidermal proliferation (BrdUrd labeling index) and response to phorbol ester-induced hyperplasia were assessed.
Main Results:
- Epidermal-specific induction of TGFbeta1 significantly reduced the BrdUrd labeling index by 6-fold, indicating inhibited epidermal growth.
- Induced TGFbeta1 expression conferred resistance to phorbol 12-myristate 13-acetate-induced epidermal hyperplasia.
- TGFbeta1 transgene expression led to increased angiogenesis in the dermis.
Conclusions:
- The developed "gene-switch" transgenic model provides a powerful tool for studying TGFbeta1 functions in the skin.
- TGFbeta1 acts as an inhibitor of epidermal proliferation and influences dermal angiogenesis.
- This model is suitable for future research on TGFbeta1's roles in wound healing and skin carcinogenesis.
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