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Tissue- and cell-specific functions of the androgen receptor revealed through conditional knockout models in mice
Karel De Gendt1, Guido Verhoeven
1Laboratory for Experimental Medicine and Endocrinology, Catholic University of Leuven, Leuven, Belgium.
Abstract:
This review aims to evaluate the contribution of individual cell-selective knockout models to our current understanding of androgen action. Cre/loxP technology has allowed the generation of cell-selective knockout models targeting the androgen receptor (AR) in distinct putative target cells in a wide variety of organs and tissues including: testis, ovary, accessory sex tissues, muscle, bone, fat, liver, skin and myeloid tissue. In some androgen-regulated processes such as spermatogenesis and folliculogenesis this approach has lead to the identification of a key cellular mediator of androgen action (Sertoli and granulosa cells, respectively). In many target tissues, however, the final response to androgens appears to be more complex. Here, cell-selective knockout technology offers a platform upon which we can begin to unravel the more complex interplay and signaling pathways of androgens. A prototypic example is the analysis of mesenchymal-epithelial interactions in many accessory sex glands. Furthermore, for some actions of testosterone, in which part of the effect is mediated by the active metabolite 17β-estradiol, conditional knockout technology offers a novel strategy to study the relative contribution of AR and estrogen receptor-mediated signaling. The latter approach has already resulted in a better understanding of androgen action in brain and bone. Finally, cell-selective knockout technology has generated valuable models to search for AR-controlled molecular mediators of androgen action, a strategy that has successfully been applied to the study of androgen action in the testis and in the epididymis. Although some conditional knockout models have provided clear answers to physiologic questions, it should be noted that others have pointed to unexpected complexities or technical limitations confounding interpretation of the results.
Insights
Cell-selective knockout models reveal key cellular mediators of androgen action. This technology helps unravel complex androgen signaling pathways and their interplay with other receptors in various tissues.
Area of Science:
- Endocrinology and Molecular Biology
- Reproductive Biology
- Cellular Signaling
Background:
- Androgen receptor (AR) signaling is crucial for numerous physiological processes.
- Understanding cell-specific roles of AR is essential for deciphering complex endocrine functions.
- Cre/loxP technology enables precise genetic manipulation for studying gene function in specific cell types.
Purpose of the Study:
- To review the contribution of cell-selective knockout models to understanding androgen action.
- To highlight how these models elucidate androgen's role in diverse tissues.
- To discuss the utility of these models in dissecting complex signaling networks.
Main Methods:
- Generation of cell-selective knockout models targeting the androgen receptor (AR) using Cre/loxP technology.
- Application of these models across various organs and tissues (testis, ovary, muscle, bone, etc.).
- Analysis of androgen-regulated processes including spermatogenesis, folliculogenesis, and accessory sex gland function.
Main Results:
- Identification of key cellular mediators in processes like spermatogenesis (Sertoli cells) and folliculogenesis (granulosa cells).
- Revealed complexity in androgen responses in many target tissues, necessitating further investigation of cellular interplay.
- Facilitated study of AR and estrogen receptor signaling contributions in brain and bone, and identification of AR-controlled mediators in the testis and epididymis.
Conclusions:
- Cell-selective knockout models are powerful tools for advancing the understanding of androgen action.
- These models reveal both direct cellular mediators and complex signaling interactions.
- While providing clear answers, some models also highlight unexpected complexities and technical challenges in endocrine research.
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