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Prolactin controls mammary gland development via direct and indirect mechanisms
C Brisken1, S Kaur, T E Chavarria
1Whitehead Institute for Biomedical Research and Department of Biology, Massachusetts Institute of Technology, Cambridge, Massachusetts, 02142-1479, USA.
Abstract:
The inactivation of the prolactin receptor gene by homologous recombination has made it possible to investigate the role of prolactin signaling in mammary gland development without resort to ablative surgery of the endocrine glands. In knockout mice lacking the prolactin receptor, mammary development is normal up to puberty. Subsequently, the ducts branch less frequently than those of wild-type animals. While terminal end buds differentiate to alveolar buds in wild-type females by the end of puberty, in knockout females terminal end bud-like structures persist at the ductal ends. To distinguish between the developmental defects that are intrinsic to the epithelium and those that result from systemic endocrine alterations in prolactin receptor knockout mice, mammary epithelium from prolactin receptor knockouts was transplanted into mammary fat pads of wild-type mice. In virgin mice, the knockout epithelial transplants developed normally at puberty, indicating an indirect effect of prolactin on ductal development. Prolactin receptor knockout females are infertile due to multiple reproductive defects, but epithelial transplants allowed us to assess the extent to which the absence of prolactin receptor is limiting, under systemic conditions that allow full mammary gland development. During pregnancy, the prolactin receptor knockout transplants showed normal side branching and the formation of alveolar buds, but no lobuloalveolar development. Thus, prolactin affects mammary morphogenesis in two different ways: it controls ductal side branching and terminal end bud regression in virgin animals via indirect mechanisms, but acts directly on the mammary epithelium to produce lobuloalveolar development during pregnancy.
Insights
Prolactin receptor knockout mice show normal mammary development until puberty. Prolactin indirectly controls ductal branching and directly promotes lobuloalveolar development during pregnancy.
Area of Science:
- Reproductive Biology
- Developmental Biology
- Endocrinology
Background:
- Prolactin signaling is crucial for mammary gland development.
- Investigating prolactin's role traditionally required endocrine gland ablation.
- Homologous recombination enables targeted prolactin receptor gene inactivation.
Purpose of the Study:
- To elucidate the specific roles of prolactin signaling in mammary gland morphogenesis.
- To differentiate between direct and indirect effects of prolactin on mammary development.
- To assess prolactin's impact on ductal and alveolar development using knockout models.
Main Methods:
- Generation of prolactin receptor knockout mice via homologous recombination.
- Mammary gland analysis in knockout and wild-type mice from puberty through pregnancy.
- Mammary epithelium transplantation from knockout to wild-type hosts to distinguish intrinsic vs. systemic effects.
Main Results:
- Mammary development is normal until puberty in prolactin receptor knockout mice.
- Ductal branching is reduced, and terminal end buds persist in knockout virgin mice, suggesting indirect prolactin effects.
- During pregnancy, knockout transplants exhibit normal side branching and alveolar bud formation but lack lobuloalveolar development, indicating direct prolactin action.
Conclusions:
- Prolactin influences mammary gland development through both indirect (ductal branching) and direct (lobuloalveolar development) mechanisms.
- Indirect effects on ductal morphogenesis occur in virgin animals, while direct effects are essential for pregnancy-induced lobuloalveolar development.
- Targeted gene inactivation and transplantation models effectively dissect the complex roles of prolactin in mammary gland development.