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Published on: February 28, 2017
Greater bone formation of Y2 knockout mice is associated with increased osteoprogenitor numbers and altered Y1
Pernilla Lundberg1, Susan J Allison, Nicola J Lee
1Neuroscience Research Program, Garvan Institute of Medical Research, St. Vincent's Hospital, Darlinghurst, Sydney, New South Wales, Australia. pernilla.lundberg@odont.umu.se
Abstract:
Germ line or hypothalamus-specific deletion of Y2 receptors in mice results in a doubling of trabecular bone volume. However, the specific mechanism by which deletion of Y2 receptors increases bone mass has not yet been identified. Here we show that cultured adherent bone marrow stromal cells from Y2(-/-) mice also demonstrate increased mineralization in vitro. Isolation of two populations of progenitor cell types, an immature mesenchymal stem cell population and a more highly differentiated population of progenitor cells, revealed a greater number of the progenitor cells within the bone of Y2(-/-) mice. Analysis of Y receptor transcripts in cultured stromal cells from wild-type mice revealed high levels of Y1 but not Y2, Y4, Y5, or y6 receptor mRNA. Interestingly, germ line Y2 receptor deletion causes Y1 receptor down-regulation in stromal cells and bone tissue possibly due to the lack of feedback inhibition of NPY release and subsequent overstimulation of Y1 receptors. Furthermore, deletion of Y1 receptors resulted in increased bone mineral density in mice. Together, these findings indicate that the greater number of mesenchymal progenitors and the altered Y1 receptor expression within bone cells in the absence of Y2 receptors are a likely mechanism for the greater bone mineralization in vivo and in vitro, opening up potential new treatment avenues for osteoporosis.
Insights
Deleting Y2 receptors in mice doubles bone volume by increasing mesenchymal stem cells and altering Y1 receptor expression. This suggests new therapeutic targets for osteoporosis treatment.
Area of Science:
- Endocrinology
- Bone Biology
- Cell Biology
Background:
- Germ line or hypothalamus-specific deletion of Y2 receptors in mice doubles trabecular bone volume.
- The precise mechanism underlying Y2 receptor deletion-induced increases in bone mass remains unidentified.
Purpose of the Study:
- To elucidate the mechanism by which Y2 receptor deletion enhances bone mass.
- To investigate the role of Y1 receptor expression in Y2 receptor knockout mice.
Main Methods:
- Cultured bone marrow stromal cells from Y2(-/-) mice were analyzed for mineralization.
- Mesenchymal stem cell populations were isolated and quantified.
- Y receptor transcript levels in stromal cells were analyzed.
- Y1 receptor deletion was performed in mice to assess bone mineral density.
Main Results:
- Y2(-/-) mice exhibited increased mineralization in cultured bone marrow stromal cells.
- A higher number of progenitor cells, including mesenchymal stem cells, were found in Y2(-/-) mice.
- Y2 receptor deletion led to Y1 receptor down-regulation in stromal cells and bone tissue.
- Deletion of Y1 receptors resulted in increased bone mineral density.
Conclusions:
- Increased mesenchymal progenitors and altered Y1 receptor expression in Y2 receptor-deficient mice contribute to enhanced bone mineralization.
- These findings suggest potential therapeutic strategies for osteoporosis targeting Y2 and Y1 receptors.
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