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Parathyroid hormone regulates fates of murine osteoblast precursors in vivo
Deepak H. Balani, … , Noriaki Ono, Henry M. Kronenberg
Deepak H. Balani, … , Noriaki Ono, Henry M. Kronenberg
Published July 31, 2017
Citation Information: J Clin Invest. 2017;127(9):3327-3338. https://doi.org/10.1172/JCI91699.
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Research Article Bone biology

Parathyroid hormone regulates fates of murine osteoblast precursors in vivo

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Abstract

Teriparatide, a recombinant form of parathyroid hormone (PTH), is the only approved treatment for osteoporosis that increases the rate of bone formation. Teriparatide increases osteoblast numbers by suppressing osteoblast apoptosis and activating bone-lining cells. No direct evidence for teriparatide’s actions on early cells of the osteoblast lineage has been demonstrated. Here, we have employed a lineage-tracing strategy that uses a tamoxifen-dependent, promoter-driven cre to mark early cells of the osteoblast lineage in adult mice. We show that teriparatide increases the numbers of osteoblast precursors and drives their differentiation into mature osteoblasts. Unexpectedly, following withdrawal of teriparatide therapy, bone marrow adipocytes increased dramatically in number. Some of these adipocytes derived from cells marked by Sox9-cre expression weeks earlier. Continued therapy with teriparatide prevented the appearance of adipocytes. Selective, inducible deletion of the PTH receptor in Sox9-cre cells demonstrated that PTH receptor expression is required for teriparatide-mediated increases in early osteoblast precursors. The increase in early precursors after teriparatide administration was associated with robust suppression of precursor apoptosis without affecting their rate of proliferation. Thus, teriparatide increases the numbers of early cells of the osteoblast lineage, hastens their differentiation into osteoblasts, and suppresses their differentiation into adipocytes in vivo.

Authors

Deepak H. Balani, Noriaki Ono, Henry M. Kronenberg

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Figure 4

Teriparatide administration suppresses apoptosis in Sox9-creERT2+ multipotential cells.

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Teriparatide administration suppresses apoptosis in Sox9-creERT2+ multip...
(A and B) Representative flow cytometry dot plot analysis showing percentage of TdTomato+ cells from Sox9-creER; R26RTomato mice and gated on TdTomato+ cells (after gating out all CD45+ and DAPI+ cells) and annexin V–FITC at 3 and 7 days after tamoxifen. (C and D) Representative flow cytometry dot plot analysis showing percentage of TdTomato+ cells isolated from Sox9-creERT2; R26RTomato mice and gated on TdTomato+ cells and EdU+ cells at 3 and 7 days after tamoxifen. (E and F) Graphs representing flow cytometry analysis of the rate of apoptosis (A and B) and proliferation (C and D) 3 and 7 days after tamoxifen administration. Statistical evaluation was done by nonparametric 2-tailed Student’s t tests. *P < 0.01.

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