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Erschienen in: Journal of Bone and Mineral Metabolism 2/2023

27.02.2023 | Original Article

Impaired function of skeletal stem cells derived from growth plates in ovariectomized mice

verfasst von: Q. Zhou, L. L. He, L. Z. Du, N. B. Zhao, C. P. Lv, J. F. Liang

Erschienen in: Journal of Bone and Mineral Metabolism | Ausgabe 2/2023

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Abstract

Introduction

Mouse skeletal stem cells (mSSCs, CD45Ter119Tie2CD51+Thy6C3CD105CD200+population) are identified in growth plates (GP) and play important roles in bone regeneration. However, the role of mSSCs in osteoporosis remains unclear.

Materials and methods

The GP were stained by HE staining, and the mSSC lineage was analyzed by flow cytometry at postnatal of 14 days and 30 days in wild-type mice. The mice (8 weeks) were either sham operated or ovariectomy (OVX) and then sacrificed at 2, 4 and 8 w. The GP were stained by Movat staining, and mSSC lineage was analyzed. Then, mSSCs were sorted by fluorescence-activated cell sorting (FACS); the clonal ability, chondrogenic differentiation and osteogenic differentiation were evaluated, and the changed genes were analyzed by RNA-seq.

Results

The percentage of mSSCs were decreased with the narrow GP. Heights of GP were decreased significantly in 8w-ovx mice compared with 8w-sham mice. We found the percentage of mSSCs were decreased in mice at 2w after ovx, but the cell numbers were not changed. Further, the percentage and cell numbers of mSSCs were not changed at 4w and 8w after ovx. Importantly, the clonal ability, chondrogenic differentiation and osteogenic differentiation of mSSCs were impaired at 8w after ovx. We found 114 genes were down-regulated in mSSCs, including skeletal developmental genes such as Col10a1, Col2a1, Mef2c, Sparc, Matn1, Scube2 and Dlx5. On the contrary, 526 genes were up-regulated, including pro-inflammatory genes such as Csf1, Nfkbla, Nfatc2, Nfkb1 and Nfkb2.

Conclusion

Function of mSSCs was impaired by up-regulating pro-inflammatory genes in ovx-induced osteoporosis.
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Metadaten
Titel
Impaired function of skeletal stem cells derived from growth plates in ovariectomized mice
verfasst von
Q. Zhou
L. L. He
L. Z. Du
N. B. Zhao
C. P. Lv
J. F. Liang
Publikationsdatum
27.02.2023
Verlag
Springer Nature Singapore
Erschienen in
Journal of Bone and Mineral Metabolism / Ausgabe 2/2023
Print ISSN: 0914-8779
Elektronische ISSN: 1435-5604
DOI
https://doi.org/10.1007/s00774-023-01406-1

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