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Updated: Jun 23, 2025

Laser Capture Microdissection of Mouse Embryonic Cartilage and Bone for Gene Expression Analysis
Published on: December 18, 2019
Protein phosphatase SCP4 regulates cartilage development and endochondral osteogenesis via FoxO3a dephosphorylation
Pinger Wang1,2, Kaiao Zou1,2, Jin Cao3
1Institute of Orthopedics and Traumatology, The First Affiliated Hospital of Zhejiang Chinese Medical University, Zhejiang Provincial Hospital of Chinese Medicine, Hangzhou, Zhejiang, China.
Abstract:
The regulatory mechanisms involved in embryonic development are complex and yet remain unclear. SCP4 represents a novel nucleus-resident phosphatase identified in our previous study. The primary aim of this study was to elucidate the function of SCP4 in the progress of cartilage development and endochondral osteogenesis. SCP4-/- and SCP4Col2ER mice were constructed to assess differences in bone formation using whole skeleton staining. ABH/OG staining was used to compare chondrocyte differentiation and cartilage development. Relevant biological functions were analysed using RNA-sequencing and GO enrichment, further validated by immunohistochemical staining, Co-IP and Western Blot. Global SCP4 knockout led to abnormal embryonic development in SCP4-/- mice, along with delayed endochondral osteogenesis. In parallel, chondrocyte-specific removal of SCP4 yielded more severe embryonic deformities in SCP4Col2ER mice, including limb shortening, reduced chondrocyte number in the growth plate, disorganisation and cell enlargement. Moreover, RNA-sequencing analysis showed an association between SCP4 and chondrocyte apoptosis. Notably, Tunnel-positive cells were indeed increased in the growth plates of SCP4Col2ER mice. The deficiency of SCP4 up-regulated the expression levels of pro-apoptotic proteins both in vivo and in vitro. Additionally, phosphorylation of FoxO3a (pFoxO3a), a substrate of SCP4, was heightened in chondrocytes of SCP4Col2ER mice growth plate, and the direct interaction between SCP4 and pFoxO3a was further validated in chondrocytes. Our findings underscore the critical role of SCP4 in regulating cartilage development and endochondral osteogenesis during embryonic development partially via inhibition of chondrocytes apoptosis regulated by FoxO3a dephosphorylation.
Insights
SCP4 is crucial for embryonic development, regulating cartilage formation and bone growth by preventing chondrocyte apoptosis through FoxO3a dephosphorylation.
Area of Science:
- Skeletal Biology
- Developmental Biology
- Molecular Genetics
Background:
- Embryonic development involves complex regulatory mechanisms that are not fully understood.
- SCP4, a novel nucleus-resident phosphatase, was identified in previous research.
Purpose of the Study:
- To investigate the function of SCP4 in cartilage development and endochondral osteogenesis.
- To elucidate the role of SCP4 in embryonic skeletal formation.
Main Methods:
- Generation of SCP4 knockout (SCP4-/-) and chondrocyte-specific knockout (SCP4Col2ER) mouse models.
- Whole skeleton staining, ABH/OG staining, RNA-sequencing, Gene Ontology (GO) enrichment, immunohistochemistry, Co-IP, and Western Blot analyses.
- TUNEL assay to assess chondrocyte apoptosis.
Main Results:
- SCP4 deficiency caused abnormal embryonic development and delayed endochondral ossification in SCP4-/- mice.
- SCP4Col2ER mice exhibited severe embryonic deformities, including limb shortening and growth plate abnormalities.
- SCP4 deficiency increased chondrocyte apoptosis by up-regulating pro-apoptotic proteins and heightened phosphorylation of FoxO3a.
Conclusions:
- SCP4 plays a critical role in embryonic cartilage development and endochondral osteogenesis.
- SCP4 regulates chondrocyte apoptosis via dephosphorylation of FoxO3a, thereby influencing skeletal development.
- These findings highlight SCP4 as a key regulator in skeletal formation during embryogenesis.
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