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Published on: February 24, 2017
Chordin Like-1 Regulates Osteoblast and Adipocyte Differentiation Through Stabilizing Insulin-Like Growth Factor
Haijian Sun1, Shuang Wang1, Zheng Yang2
1NHC Key Lab of Hormones and Development, Tianjin Key Lab of Metabolic Diseases, Chu Hsien-I Memorial Hospital & Institute of Endocrinology, Tianjin Medical University, Tianjin, People's Republic of China.
Abstract:
Chordin like-1 (CHRDL1) is an antagonist of bone morphogenetic proteins (BMPs) that acts through binding BMPs and blocking their interaction with BMP receptors. CHRDL1 plays a role in osteoblast differentiation but controversial effects were reported. On the other hand, the role of CHRDL1 in adipogenesis is unknown. In the present study, we investigated the function of CHRDL1 in regulating differentiation of osteoblasts and adipocytes and elucidated the underlying mechanism. CHRDL1 expression was downregulated during osteogenesis while it was upregulated during adipogenesis in primary cultured and established mesenchymal progenitor cell lines. Functional experiments revealed that CHRDL1 suppressed osteoblast differentiation and promoted adipocyte differentiation. Mechanistic explorations revealed that CHRDL1 is directly bound to insulin-like growth factor binding protein 3 (IGFBP3) and attenuated the degradation of the latter. Furthermore, CHRDL1 and IGFBP3 suppressed the activity of insulin receptor substrate 1 (IRS1)/AKT serine/threonine kinase (AKT)/mechanistic target of rapamycin kinase complex 1 (mTORC1) signaling in progenitor cells undergoing osteogenic differentiation. By contrast, they activated AKT/mTORC1 signaling independently of IRS1 during adipogenic differentiation. CHRDL1 enhanced the interaction of nuclear IGFBP3 and retinoid X receptor α (RXRα) during adipogenesis, and inhibition of RXR inactivated AKT and attenuated the stimulation of adipogenic differentiation by CHRDL1. Overexpression of IGFBP3 relieved the perturbation of osteogenic and adipogenic differentiation of progenitor cells induced by CHRDL1 silencing. Finally, CHRDL1 and IGFBP3 were upregulated in the trabecular bone of aged mice. Our study provides evidence that CHRDL1 reciprocally regulates osteoblast and adipocyte differentiation through stabilizing IGFBP3 and differentially modulating AKT/mTORC1 signaling.
Insights
Chordin like-1 (CHRDL1) regulates bone and fat cell differentiation by stabilizing insulin-like growth factor binding protein 3 (IGFBP3). It inhibits osteogenesis while promoting adipogenesis via distinct signaling pathways.
Area of Science:
- Cell biology
- Biochemistry
- Endocrinology
Background:
- Chordin like-1 (CHRDL1) antagonizes bone morphogenetic proteins (BMPs) and influences osteoblast differentiation, but its role in adipogenesis is unclear.
- Understanding CHRDL1's function is crucial for deciphering mesenchymal progenitor cell fate decisions.
Purpose of the Study:
- Investigate CHRDL1's role in osteoblast and adipocyte differentiation.
- Elucidate the molecular mechanisms underlying CHRDL1's regulatory functions.
Main Methods:
- Utilized primary cultured and established mesenchymal progenitor cell lines.
- Performed gene expression analysis, functional assays (differentiation), protein interaction studies, and signaling pathway analysis.
- Examined CHRDL1 and IGFBP3 expression in aged mouse bone tissue.
Main Results:
- CHRDL1 expression inversely correlated with osteogenesis and positively with adipogenesis.
- CHRDL1 suppressed osteoblast differentiation and promoted adipocyte differentiation.
- CHRDL1 stabilized insulin-like growth factor binding protein 3 (IGFBP3) and modulated AKT/mTORC1 signaling differently in osteogenesis and adipogenesis.
- CHRDL1-IGFBP3 complex interacted with retinoid X receptor α (RXRα) to promote adipogenesis.
Conclusions:
- CHRDL1 reciprocally regulates osteoblast and adipocyte differentiation.
- Stabilization of IGFBP3 and differential modulation of AKT/mTORC1 signaling are key mechanisms.
- Findings highlight CHRDL1-IGFBP3 axis in controlling cell fate and suggest implications for aging-related bone and fat changes.
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