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Updated: May 18, 2026

Laser Capture Microdissection of Mouse Embryonic Cartilage and Bone for Gene Expression Analysis
Published on: December 18, 2019
Notch gain of function inhibits chondrocyte differentiation via Rbpj-dependent suppression of Sox9
Shan Chen1, Jianning Tao, Yangjin Bae
1Department of Molecular and Human Genetics, Baylor College of Medicine, Houston, TX, USA.
Abstract:
Notch signaling plays a critical role during development by directing the binary cell fate decision between progenitors and differentiated cells. Previous studies have shown sustained Notch activation in cartilage leads to chondrodysplasia. Genetic evidence indicates that Notch regulates limb bud mesenchymal stem cell differentiation into chondrocytes via an Rbpj-dependent Notch pathway. However, it is still unknown how Notch governs chondrogenesis in the axial skeleton where Notch serves a primary patterning function. We hypothesized that both Rbpj-dependent and Rbpj-independent Notch signaling mechanisms might be involved. Cartilage-specific Notch gain-of-function (GOF) mutant mice display chondrodysplasia accompanied by loss of Sox9 expression in vertebrae. To evaluate the contribution of an Rbpj-dependent Notch signaling to this phenotype, we deleted Rbpj on the Notch GOF background. These mice showed persistent spine abnormalities characterized by "butterfly" vertebrae suggesting that removal of Rbpj does not fully rescue the axial skeleton deformities caused by Notch GOF. However, Sox9 protein level was restored in Rbpj-deficient Notch GOF mice compared with Notch GOF mutants, demonstrating that regulation of Sox9 expression is canonical or Rbpj-dependent. To further understand the molecular basis of this regulation, we performed chromatin immunoprecipitation (ChIP) assays and detected the recruitment of the Rbpj/NICD transcription complex to Rbpj-binding sites upstream of the Sox9 promoter. The association of the Rbpj/NICD complex with the Sox9 promoter is associated with transcriptional repression of Sox9 in a cellular model of chondrocyte differentiation. Hence, Notch negatively regulates chondrocyte differentiation in the axial skeleton by suppressing Sox9 transcription, and Rbpj-independent Notch signaling mechanisms may also contribute to axial skeletogenesis.
Insights
Notch signaling negatively regulates axial skeleton development by suppressing Sox9. Rbpj-dependent Notch pathways control Sox9 transcription, but Rbpj-independent mechanisms also influence chondrogenesis.
Area of Science:
- Developmental Biology
- Skeletal Biology
- Molecular Signaling
Background:
- Notch signaling is crucial for cell fate decisions during development.
- Sustained Notch activation in cartilage causes chondrodysplasia.
- Notch regulates limb skeletal development via Rbpj-dependent pathways.
Purpose of the Study:
- Investigate Notch's role in axial skeleton chondrogenesis.
- Determine if Rbpj-dependent and -independent Notch pathways are involved.
- Elucidate the molecular mechanisms of Notch-mediated chondrogenesis regulation.
Main Methods:
- Utilized cartilage-specific Notch gain-of-function (GOF) mutant mice.
- Generated Rbpj-deficient Notch GOF mice to assess Rbpj's role.
- Performed chromatin immunoprecipitation (ChIP) assays.
- Analyzed Sox9 expression and Rbpj/NICD complex binding to the Sox9 promoter.
Main Results:
- Notch GOF mutants exhibited chondrodysplasia and reduced Sox9 expression in vertebrae.
- Rbpj deletion did not fully rescue spine abnormalities in Notch GOF mice.
- Sox9 protein levels were restored in Rbpj-deficient Notch GOF mice, indicating Rbpj-dependent regulation.
- ChIP assays confirmed Rbpj/NICD complex recruitment to the Sox9 promoter, leading to transcriptional repression.
Conclusions:
- Notch signaling negatively regulates chondrocyte differentiation in the axial skeleton by repressing Sox9 transcription.
- Regulation of Sox9 by Notch is canonical and Rbpj-dependent.
- Rbpj-independent Notch signaling pathways may also contribute to axial skeletogenesis.
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