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Culture of Murine Embryonic Metatarsals: A Physiological Model of Endochondral Ossification
Published on: December 3, 2016
SHP2 regulates chondrocyte terminal differentiation, growth plate architecture and skeletal cell fates
Margot E Bowen1, Ugur M Ayturk1, Kyle C Kurek1
1Orthopaedic Research Laboratories, Boston Children's Hospital, Boston, Massachusetts, United States of America.
Abstract:
Loss of PTPN11/SHP2 in mice or in human metachondromatosis (MC) patients causes benign cartilage tumors on the bone surface (exostoses) and within bones (enchondromas). To elucidate the mechanisms underlying cartilage tumor formation, we investigated the role of SHP2 in the specification, maturation and organization of chondrocytes. Firstly, we studied chondrocyte maturation by performing RNA-seq on primary chondrocyte pellet cultures. We found that SHP2 depletion, or inhibition of the ERK1/2 pathway, delays the terminal differentiation of chondrocytes from the early-hypertrophic to the late-hypertrophic stage. Secondly, we studied chondrocyte maturation and organization in mice with a mosaic postnatal inactivation of Ptpn11 in chondrocytes. We found that the vertebral growth plates of these mice have expanded domains of early-hypertrophic chondrocytes that have not yet terminally differentiated, and their enchondroma-like lesions arise from chondrocytes displaced from the growth plate due to a disruption in the organization of maturation and ossification zones. Furthermore, we observed that lesions from human MC patients also display disorganized chondrocyte maturation zones. Next, we found that inactivation of Ptpn11 in Fsp1-Cre-expressing fibroblasts induces exostosis-like outgrowths, suggesting that loss of SHP2 in cells on the bone surface and at bone-ligament attachment sites induces ectopic chondrogenesis. Finally, we performed lineage tracing to show that exostoses and enchondromas in mice likely contain mixtures of wild-type and SHP2-deficient chondrocytes. Together, these data indicate that in patients with MC, who are heterozygous for inherited PTPN11 loss-of-function mutations, second-hit mutations in PTPN11 can induce enchondromas by disrupting the organization and delaying the terminal differentiation of growth plate chondrocytes, and can induce exostoses by causing ectopic chondrogenesis of cells on the bone surface. Furthermore, the data are consistent with paracrine signaling from SHP2-deficient cells causing SHP2-sufficient cells to be incorporated into the lesions.
Insights
Loss of SHP2 (a protein tyrosine phosphatase) causes benign cartilage tumors by disrupting chondrocyte maturation and organization. This impacts growth plate chondrocytes, leading to enchondromas and ectopic chondrogenesis causing exostoses.
Area of Science:
- Cell Biology
- Developmental Biology
- Oncology
Background:
- Loss of PTPN11/SHP2 function in metachondromatosis (MC) patients and mice leads to benign cartilage tumors (exostoses and enchondromas).
- Understanding SHP2's role in chondrocyte biology is crucial for elucidating cartilage tumor formation mechanisms.
Purpose of the Study:
- Investigate the role of SHP2 in chondrocyte specification, maturation, and organization.
- Elucidate the molecular mechanisms underlying SHP2-associated cartilage tumor development.
Main Methods:
- RNA-sequencing on primary chondrocyte pellet cultures to assess differentiation.
- Mosaic postnatal inactivation of Ptpn11 in mouse chondrocytes to study growth plate organization.
- Analysis of mouse models and human MC patient lesions for chondrocyte organization and maturation.
- Inactivation of Ptpn11 in Fsp1-Cre fibroblasts to study bone surface effects.
- Lineage tracing to determine cell composition in tumors.
Main Results:
- SHP2 depletion or ERK1/2 inhibition delays chondrocyte terminal differentiation.
- Ptpn11 inactivation in chondrocytes expands early-hypertrophic chondrocyte domains and disrupts growth plate organization, leading to enchondroma-like lesions.
- Lesions in human MC patients show disorganized chondrocyte maturation zones.
- Loss of SHP2 in bone surface fibroblasts induces exostosis-like outgrowths via ectopic chondrogenesis.
- Exostoses and enchondromas contain mixtures of SHP2-deficient and wild-type chondrocytes.
- Paracrine signaling from SHP2-deficient cells may incorporate SHP2-sufficient cells into lesions.
Conclusions:
- Loss of SHP2 in growth plate chondrocytes disrupts organization and delays differentiation, causing enchondromas in MC patients.
- Loss of SHP2 in bone surface cells induces ectopic chondrogenesis, forming exostoses.
- SHP2 deficiency contributes to cartilage tumor formation through disrupted chondrocyte dynamics and ectopic ossification.
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