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Pth1r Signal in Gli1+ Cells Maintains Postnatal Cranial Base Synchondrosis
K Amano1,2, Y Kitaoka2, S Kato1
1Department of Oral and Maxillofacial Reconstructive Surgery, Okayama University Graduate School of Medicine, Dentistry and Pharmaceutical Sciences, Okayama, Japan.
Insights
Parathyroid hormone receptor 1 (Pth1r) signaling in Gli1-positive cells is crucial for postnatal cranial base synchondrosis development and maintenance, impacting skull and midfacial growth.
Area of Science:
- Developmental Biology
- Craniofacial Development
- Endochondral Ossification
Background:
- Cranial base synchondroses are vital growth centers for skull, brain, and midfacial development.
- While Pth1r signaling is known to influence fetal synchondrosis development, its postnatal role remains unclear.
- The specific mesenchymal cells responsible for Pth1r signaling in synchondroses are yet to be identified.
Purpose of the Study:
- To investigate the role of Pth1r signaling in postnatal cranial base and synchondrosis development.
- To identify the cell types mediating Pth1r signaling within postnatal synchondroses.
Main Methods:
- Utilized an inducible mouse model with a hedgehog-responsive Gli1-Cre driver for postnatal studies.
- Generated Gli1-Cre mice to assess Pth1r signaling functions in postnatal synchondrosis.
- Performed histological analysis and laser microdissection followed by RNA sequencing.
Main Results:
- Gli1-Cre mice lacking Pth1r signaling exhibited shortened cranial bases and premature synchondrosis closure.
- Mutant synchondroses showed disorganization, premature ossification, and loss of Gli1-positive chondrocyte patterning.
- RNA sequencing revealed characteristic features of proliferation and maturation in flat chondrocytes.
Conclusions:
- Pth1r signaling in Gli1-positive cells is essential for the postnatal development and maintenance of cranial base synchondroses.
- These findings reveal novel functions of Pth1r signaling in cranial biology and development.
Abstract:
Cranial base synchondroses are the endochondral ossification centers for cranial base growth and thus indispensable for proper skull, brain, and midfacial development. The synchondroses are composed of mirror-image growth plates that are continuously maintained from the embryonic to postnatal stage through chondrocyte differentiation. Several factors, including Pth1r signaling, are known to control fetal synchondrosis development. However, there are currently no reports regarding any role for Pth1r signaling in postnatal cranial base and synchondrosis development. Also, the mesenchymal cells that source Pth1r signaling for synchondroses are not known. Here, we employed an inducible mouse model, a hedgehog-responsive Gli1-Cre driver, focusing on the postnatal study. We performed 2 inducible protocols using Gli1-Cre mice that uncovered distinct patterning of Gli1-positive and Gli1-negative chondrocytes in the synchondrosis cartilage. Moreover, we generated Gli1-Cre mice to assess their functions in postnatal synchondrosis and found that the mutants had survived postnatally. The mutant skulls morphologically presented unambiguous phenotypes where we noticed the shortened cranial base and premature synchondrosis closure. Histologically, gradual disorganization in mutant synchondroses caused an uncommon remaining central zone between hypertrophic zones on both sides while the successive differentiation of round, flat, and hypertrophic chondrocytes was observed in control sections. These mutant synchondroses disappeared and were finally replaced by bone. Of note, the mutant fusing synchondroses lost their characteristic patterning of Gli1-positive and Gli1-negative chondrocytes, suggesting that loss of Pth1r signaling alters the distribution of hedgehog-responsive chondrocytes. Moreover, we performed laser microdissection and RNA sequencing to characterize the flat proliferative and round resting chondrocytes where we found flat chondrocytes have a characteristic feature of both chondrocyte proliferation and maturation. Taken together, these data demonstrate that Pth1r signaling in Gli1-positive cells is essential for postnatal development and maintenance in cranial base synchondroses. Our findings will elucidate previously unknown aspects of Pth1r functions in cranial biology and development.
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