ReviewCellular and molecular life sciences : CMLS2022
Gene regulatory network from cranial neural crest cells to osteoblast differentiation and calvarial bone development.
Review in Cellular and molecular life sciences : CMLS, 2022. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 35 papers.
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Who cites it
35 citing papers in PubMed.
- Aripiprazole‑induced alterations in axial skeletal ossification following in utero exposure in rats.Anatomy & cell biology · 2026Article
- Craniofacial development: genetics, signaling pathways, teratogenic mechanisms, and clinal significance.Molecular biomedicine · 2026Review
- Embryodysgenesis of the Lids and Orbit.Eye (London, England) · 2026Review
- IGSF10 regulates osteogenesis and osteoclastogenesis via a noncanonical EGFR-STAT1 signaling axis to promote skeletal regeneration.Bone research · 2026Article
- Lysine l-Lactylation: Bridging Metabolism, Chromatin and Disease.Cell proliferation · 2026Review
- Body Region Dysmorphology Is Predictive of Genetic Diagnoses in Infants With Congenital Heart Disease.Molecular genetics & genomic medicine · 2026Article
- Nf2 orchestrates β-arrestin2-biased PTH1R signaling to couple bone mass with skeletal integrity.Proceedings of the National Academy of Sciences of the United States of America · 2026Article
- Rare variants in FAT3 as possible contributors to non-syndromic orofacial cleft risk.Human genomics · 2026Article
- FOXI3 establishes the ectodermal niche in pharyngeal arches for cranial neural crest cells and their lineages.Bone research · 2026Article
- Neural Orchestration of Mandibular Development.International dental journal · 2026Review
- TGF-β/BMP signaling in skeletal biology: molecular mechanisms, regulatory networks, and therapeutic implications in development, regeneration, and disease.Bone research · 2026Review
- Advances in Composite Bioactive Scaffolds for Alveolar Bone Repair: Implications for Oral Surgery.Brazilian dental journal · 2026Review
- The NuRD component CHD3 promotes BMP signalling during cranial neural crest cell specification.EMBO reports · 2025Article
- Nf2/FGFR1/AKT axis directs cranial neural crest-derived skull morphogenesis via collagen synthesis and trafficking.JCI insight · 2025Article
- Fine-tuning of Wnt signaling by RNA surveillance factor Smg5 in the mouse craniofacial development.iScience · 2025Article
- Nf2-FAK signaling axis is critical for cranial bone ossification and regeneration.Nature communications · 2025Article
- FGFR2 directs inhibition of WNT signaling to regulate anterior fontanelle closure during skull development.Development (Cambridge, England) · 2025Article
- miR-468-3p suppresses osteogenic differentiation of BMSCs by targeting Runx2 and inhibits bone formation.Journal of orthopaedic surgery and research · 2024Article
- The Hippo signalling pathway in bone homeostasis: Under the regulation of mechanics and aging.Cell proliferation · 2024Review
- Evaluation of Potential Roles of Zinc Finger Homeobox 3 (Zfhx3) Expressed in Chondrocytes and Osteoblasts on Skeletal Growth in Mice.Calcified tissue international · 2024Article
Corrections and comments
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Authors and funding
10 authors.
Funding
Abstract
Calvarial bone is one of the most complex sequences of developmental events in embryology, featuring a uniquely transient, pluripotent stem cell-like population known as the cranial neural crest (CNC). The skull is formed through intramembranous ossification with distinct tissue lineages (e.g. neural crest derived frontal bone and mesoderm derived parietal bone). Due to CNC's vast cell fate potential, in response to a series of inductive secreted cues including BMP/TGF-β, Wnt, FGF, Notch, Hedgehog, Hippo and PDGF signaling, CNC enables generations of a diverse spectrum of differentiated cell types in vivo such as osteoblasts and chondrocytes at the craniofacial level. In recent years, since the studies from a genetic mouse model and single-cell sequencing, new discoveries are uncovered upon CNC patterning, differentiation, and the contribution to the development of cranial bones. In this review, we summarized the differences upon the potential gene regulatory network to regulate CNC derived osteogenic potential in mouse and human, and highlighted specific functions of genetic molecules from multiple signaling pathways and the crosstalk, transcription factors and epigenetic factors in orchestrating CNC commitment and differentiation into osteogenic mesenchyme and bone formation. Disorders in gene regulatory network in CNC patterning indicate highly close relevance to clinical birth defects and diseases, providing valuable transgenic mouse models for subsequent discoveries in delineating the underlying molecular mechanisms. We also emphasized the potential regenerative alternative through scientific discoveries from CNC patterning and genetic molecules in interfering with or alleviating clinical disorders or diseases, which will be beneficial for the molecular targets to be integrated for novel therapeutic strategies in the clinic.
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