MedicineBiology

Y. Takahata, Mitsuki Urushizaki, Kanta Wakamori, Miho Kakiuchi, Tomohiko Murakami, Maiko Omi-Sugihara, K. Hata, Riko Nishimura

2026.2.1Journal of Oral Biosciences

DOI: 10.1016/j.job.2026.100738

tlooto Summary

The Runx2-SMOC axis provides a mechanistic bridge between transcriptional programs and matricellular control of BMP2 signaling and ECM dynamics, and will inform therapeutic strategies for skeletal disorders and broader pathologies in which SMOC proteins are implicated.

Abstract

BACKGROUND Secreted modular calcium-binding proteins (SMOCs), including SMOC1 and SMOC2, are secreted protein acidic and rich in cysteine family matricellular proteins that regulate cell-matrix interactions and growth factor signaling across development and disease. Recent studies positioned SMOC1 and SMOC2 as direct downstream targets of Runt-related transcription factor 2 (Runx2), the master transcription factor for osteoblast differentiation, and revealed dose-dependent modulation of bone morphogenetic protein 2 (BMP2) signaling by SMOC2.

HIGHLIGHT SMOC1/2 exhibit distinct yet complementary roles in skeletal morphogenesis, extracellular matrix assembly, and mineralization. At lower concentrations, SMOC2 enhances BMP2 signaling, whereas at higher concentrations, it inhibits receptor engagement, explaining context-dependent effects on osteogenesis. Genetic evidence from mouse models and human variants (e.g., SMOC2 Leu359Arg) links disrupted SMOC-ECM interactions to growth-plate defects, delayed ossification, and craniofacial phenotypes. Beyond the skeleton, SMOC proteins participate in angiogenesis, ocular development, kidney and testis biology, and platelet thrombin responses.

CONCLUSION The Runx2-SMOC axis provides a mechanistic bridge between transcriptional programs and matricellular control of BMP2 signaling and ECM dynamics. Clarifying isoform-specific functions and ECM anchoring mechanisms will inform therapeutic strategies for skeletal disorders and broader pathologies in which SMOC proteins are implicated.

Citation format

TAKAHATA, Y., et al. The runx2-smoc axis in skeletal development: Expanding roles of smoc1 and smoc2 in development and disease. Journal of Oral Biosciences, 2026, 68 1(1): 100738.