Pathogenesis and precision management of osteogenesis imperfecta: from genetic mechanisms to novel therapies

Abstract Background Osteogenesis imperfecta (OI) is a clinically and genetically heterogeneous skeletal dysplasia characterized by systemic bone fragility. Beyond skeletal manifestations, OI is a multisystem condition involving dentinogenesis imperfecta, hearing loss, joint hyperlaxity, and cardiopulmonary complications. The diagnostic paradigm for OI has undergone a revolutionary shift from traditional clinical phenotyping to a molecular etiology-based framework. Driven by advancements in high-throughput sequencing, mutations in over 20 implicated genes have expanded the current OI nosology to at least 23 distinct types. Data sources This narrative review was conducted by searching for papers using PubMed/MEDLINE. Relevant publications were identified using single and/or combined keywords including: osteogenesis imperfecta, genes (such as COL1A1 and COL1A2 ), animal models, phenotypes (such as osteopenia and femoral bowing), and drug therapies (such as bisphosphonate and denosumab), mesenchymal stem cells, gene therapy, and pluripotent stem cells. Results This review systematically delineates the molecular pathogenesis of OI, categorizing defects into disrupted collagen biosynthesis, impaired post-translational modification, aberrant procollagen trafficking, and dysfunctional osteoblast differentiation or mineralization pathways. Of note, we highlight the unique genetic landscape and clinical characterization of OI within Asian populations. Furthermore, we evaluate the transition towards precision management. Surgical management of OI has been optimized by telescopic rodding and a multidisplinary approach. Bisphosphonates remain a cornerstone of medical therapy, though responses vary with OI genotypes. Emerging targeted biologics include denosumab, romosozumab, setrusumab, and fresolimumab. Finally, we discuss the transformative potential of cell-based therapies, particularly mesenchymal stem cells. Precision gene editing technologies, such as CRISPR-Cas9, offer a strategy in addressing the root genetic causes of OI. Conclusions Integrating molecular diagnostics with robust genotype–phenotype correlations is essential for advancing personalized care. Future breakthroughs will rely on the translation of gene and cell therapies to ultimately improve the long-term clinical outcomes for patients with OI.

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Publication Details

Journal
World Journal of Pediatrics
Published
2026-09-30
DOI
https://doi.org/10.1007/s12519-026-01086-7
Primary Topic
Connective tissue disorders research
Type
article
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article

Pathogenesis and precision management of osteogenesis imperfecta: from genetic mechanisms to novel therapies

Hai‐Yan Wei, Yan Sun, WANG Li, Ting Chen et al.
World Journal of Pediatrics
Connective tissue disorders research
article

Pathogenesis and precision management of osteogenesis imperfecta: from genetic mechanisms to novel therapies

Hai‐Yan Wei, Yan Sun, WANG Li, Ting Chen, Xiu-zhi Ren, Xinyi Jiang, Qiong Chen, Cai Zhang, Bingyu Yang, Wenli Lu, Zhe Su, Zhong-Hang Zhao, Xiao-Hong Sun, Hong-Ying Wang, Bing-Yan Cao, Wei Wu, Xue-Qian Wang, Yao-Shuang Li, Xin Li
article en

Abstract

Abstract Background Osteogenesis imperfecta (OI) is a clinically and genetically heterogeneous skeletal dysplasia characterized by systemic bone fragility. Beyond skeletal manifestations, OI is a multisystem condition involving dentinogenesis imperfecta, hearing loss, joint hyperlaxity, and cardiopulmonary complications. The diagnostic paradigm for OI has undergone a revolutionary shift from traditional clinical phenotyping to a molecular etiology-based framework. Driven by advancements in high-throughput sequencing, mutations in over 20 implicated genes have expanded the current OI nosology to at least 23 distinct types. Data sources This narrative review was conducted by searching for papers using PubMed/MEDLINE. Relevant publications were identified using single and/or combined keywords including: osteogenesis imperfecta, genes (such as COL1A1 and COL1A2 ), animal models, phenotypes (such as osteopenia and femoral bowing), and drug therapies (such as bisphosphonate and denosumab), mesenchymal stem cells, gene therapy, and pluripotent stem cells. Results This review systematically delineates the molecular pathogenesis of OI, categorizing defects into disrupted collagen biosynthesis, impaired post-translational modification, aberrant procollagen trafficking, and dysfunctional osteoblast differentiation or mineralization pathways. Of note, we highlight the unique genetic landscape and clinical characterization of OI within Asian populations. Furthermore, we evaluate the transition towards precision management. Surgical management of OI has been optimized by telescopic rodding and a multidisplinary approach. Bisphosphonates remain a cornerstone of medical therapy, though responses vary with OI genotypes. Emerging targeted biologics include denosumab, romosozumab, setrusumab, and fresolimumab. Finally, we discuss the transformative potential of cell-based therapies, particularly mesenchymal stem cells. Precision gene editing technologies, such as CRISPR-Cas9, offer a strategy in addressing the root genetic causes of OI. Conclusions Integrating molecular diagnostics with robust genotype–phenotype correlations is essential for advancing personalized care. Future breakthroughs will rely on the translation of gene and cell therapies to ultimately improve the long-term clinical outcomes for patients with OI.

World Journal of Pediatrics
Shanghai Jiao Tong University (CN), Ruijin Hospital (CN), Zhengzhou University (CN), Soochow University (CN), Shanghai Children's Medical Center (CN), Capital Institute of Pediatrics (CN), Zhengzhou Children's Hospital (CN), Children's Hospital of Zhejiang University (CN), Shandong Provincial Hospital (CN), Children's Hospital of Suzhou University (CN), Shenzhen Children's Hospital (CN), Tongji Hospital (CN), Children's Hospital of Capital Institute of Pediatrics (CN), Shandong First Medical University (CN)
Good health and well-being
Openalex Percentile: Top 12%
Connective tissue disorders research
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