ArticleBiomedicines2023
Development of an Animal Model for Traumatic Brain Injury Augmentation of Heterotopic Ossification in Response to Local Injury.
Article in Biomedicines, 2023. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 5 papers.
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Who cites it
5 citing papers in PubMed, 4 citations in OpenAlex.
- Neurogenic heterotopic ossification: from molecular mechanisms to clinical treatment.Journal of orthopaedic translation · 2026Review
- Animal models of tendon calcification: Past, present, and future.Animal models and experimental medicine · 2024Review
- The Role of Neuromodulation and Potential Mechanism in Regulating Heterotopic Ossification.Neurochemical research · 2024Review
- Molecular and Cellular Mechanisms of Bone and Cartilage Diseases.Biomedicines · 2023Article
- Prevascularization techniques for dental pulp regeneration: potential cell sources, intercellular communication and construction strategies.Frontiers in bioengineering and biotechnology · 2023Review
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Authors and funding
4 authors at 2 institutions in 1 country.
Funding
Abstract
Heterotopic ossification (HO) is the abnormal growth of bone in soft connective tissues that occurs as a frequent complication in individuals with traumatic brain injury (TBI) and in rare genetic disorders. Therefore, understanding the mechanisms behind ectopic bone formation in response to TBI is likely to have a significant impact on identification of novel therapeutic targets for HO treatment. In this study, we induced repetitive mild TBI (mTBI) using a weight drop model in mice and then stimulated HO formation via a local injury to the Achilles tendon or fibula. The amount of ectopic bone, as evaluated by micro-CT analyses, was increased by four-fold in the injured leg of mTBI mice compared to control mice. However, there was no evidence of HO formation in the uninjured leg of mTBI mice. Since tissue injury leads to the activation of hypoxia signaling, which is known to promote endochondral ossification, we evaluated the effect of IOX2, a chemical inhibitor of PHD2 and a known inducer of hypoxia signaling on HO development in response to fibular injury. IOX2 treatment increased HO volume by five-fold compared to vehicle. Since pericytes located in the endothelium of microvascular capillaries are known to function as multipotent tissue-resident progenitors, we determined if activation of hypoxia signaling promotes pericyte recruitment at the injury site. We found that markers of pericytes, NG2 and PDGFRβ, were abundantly expressed at the site of injury in IOX2 treated mice. Treatment of pericytes with IOX2 for 72 h stimulated expression of targets of hypoxia signaling (
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