ArticleJournal of orthopaedic translation2023
Identification of the miRNAome in human fracture callus and nonunion tissues.
Article in Journal of orthopaedic translation, 2023. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 10 papers.
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Who cites it
10 citing papers in PubMed.
- An integrated clinical and imaging model for predicting post-traumatic nonunion.Frontiers in medicine · 2026Article
- miR-3613-5p promotes lung cancer progression by targeting and regulating XPO6.Discover oncology · 2025Article
- Serum MicroRNA signatures associated with hypertrophic callus formation in polytrauma patients with traumatic brain injury.Scientific reports · 2025Article
- Is There a Role of Photoacoustic Imaging in Sports Medicine: Evidence Today.Orthopaedic surgery · 2025Review
- Teriparatide as a non-surgical salvage therapy for prolonged humerus fracture nonunion: A case report and literature review.World journal of orthopedics · 2025Article
- Revolutionizing Nonunion Treatment: The Expanding Role of Local Biological Therapies.Orthopedic reviews · 2025Article
- Activation of Wnt signaling in human fracture callus and nonunion tissues.Bone reports · 2024Article
- Article
- Delayed Union and Nonunion: Current Concepts, Prevention, and Correction: A Review.Bioengineering (Basel, Switzerland) · 2024Review
- Addressing musculoskeletal diseases by exploring the potentials of stem cells and plant-derived chemicals.Journal of orthopaedic translation · 2023Article
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Authors and funding
3 authors.
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Abstract
Background: Nonunions remain a challenging post-traumatic complication that often leads to a financial and health burden that affects the patient's quality of life. Despite a wealth of knowledge about fracture repair, especially gene and more recently miRNA expression, much remains unknown about the molecular differences between normal physiological repair (callus tissue) and a nonunion. To probe this lack of knowledge, we embarked on a study that sought to identify and compare the human miRNAome of normal bone to that present in a normal fracture callus and those from two different classic nonunion types, hypertrophic and oligotrophic. Methods: Normal bone and callus tissue samples were harvested during revision surgery from patients with physiological fracture repair and nonunions (hypertrophic and oligotrophic) and analyzed using histology. Also, miRNAs were isolated and screened using microarrays followed by bioinformatic analyses, including, differential expression, pathways and biological processes, as well as elucidation of target genes. Results: Out of 30,424 mature miRNAs (from 203 organisms) screened via microarrays, 635 (∼2.1%) miRNAs were found to be upregulated and 855 (∼2.8%) downregulated in the fracture callus and nonunion tissues as compared to intact bone. As our tissue samples were derived from humans, we focused on the human miRNAs and out of the 4223 human miRNAs, 86 miRNAs (∼2.0%) were upregulated and 51 (∼1.2%) were downregulated. Although there were similarities between the three experimental samples, we also found specific miRNAs that were unique to individual samples. We further identified the predicted target genes from these differentially expressed miRNAs as well as the relevant biological processes, including specific signaling pathways that are activated in all three experimental samples. Conclusion: Collectively, this is the first comprehensive study reporting on the miRNAome of intact bone as compared to fracture callus and nonunion tissues. Further, we identify specific miRNAs involved in normal physiological fracture repair as well as those of nonunions. The translational potential of this article: The data generated from this study further increase our molecular understanding of the roles of miRNAs during normal and aberrant fracture repair and this knowledge can be used in the future in the development of miRNA-based therapeutics for skeletal regeneration.
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