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Article Abstract

Deer antler-derived reserve mesenchyme cells (RMCs) are a promising source of cells for cartilage regeneration therapy due to their chondrogenic differentiation potential. However, the regulatory mechanism has not yet been elucidated. In this study, we analyzed the role of microRNAs (miRNAs) in regulating the differentiation of RMCs and in the post-transcriptional regulation of chondrogenesis and hypertrophic differentiation at the molecular and histological levels. The results showed that RMCs showed typical MSC differentiation potentials. During chondrogenic differentiation, we obtained the expression profile of miRNAs, among which miR- 145 was the most prominent candidate as a key microRNA involved in the balance of chondral and endochondral differentiation. Knockdown of miR-145 promoted chondrogenesis and inhibited hypertrophy differentiation in RMCs. Mechanically, by prediction through online databases combined with dual-luciferase reporter assay, SOX9 was suggested as a target of miR-145. Further validation experiments confirmed that knockdown of miR-145 contributed to the balance between endochondral versus chondral differentiation of RMCs by targeting SOX9. Additionally, RMCs transfected with the miR-145-knockdown-mediated lentiviral vector successfully promoted cartilage regeneration . In summary, our study suggested that the reciprocal negative feedback between SOX9 and miR-145 was essential for balancing between endochondral versus chondral differentiation of RMCs. Our study suggested that modification of RMCs using miRNAs transduction might be an effective treatment for cartilage defects.

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http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11705092PMC
http://dx.doi.org/10.3389/fvets.2024.1500969DOI Listing

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Laboratory of Production and Product Application of Sika Deer of Jilin Province, Jilin Agricultural University, Changchun, China.

Deer antler-derived reserve mesenchyme cells (RMCs) are a promising source of cells for cartilage regeneration therapy due to their chondrogenic differentiation potential. However, the regulatory mechanism has not yet been elucidated. In this study, we analyzed the role of microRNAs (miRNAs) in regulating the differentiation of RMCs and in the post-transcriptional regulation of chondrogenesis and hypertrophic differentiation at the molecular and histological levels.

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Article Synopsis
  • - The paper examines deer antlers as a model to understand rapid growth and cartilage formation in mammals, highlighting the under-explored roles of specific genes and regulatory mechanisms.
  • - Using a technique called fluorescence-labeled methylation-sensitive amplified polymorphism (F-MSAP), the study found that DNA methylation levels in reserve mesenchyme cells were significantly lower than in cartilage cells, indicating that DNA demethylation may drive fast cartilage differentiation.
  • - The research identified 20 unique methylated fragments linked to either reserve mesenchyme or cartilage, providing the first concrete evidence connecting epigenetic regulation to the rapid cartilage development occurring in antlers.
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