Ex vivo organotypic bone slice culture reveals preferential chondrogenesis after sustained growth plate injury

IF 3.9 4区 生物学 Q4 Biochemistry, Genetics and Molecular Biology
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Abstract

Postnatal bone growth primarily relies on chondrocyte proliferation and osteogenic differentiation within the growth plate (GP) via endochondral ossification. Despite its importance, the GP is vulnerable to injuries, affecting 15–30 % of bone fractures. These injuries may lead to growth discrepancies, influence bone length and shape, and negatively affecting the patient's quality of life. This study aimed to investigate the molecular and cellular physiological and pathophysiological regeneration following sustained growth plate injury (GPI) in an ex vivo rat femur organotypic culture (OTC) model. Specifically, focusing on postnatal endochondral ossification process. 300 μm thick ex vivo bone cultures with a 2 mm long horizontal GPI was utilized. After 15 days of cultivation, gene expression analysis, histological and immunohistochemistry staining's were conducted to analyze key markers of endochondral ossification. In our OTCs we observed a significant increase in Sox9 expression due to GPI at day 15. The Ihh-PTHrP feedback loop was affected, favoring chondrocyte proliferation and maturation. Ihh levels increased significantly on day 7 and day 15, while PTHrP was downregulated on day 7. GPI had no impact on osteoclast number and activity, but gene expression analysis indicated OTCs' efforts to inhibit osteoclast differentiation and activation, thereby reducing bone resorption.

In conclusion, our study provides novel insights into the molecular and cellular mechanisms underlying postnatal bone growth and regeneration following growth plate injury (GPI). We demonstrate that chondrocyte proliferation and differentiation play pivotal roles in the regeneration process, with the Ihh-PTHrP feedback loop modulating these processes. Importantly, our ex vivo rat femur organotypic culture model allows for the detailed investigation of these processes, providing a valuable tool for future research in the field of skeletal biology and regenerative medicine.

体外有机骨片培养揭示了生长板持续损伤后的软骨生成偏好。
出生后的骨骼生长主要依赖于生长板(GP)内软骨内骨化的软骨细胞增殖和成骨分化。尽管生长板非常重要,但它很容易受到损伤,15%-30%的骨折都与生长板有关。这些损伤可能导致生长差异,影响骨的长度和形状,并对患者的生活质量产生负面影响。本研究旨在通过大鼠股骨有机培养(OTC)模型,研究生长板持续损伤(GPI)后的分子和细胞生理及病理生理学再生。具体而言,重点关注出生后的软骨内骨化过程。利用厚度为 300 μm 的体外骨培养基和 2 mm 长的水平 GPI。培养 15 天后,进行基因表达分析、组织学和免疫组化染色,以分析软骨内骨化的关键标志物。在我们的 OTCs 中,我们观察到在第 15 天时,由于 GPI 的作用,Sox9 的表达明显增加。Ihh-PTHrP反馈回路受到影响,有利于软骨细胞的增殖和成熟。Ihh水平在第7天和第15天明显升高,而PTHrP则在第7天下调。GPI 对破骨细胞的数量和活性没有影响,但基因表达分析表明,OTCs 能抑制破骨细胞的分化和活化,从而减少骨吸收。总之,我们的研究对生长板损伤(GPI)后出生后骨生长和再生的分子和细胞机制提供了新的见解。我们证明,软骨细胞的增殖和分化在再生过程中起着关键作用,而 Ihh-PTHrP 反馈环路可调节这些过程。重要的是,我们的体外大鼠股骨器官型培养模型可以详细研究这些过程,为骨骼生物学和再生医学领域的未来研究提供了宝贵的工具。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Cells and Development
Cells and Development Biochemistry, Genetics and Molecular Biology-Developmental Biology
CiteScore
2.90
自引率
0.00%
发文量
33
审稿时长
41 days
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