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游泳训练会在非骨原细胞和骨原细胞的硬骨鱼类中引起不同的骨骼基因表达模式。

Swim training induces distinct osseous gene expression patterns in anosteocytic and osteocytic teleost fish.

机构信息

Research Centre, Shriners Hospital for Children-Canada, Montreal, Canada; Faculty of Dental Medicine and Oral Health Sciences, McGill University, Montreal, Canada; Department of Pediatrics and Adolescent Medicine, Johannes Kepler University Linz, Linz, Austria.

Julius Wolff Institute and Berlin Institute of Health Center for Regenerative Therapies, Charité-Universitätsmedizin Berlin, Berlin, Germany.

出版信息

Bone. 2024 Aug;185:117125. doi: 10.1016/j.bone.2024.117125. Epub 2024 May 15.

Abstract

The traditional understanding of bone mechanosensation implicates osteocytes, canaliculi, and the lacunocanalicular network in biomechanical adaptation. However, recent findings challenge this notion, as shown in advanced teleost fish where anosteocytic bone lacking osteocytes are nevertheless responsive to mechanical load. To investigate specific molecular mechanisms involved in bone mechanoadaptation in osteocytic and anosteocytic fish bone, we conducted a 5-min single swim-training experiment with zebrafish and ricefish, respectively. Through RNASeq analysis of fish spines, analyzed at various time points following swim training, we uncovered distinct gene expression patterns in osteocytic and anosteocytic fish bones. Notably, osteocytic fish bone exhibited an early response to mechanical load, contrasting to a delayed response observed in anosteocytic fish bones, both within 8 h following stimulation. We identified an increase in osteoblast differentiation in anosteocytic bone following training, while chordoblast activity was delayed. This temporal response suggests a time-dependent adaptation in anosteocytic bone, indicating the presence of intricate feedback networks within bone that lacks osteocytes.

摘要

传统上认为,骨机械感受器涉及骨细胞、管腔和骨陷窝管网络在生物力学适应中的作用。然而,最近的发现挑战了这一观点,例如在高级硬骨鱼中,尽管缺乏骨细胞,但无骨细胞的类骨质仍然对机械负荷有反应。为了研究骨机械适应性中涉及的特定分子机制,我们分别对斑马鱼和青鳉进行了 5 分钟的单次游泳训练实验。通过对游泳训练后不同时间点的鱼类脊柱进行 RNA-seq 分析,我们揭示了骨细胞和无骨细胞鱼类骨骼中独特的基因表达模式。值得注意的是,骨细胞鱼类骨骼对机械负荷表现出早期反应,而无骨细胞鱼类骨骼则在刺激后 8 小时内观察到延迟反应。我们发现,在训练后无骨细胞骨骼中,成骨细胞分化增加,而脊索细胞活性延迟。这种时间依赖性反应表明,无骨细胞骨骼中存在复杂的反馈网络,表明其存在内在的适应性。

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