Bone turnover in vivo is regulated by mechanical forces such as shear stress originating from interstitial oscillatory fluid flow (OFF), and bone cells in vitro respond to mechanical loading. However, the mechanisms by which bone cells sense mechanical forces, resulting in increased mineral deposition, are not well understood. The aim of this study was to investigate the role of the primary cilium in mechanosensing by osteoblasts. MLO-A5 murine osteoblasts were cultured in monolayer and subjected to two different OFF regimens: 5 short (2 h daily) bouts of OFF followed by morphological analysis of primary cilia; or exposure to chloral hydrate to damage or remove primary cilia and 2 short bouts (2 h on consecutive days) of OFF. Primary cilia were shorter and there were fewer cilia per cell after exposure to periods of OFF compared with static controls. Damage or removal of primary cilia inhibited OFF-induced PGE2 release into the medium and mineral deposition, assayed by Alizarin red staining. We conclude that primary cilia are important mediators of OFF-induced mineral deposition, which has relevance for the design of bone tissue engineering strategies and may inform clinical treatments of bone disorders causes by load-deficiency.

译文

体内的骨转换受机械力 (例如来自间质振荡流体流动 (OFF) 的剪切应力) 调节,体外的骨细胞对机械负荷做出反应。然而,骨细胞感知机械力导致矿物质沉积增加的机制尚不清楚。这项研究的目的是研究初级纤毛在成骨细胞机械感应中的作用。将MLO-A5鼠成骨细胞单层培养,并进行两种不同的OFF方案: 5次短时间 (每天2小时) OFF,然后对初级纤毛进行形态学分析; 或暴露于水合氯醛以破坏或去除初级纤毛,并进行2次短时间OFF (连续2小时)。与静态对照相比,暴露于OFF期后的初级纤毛更短,每个细胞的纤毛更少。通过茜素红染色测定,初级纤毛的损伤或去除抑制了非诱导的PGE2释放到培养基和矿物质沉积中。我们得出的结论是,原发性纤毛是非诱导矿物质沉积的重要介质,这与骨组织工程策略的设计有关,并可能为临床治疗因负荷不足而引起的骨疾病提供信息。

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