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LRP receptors in chondrocytes are modulated by simulated microgravity and cyclic hydrostatic pressure

机译:软骨细胞中的LRP受体受模拟微重力和循环静水压力的调节

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摘要

Mechanical loading is essential for the maintenance of musculoskeletal homeostasis. Cartilage has been demonstrated to be highly mechanoresponsive, but the mechanisms by which chondrocytes respond to mechanical stimuli are not clearly understood. The goal of the study was to determine how LRP4, LRP5, and LRP6 within canonical Wnt-signaling are regulated in simulated microgravity and cyclic hydrostatic pressure, and to investigate the potential role of LRP 4/5/6 in cartilage degeneration. Rat chondrosacroma cell (RCS) pellets were stimulated using either cyclic hydrostatic pressure (1Hz, 7.5 MPa, 4hr/day) or simulated microgravity in a rotating wall vessel (RWV) bioreactor (11RPM, 24hr/day). LRP4/5/6 mRNA expression was assessed by RT-qPCR and LRP5 protein expression was determined by fluorescent immunostaining. To further evaluate our in vitro findings in vivo, mice were subjected to hindlimb suspension for 14 days and the femoral heads stained for LRP5 expression. We found that, in vitro, LRP4/5/6 mRNA expression is modulated in a time-dependent manner by mechanical stimulation. Additionally, LRP5 protein expression is upregulated in response to both simulated microgravity and cyclic hydrostatic pressure. LRP5 is also upregulated in vivo in the articular cartilage of hindlimb suspended mice. This is the first study to examine how LRP4/5/6, critical receptors within musculoskeletal biology, respond to mechanical stimulation. Further elucidation of this mechanism could provide significant clinical benefit for the identification of pharmaceutical targets for the maintenance of cartilage health.
机译:机械负载对于维持肌肉骨骼的动态平衡至关重要。软骨已被证明是高度机械反应性的,但软骨细胞对机械刺激作出反应的机制尚不清楚。该研究的目的是确定经典的Wnt信号内的LRP4,LRP5和LRP6如何在模拟微重力和循环静水压力中得到调节,并研究LRP 4/5/6在软骨退变中的潜在作用。使用循环静水压力(1Hz,7.5 MPa,4hr / day)或模拟微重力在旋转壁容器(RWV)生物反应器(11RPM,24hr / day)中刺激大鼠软骨囊细胞(RCS)沉淀。通过RT-qPCR评估LRP4 / 5/6 mRNA表达,并通过荧光免疫染色确定LRP5蛋白表达。为了进一步评估我们在体内的体外发现,将小鼠后肢悬吊14天,并对股骨头进行LRP5表达染色。我们发现,在体外,LRP4 / 5/6 mRNA表达受机械刺激以时间依赖的方式进行调节。此外,响应于模拟微重力和循环静水压力,LRP5蛋白表达上调。体内LRP5在后肢悬吊小鼠的关节软骨中也被上调。这是研究肌肉骨骼生物学中的关键受体LRP4 / 5/6对机械刺激反应的第一项研究。对该机制的进一步阐明可为鉴定维持软骨健康的药物靶标提供重要的临床益处。

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