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Dynamic hydraulic fluid stimulation regulated intramedullary pressure

机译:动态液压油调节的髓内压

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Physical signals within the bone, i.e. generated from mechanical loading, have the potential to initiate skeletal adaptation. Strong evidence has pointed to bone fluid flow (BFF) as a media between an external load and the bone cells, in which altered velocity and pressure can ultimately initiate the mechanotransduction and the remodeling process within the bone. Load-induced BFF can be altered by factors such as intramedullary pressure (ImP) and/or bone matrix strain, mediating bone adaptation. Previous studies have shown that BFF induced by ImP alone, with minimum bone strain, can initiate bone remodeling. However, identifying induced ImP dynamics and bone strain factor in vivo using a non-invasive method still remains challenging. To apply ImP as a means for alteration of BFF, it was hypothesized that non-invasive dynamic hydraulic stimulation (DHS) can induce local ImP with minimal bone strain to potentially elicit osteogenic adaptive responses via bone-muscle coupling. The goal of this study was to evaluate the immediate effects on local and distant ImP and strain in response to a range of loading frequencies using DHS. Simultaneous femoral and tibial ImP and bone strain values were measured in three 15-month-old female Sprague Dawley rats during DHS loading on the tibia with frequencies of 1. Hz to 10. Hz. DHS showed noticeable effects on ImP induction in the stimulated tibia in a nonlinear fashion in response to DHS over the range of loading frequencies, where they peaked at 2. Hz. DHS at various loading frequencies generated minimal bone strain in the tibiae. Maximal bone strain measured at all loading frequencies was less than 8. με. No detectable induction of ImP or bone strain was observed in the femur. This study suggested that oscillatory DHS may regulate the local fluid dynamics with minimal mechanical strain in the bone, which serves critically in bone adaptation. These results clearly implied DHS's potential as an effective, non-invasive intervention for osteopenia and osteoporosis treatments.
机译:骨骼内的物理信号(即由机械负荷产生的信号)具有启动骨骼适应的潜力。有力的证据表明,骨液流(BFF)是外部载荷与骨细胞之间的媒介,其中速度和压力的改变最终会引发骨骼内的机械传导和重塑过程。负载诱导的BFF可以通过介导骨骼适应性的因素改变,例如髓内压(ImP)和/或骨骼基质应变。先前的研究表明,仅由ImP诱导的BFF具有最小的骨应变,可以启动骨重塑。然而,使用非侵入性方法在体内鉴定诱导的ImP动力学和骨应变因子仍然具有挑战性。为了将ImP用作改变BFF的手段,假设无创动态水力刺激(DHS)可以以最小的骨应变诱导局部ImP,从而可能通过骨-肌肉耦合引发成骨适应性反应。这项研究的目的是评估使用DHS响应一定范围的加载频率对局部和远距离ImP和应变的即时影响。在三只15个月大的Sprague Dawley雌性大鼠在DHS胫骨上加载DHS的同时,以1. Hz至10. Hz的频率测量了股骨和胫骨的ImP和骨应变值。 DHS在加载频率范围内对DHS的响应以非线性方式对受刺激的胫骨中的ImP诱导产生了显着影响,它们在2 Hz处达到峰值。在不同负荷频率下的DHS在胫骨中产生的骨骼应变最小。在所有加载频率下测得的最大骨应变均小于8.με。在股骨中未观察到ImP或骨应变的可检测诱导。这项研究表明,振荡DHS可以通过最小的骨骼机械应变来调节局部流体动力学,这对骨骼适应至关重要。这些结果清楚地暗示了DHS作为骨质减少和骨质疏松症治疗的有效,非侵入性干预措施的潜力。

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