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What is the nature of bone in vivo electricity?

机译:体内骨骼电的本质是什么?

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The nature of bone electricity is a recurrent question in bone biomechanics. Even if the electro-chemical couplings are supposed to play an important role in the mechanotransduction of bone remodelling (Lemaire et al. 2008), the origin itself of bone in vivo electricity is still an open question (Ann and Grodzinsky 2009). In the 1960s, collagen piezoelectricity was invoked as a potential mechanism by which the mechanosensitive cells of bone could detect areas of greater stress. Thus, applied stress would generate local potential gradients along the collagen fibres providing a local stimulus for bone-remodelling cells (Bassett et al. 1964). Afterwards, this idea faded away when other mechanisms, such as streaming potential (Salzstein and Pollack 1987) and fluid-generated shear stress (Weinbaum et al. 1994), were described. Recent advances in the understanding of bone physiology raise again a possible relevance of piezoelectricity effects in bone (Ann and Grodzinsky 2009). Are the in vivo measured potentials due to the piezoelectric property of collagen or to the strain-induced electro-osmotic flow? This study aims at determining the nature of the in vivo electricity that can be experimentally observed. Our approach combines electrokinetics involved in interstitial bone fluid flow with the piezoelectric behaviour of the collagen apatite matrix (Lemaire et al. 2010a, 2011a, 201 lb). To capture the origin of in vivo bone electricity, the microscopic electro-chemical phenomena are propagated at the organ scale by homogenisation. An illustrative recovery of the in vivo electric potentials measured on a walking dog is also proposed.
机译:骨电的性质是骨骼生物力学中经常出现的问题。即使电化学耦合在骨骼重塑的机械转导中起重要作用(Lemaire等,2008),骨骼体内电的起源本身仍是一个悬而未决的问题(Ann and Grodzinsky 2009)。在1960年代,人们开始将胶原蛋白压电性作为一种潜在的机制,骨骼的机械敏感性细胞可以通过这种机制检测更大的应力区域。因此,施加的应力将沿着胶原纤维产生局部电位梯度,从而为骨重塑细胞提供局部刺激(Bassett等,1964)。此后,当描述了其他机制,例如流动潜力(Salzstein和Pollack 1987)和流体产生的切应力(Weinbaum等人,1994)时,这个想法就消失了。骨骼生理学的最新进展再次提出了骨骼中压电效应的可能相关性(Ann and Grodzinsky 2009)。体内测量的电位是由于胶原蛋白的压电特性还是由于应变诱导的电渗流?这项研究旨在确定可以通过实验观察到的体内电的性质。我们的方法将参与间质骨液流动的电动学与胶原磷灰石基质的压电行为结合在一起(Lemaire等人2010a,2011a,201磅)。为了捕获体内骨电的起源,微观电化学现象通过均质化在器官尺度上传播。还提出了对a狗测量的体内电势的说明性恢复。

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    Laboratoire Modelisation et Simulation Multi Echelle-Biomecanique, Universite Paris-Est, MSME UMR 8208 CNRS, 61 Avenue du General de Gaulle, 94010 Creteil, France;

    Laboratoire Modelisation et Simulation Multi Echelle-Biomecanique, Universite Paris-Est, MSME UMR 8208 CNRS, 61 Avenue du General de Gaulle, 94010 Creteil, France;

    Laboratoire Modelisation et Simulation Multi Echelle-Biomecanique, Universite Paris-Est, MSME UMR 8208 CNRS, 61 Avenue du General de Gaulle, 94010 Creteil, France;

    Department of Mechanics, Faculty of Applied Sciences, New Technologies Research Centre,University of West Bohemia, Univerzitni 22, 306 14 Plzen, Czech Republic;

    Laboratoire Modelisation et Simulation Multi Echelle-Biomecanique, Universite Paris-Est, MSME UMR 8208 CNRS, 61 Avenue du General de Gaulle, 94010 Creteil, France;

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  • 正文语种 eng
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  • 关键词

    bone electricity; multiscale modelling; streaming potentials; piezoelectricity;

    机译:骨电多尺度建模流势;压电;

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