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生长中大鼠全骨结构中与应变大小相关的变化。

Strain magnitude related changes in whole bone architecture in growing rats.

作者信息

Mosley J R, March B M, Lynch J, Lanyon L E

机构信息

Department of Veterinary-Basic Sciences, Royal Veterinary College, London, UK.

出版信息

Bone. 1997 Mar;20(3):191-8. doi: 10.1016/s8756-3282(96)00385-7.

Abstract

Short daily periods of controlled dynamic loading were applied in vivo through the flexed carpus and olecranon to the intact ulna of 240 g male Sprague-Dawley rats. This technique involved neither surgical preparation, nor direct loading of the periosteum at a site close to the region of the bone in which adaptive modeling was subsequently assessed. The animals used their limbs normally between loading episodes, thus approximating to the natural situation, in which short periods of exercise are generally superimposed on longer periods of less strenuous activity. The strain patterns associated with normal activities were established for the rat ulna from strain gauges implanted in vivo. Typical peak strain magnitudes during unrestricted locomotion varied between -0.0007 and -0.0012, with peak strain rates between 0.023 and -0.038 sec-1. Stride frequency was 1.5-4.2 Hz. The adaptive response to a single 10 min period of loading each day, causing peak dynamic strains of -0.002 (1200 cycles at 2 Hz, and a loading/unloading rate of +/-0.03 sec-1), involved modification of the normal growth related medial to lateral modeling drift, simultaneously reducing the rate of lateral periosteal bone deposition and medial bone resorption. This change to the normal modeling pattern reduced the total amount of new bone formation as well as the midshaft curvature of the ulna. At higher peak strain amplitudes (-0.004), adaptive straightening was accompanied by an increase in bone mass, achieved by an increase in the mineral apposition rate on the previously forming lateral face, and arrest of resorption on the medial ulna surface, with reversal to formation. These experiments show that the growing rat ulna underwent adaptive changes in both bone mass and architecture when short daily periods of axial loading, producing strains within the physiological range and with near normal strain distribution, were superimposed on the loading associated with normal activity. At moderate peak strain magnitude (-0.002), modification of drift produced a straighter bone, associated with a reduced periosteal bone formation. At higher strain magnitude (-0.004), adaptive modeling produced a straighter bone associated with increased periosteal bone formation.

摘要

通过弯曲的腕骨和尺骨鹰嘴对240克雄性Sprague-Dawley大鼠完整的尺骨进行体内短期可控动态加载。该技术既不需要手术准备,也不需要在随后评估适应性建模的骨区域附近直接加载骨膜。动物在加载期间正常使用四肢,因此接近自然情况,即在较长时间的轻度活动中通常叠加短时间的运动。通过体内植入的应变片确定了大鼠尺骨与正常活动相关的应变模式。无限制运动期间的典型峰值应变幅度在-0.0007至-0.0012之间,峰值应变率在0.023至-0.038秒-1之间。步频为1.5 - 4.2赫兹。对每天单次10分钟加载的适应性反应,导致峰值动态应变为-0.002(2赫兹下1200次循环,加载/卸载速率为+/-0.03秒-1),涉及改变与正常生长相关的从内侧到外侧的建模漂移,同时降低外侧骨膜骨沉积速率和内侧骨吸收速率。这种对正常建模模式的改变减少了新骨形成的总量以及尺骨中轴的曲率。在较高的峰值应变幅度(-0.004)下,适应性变直伴随着骨量增加,这是通过增加先前形成的外侧表面上的矿物质沉积速率以及尺骨内侧表面吸收停止并转变为形成来实现的。这些实验表明,当每天短时间的轴向加载叠加在与正常活动相关的加载上时,生长中的大鼠尺骨在骨量和结构上都发生了适应性变化,轴向加载产生的应变在生理范围内且应变分布接近正常。在中等峰值应变幅度(-0.002)下,漂移的改变产生了更直的骨骼,同时骨膜骨形成减少。在较高应变幅度(-0.004)下,适应性建模产生了更直的骨骼,同时骨膜骨形成增加。

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