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长骨的机械负荷会诱导中枢神经系统感觉输入的可塑性。

Mechanical loading of a long bone induces plasticity in sensory input to the central nervous system.

作者信息

Wu Qiang, Sample Susannah J, Baker Theresa A, Thomas Cathy F, Behan Mary, Muir Peter

机构信息

Comparative Orthopaedic Research Laboratory, School of Veterinary Medicine, University of Wisconsin-Madison, 2015 Linden Drive, Madison, WI 53706, USA.

出版信息

Neurosci Lett. 2009 Oct 9;463(3):254-7. doi: 10.1016/j.neulet.2009.07.078. Epub 2009 Aug 4.

Abstract

Although the skeleton is extensively innervated by sensory nerves, the importance of this innervation to skeletal physiology is unclear. Neuronal connectivity between limbs is little studied and likely underestimated. In this study, we examined the effect of bone loading on spinal plasticity in young male Sprague-Dawley rats, using end-loading of the ulna and transynaptic tracing with the Bartha pseudorabies virus (PRV). PRV was inoculated onto the periosteum of the right ulna after 10 days of adaptation to a single period of cyclic loading of the right ulna (1,500 cycles of load at 4 Hz, initial peak strain of -3,750 micro epsilon). We found that neuronal circuits connect the sensory innervation of right thoracic limb to all other limbs, as PRV was detectable in the dorsal root ganglia (DRG) of left and right brachial and lumbosacral intumescences. We also found that mechanical loading of the right ulna induced plasticity in the spinal cord, with significant augmentation of the connectivity between limbs, as measured by PRV translocation. Within the spinal cord, PRV was predominantly found adjacent to the central canal and in the dorsal horns, suggesting that plasticity in cross-talk between limbs is likely a consequence of dendritic growth, and enhanced connectivity of propriospinal interneurons. In conclusion, the data clearly demonstrate that the innervation of the skeleton exhibits plasticity in response to loading events, suggesting the existence of a dynamic control system that may be of regulatory importance during functional skeletal adaptation.

摘要

尽管骨骼广泛地由感觉神经支配,但这种支配对骨骼生理学的重要性尚不清楚。肢体之间的神经元连接很少被研究,可能被低估了。在本研究中,我们使用尺骨末端加载和Bartha伪狂犬病病毒(PRV)进行跨突触示踪,研究了骨负荷对年轻雄性Sprague-Dawley大鼠脊髓可塑性的影响。在对右侧尺骨进行单周期循环加载(4Hz下1500次加载循环,初始峰值应变-3750微应变)适应10天后,将PRV接种到右侧尺骨的骨膜上。我们发现神经元回路将右胸肢的感觉神经支配与所有其他肢体相连,因为在左右臂丛和腰骶膨大的背根神经节(DRG)中可检测到PRV。我们还发现右侧尺骨的机械负荷诱导了脊髓可塑性,通过PRV易位测量,肢体之间的连接性显著增强。在脊髓内,PRV主要位于中央管附近和背角,这表明肢体间串扰的可塑性可能是树突生长和脊髓固有中间神经元连接性增强的结果。总之,数据清楚地表明骨骼的神经支配在对负荷事件的反应中表现出可塑性,这表明存在一个动态控制系统,在功能性骨骼适应过程中可能具有调节重要性。

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