Fehlings M G, Tator C H
Canadian Paraplegic Association Spinal Cord Injury Research Laboratory, Toronto Hospital.
Brain Res. 1992 May 1;579(1):32-42. doi: 10.1016/0006-8993(92)90738-u.
Recent evidence indicates that direct current (DC) fields promote recovery of acutely injured central and peripheral nervous system axons. The polarity of the applied DC field may play an important role in modulating these effects. In the present study, the effect of DC field polarity on recovery of injured spinal cord axons was examined anatomically, electrophysiologically and behaviourly in a rat model. After a 53 g clip compression injury of the cord at T1, 30 adult rats were randomly and blindly allocated to one of three groups (n = 10 each): one group received implantation of a DC stimulator (14 microA) with the cathode caudal to the injury site; the second group received implantation of a similar stimulator with the cathode rostral to the injury site; and the third group received a sham (O microA) stimulator. Clinical neurological function was assessed by the inclined plane technique and axonal function was assessed by motor- and somatosensory-evoked potentials (MEP and SSEP). A quantitative assessment of axonal integrity was performed by counting neurons in the brain retrogradely labelled by the axonal tracer horseradish peroxidase (HRP) and by counting axons at the injury site. The inclined plane scores (P less than 0.0001), MEP amplitude (P less than 0.02), counts of neurons retrogradely labelled by HRP (P less than 0.0001), and axon counts at the injury site (P less than 0.01) were significantly greater in the group treated with a DC field with the cathode caudal to the lesion than in the other two groups. Conversely, the cathode rostral DC field caused a decrease in the number of neurons retrogradely labelled by HRP (P less than 0.05) compared to the sham and cathode caudal groups. These data confirm our previous finding that DC fields promote recovery of acutely injured spinal cord axons. Furthermore, the polarity of the applied field is of critical importance to this effect.
近期证据表明,直流(DC)电场可促进急性损伤的中枢和周围神经系统轴突的恢复。所施加直流电场的极性可能在调节这些效应中起重要作用。在本研究中,在大鼠模型中,从解剖学、电生理学和行为学方面研究了直流电场极性对损伤脊髓轴突恢复的影响。在T1水平对脊髓进行53 g夹伤后,将30只成年大鼠随机、盲法分为三组(每组n = 10):一组植入直流刺激器(14 μA),阴极位于损伤部位尾侧;第二组植入类似刺激器,阴极位于损伤部位头侧;第三组植入假刺激器(0 μA)。通过斜面技术评估临床神经功能,通过运动和体感诱发电位(MEP和SSEP)评估轴突功能。通过计数经轴突示踪剂辣根过氧化物酶(HRP)逆行标记的脑内神经元以及计数损伤部位的轴突,对轴突完整性进行定量评估。与其他两组相比,阴极位于损伤部位尾侧的直流电场治疗组的斜面评分(P < 0.0001)、MEP波幅(P < 0.02)、HRP逆行标记的神经元计数(P < 0.0001)以及损伤部位的轴突计数(P < 0.01)均显著更高。相反,与假刺激组和阴极位于损伤部位尾侧的组相比,阴极位于损伤部位头侧一组的HRP逆行标记的神经元数量减少(P < 0.05)。这些数据证实了我们之前的发现,即直流电场可促进急性损伤脊髓轴突的恢复。此外,所施加电场的极性对这种效应至关重要。