首页> 美国卫生研究院文献>The Journal of Neuroscience >Involvement of ventromedial medulla multimodal multireceptive neurons in opiate spinal descending control system: a single-unit study of the effect of morphine in the awake freely moving rat
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Involvement of ventromedial medulla multimodal multireceptive neurons in opiate spinal descending control system: a single-unit study of the effect of morphine in the awake freely moving rat

机译:腹膜延髓多峰型多受体神经元参与鸦片脊髓降压控制系统:吗啡在清醒自由运动大鼠中的作用的单项研究

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摘要

In the present work, we have studied the effects of systemic morphine on the electrophysiological properties of ventromedial medulla (VMM) neurons in the awake, freely moving rat. By means of a chronically implanted single-unit recording device, a drug delivery catheter, and the use of controlled innocuous and noxious cutaneous stimuli, we were able to study precisely the spontaneous and evoked VMM neuronal activities. We have particularly focused our attention upon the VMM “multimodal, multireceptive” units, excited by non-noxious and noxious stimuli (VMM MULT ON), which we have already determined as the neuronal class potentially involved in nociceptive processes at VMM level. We found that morphine (3 mg/kg, i.v.) does not affect the spontaneous activity of these neurons whereas their responses to noxious heat are strongly attenuated (70%), over a prolonged period (about 2 hr) associated with an increase in the response latency. This action of morphine appears to be pharmacologically specific since it is dose dependent to some extent, and is reversed by 0.3 mg/kg of naloxone. In parallel with this pharmacological specificity, we have also demonstrated a preferential physiological effect since the response of the VMM MULT ON neurons to light touch application is not affected by morphine. This specificity is emphasized by the fact that morphine does not modify the activity of the other VMM neuronal groups such as the units unresponsive to any kind of peripheral stimuli, and does not reveal “new” neuronal classes such as those we have found in previous studies after barbiturate administration. The differential effect upon the noxious versus innocuous inputs of these units produced by the opiate reinforces their participation in nociceptive processing since similar effects have been reported in well-known nociceptive somatosensory structures such as the dorsal horn of the spinal cord. Furthermore, although the precise mechanisms of action have not yet been determined, the spinal projection of the VMM MULT ON neurons, previously demonstrated by our group, suggests their involvement in an opiate descending spinal control system of nociception. Although speculative, one can imagine either a direct facilitatory MULT ON spinal effect being attenuated by morphine (disfacilitation), or a morphine-induced disinhibition of inhibitory GABAergic neurons acting upon the MULT ON neurons.
机译:在目前的工作中,我们研究了系统性吗啡对清醒自由运动大鼠腹侧延髓(VMM)神经元电生理特性的影响。通过长期植入的单单元记录设备,药物输送导管以及受控的无害和有害皮肤刺激的使用,我们能够精确地研究自发性和诱发性的VMM神经元活动。我们特别关注了由非有害和有害刺激(VMM MULT ON)激发的VMM“多峰型,多接受”单元,我们已经将其确定为可能参与VMM级别伤害过程的神经元类别。我们发现吗啡(3 mg / kg,iv)不会影响这些神经元的自发活动,而它们对有害热量的反应在延长的时间(约2小时)内会大大减弱(70%),这与神经元的增加有关。响应延迟。吗啡的这种作用似乎在药理上是特异性的,因为它在一定程度上取决于剂量,并被0.3 mg / kg的纳洛酮逆转。与此药理学特异性并行,我们还证明了一种优先的生理作用,因为VMM MULT ON神经元对轻触的反应不受吗啡的影响。吗啡不会改变其他VMM神经元组(例如对任何种类的外周刺激无反应的单位)的活性,并且不会揭示“新”神经元类(如我们先前的研究中发现的),这一事实强调了这种特异性。巴比妥治疗后。阿片类药物对这些单位的有毒和无害输入的差异作用增强了它们参与伤害感受过程的能力,因为在众所周知的伤害感受体感结构(如脊髓背角)中已报道了类似的作用。此外,尽管尚未确定确切的作用机制,但之前由我们小组证明的VMM MULT ON神经元的脊髓投射表明它们参与了鸦片递减的伤害感受神经控制系统。尽管是推测性的,但可以想象,吗啡会直接促进MULT ON脊柱效应的减弱(失调),还是吗啡诱导的抑制MABA ON神经元的抑制性GABA能神经元的抑制作用。

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