首页> 美国卫生研究院文献>The Journal of Neuroscience >Reticulospinal vasomotor neurons of the rat rostral ventrolateral medulla: relationship to sympathetic nerve activity and the C1 adrenergic cell group
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Reticulospinal vasomotor neurons of the rat rostral ventrolateral medulla: relationship to sympathetic nerve activity and the C1 adrenergic cell group

机译:大鼠延髓腹侧延髓的网状脊髓舒缩运动神经元:与交感神经活动和C1肾上腺素能细胞群的关系

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摘要

Neurons projecting from the rostral ventrolateral medulla (RVL) to the spinal cord were antidromically identified in rats anesthetized with urethane, paralyzed, and ventilated. The sites of lowest antidromic threshold were concentrated in the intermediolateral nucleus (IML). Their axonal conduction velocities were distributed bimodally, with the mean of the rapidly conducting fibers (greater than 1 m/sec) being 3.1 +/- 0.1 m/sec (n = 105), and of the slower axons being 0.8 +/- 0.03 m/sec (n = 25). Single-shock electrical stimulation of RVL elicited 2 bursts of excitation in splanchnic sympathetic nerve activity (SNA), which resulted from activation of 2 descending pathways with conduction velocities comparable to those of antidromically excited RVL-spinal neurons. The probability of discharge of RVL-spinal cells was synchronized both with the cardiac-related bursts in SNA with functional baroreceptor reflexes and with the free-running 2–6 Hz bursts in SNA following baroreceptor afferent denervation. On the average, their spontaneous discharges occurred 67 +/- 2 msec (n = 31) prior to the peak of the spontaneous bursts in splanchnic SNA. This time corresponded to the latency to the peak of the early excitatory potential in splanchnic SNA following electrical stimulation of RVL. Baroreceptor reflex activation inhibited RVL-spinal neurons. The recording sites of RVL-spinal vasomotor neurons were consistently located within 100 micron of cell bodies (C1 neurons) immunoreactive for the adrenaline-synthesizing enzyme phenylethanolamine N- methyltransferase (PNMT). Ultrastructural analysis of the lateral funiculus of the cervical and thoracic spinal cord demonstrated PNMT immunoreactivity within myelinated (0.6–2.1 micron diameter) and unmyelinated (0.1–0.8 micron diameter) axons. Estimated conduction velocities of these fibers were comparable to the antidromic conduction velocities of the rapidly and slowly conducting populations of RVL- spinal vasomotor neurons. We conclude that in rat, the discharge of RVL- spinal vasomotor neurons strongly influences SNA: the baroreceptor- mediated inhibition of these neurons is reflected in the cardiac locking of SNA, while, in the absence of baroreceptor input, the synchronous discharge of RVL-spinal neurons maintains a free-running 2- 6 Hz bursting pattern in SNA. RVL-spinal neurons are located within, and may be elements of, the C1 adrenergic cell group, and they provide a sympathoexcitatory drive to neurons in the IML over rapidly and slowly conducting pathways that correspond to myelinated and unmyelinated spinal axons containing PNMT.
机译:在用氨基甲酸乙酯麻醉,麻痹并通气的大鼠中,通过抗屈光辨认了从延髓腹侧延髓(RVL)投射到脊髓的神经元。最低抗皮肤病阈值的部位集中在中间外侧核(IML)中。它们的轴突传导速度是双峰分布的,快速传导的纤维(大于1 m / sec)的平均值为3.1 +/- 0.1 m / sec(n = 105),而较慢的轴突的平均值为0.8 +/- 0.03 m / sec(n = 25)。 RVL的单次电刺激在内脏交感神经活动(SNA)中引起了2次激增,这是由2条下行通路的激活导致的,其传导速度与抗DROM脊髓神经元的传导速度相当。 RVL脊髓细胞放电的可能性与具有功能性压力感受器反射的SNA中与心脏相关的猝发以及压力感受器传入去神经后SNA中自由运行的2-6 Hz猝发同步。平均而言,它们的自发放电发生在内脏SNA中自发爆发峰值之前67 +/- 2毫秒(n = 31)。此时间对应于电刺激RVL后内脏SNA中早期兴奋电位峰值的潜伏时间。压力感受器反射激活抑制RVL-脊髓神经元。 RVL脊髓血管舒缩神经元的记录位点始终位于对肾上腺素合成酶苯基乙醇胺N-甲基转移酶(PNMT)具有免疫反应性的100微米细胞主体(C1神经元)内。颈和胸脊髓外侧束的超微结构分析表明,PNMT在髓鞘(直径为0.6-2.1微米)和非髓鞘(直径为0.1-0.8微米)轴突内具有免疫反应性。这些纤维的估计传导速度与RVL-脊髓血管舒缩神经元的快速和缓慢传导群体的抗皮肤传导速度相当。我们得出的结论是,在大鼠中,RVL-脊髓血管舒缩神经元的放电强烈影响SNA:SNA的心脏锁定反映了压力感受器介导的对这些神经元的抑制,而在没有压力感受器输入的情况下,RVL-的同步放电脊髓神经元在SNA中保持自由运行的2-6 Hz爆发模式。 RVL脊髓神经元位于C1肾上腺素细胞群中,并且可能是其中的组成部分,它们通过与包含PNMT的有髓和无髓脊髓轴突相对应的快速和缓慢传导途径,向IML中的神经元提供交感兴奋驱动。

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