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一条新的中枢通路在脑血管控制中连接动脉压力感受器和脑桥副交感神经元。

A novel central pathway links arterial baroreceptors and pontine parasympathetic neurons in cerebrovascular control.

作者信息

Agassandian Khristofor, Fazan Valeria P S, Margaryan Naira, Dragon Deidre Nitschke, Riley Jeffrey, Talman William T

机构信息

Laboratory of Neurobiology, Department of Neurology, University of Iowa, Iowa City, Iowa 52242, USA.

出版信息

Cell Mol Neurobiol. 2003 Oct;23(4-5):463-78. doi: 10.1023/a:1025059710382.

Abstract
  1. We tested the hypothesis that arterial baroreceptor reflexes modulate cerebrovascular tone through a pathway that connects the cardiovascular nucleus tractus solitarii with parasympathetic preganglionic neurons in the pons. 2. Anesthetized rats were used in all studies. Laser flowmetry was used to measure cerebral blood flow. We assessed cerebrovascular responses to increases in arterial blood pressure in animals with lesions of baroreceptor nerves, the nucleus tractus solitarii itself, the pontine preganglionic parasympathetic neurons, or the parasympathetic ganglionic nerves to the cerebral vessels. Similar assessments were made in animals after blockade of synthesis of nitric oxide, which is released by the parasympathetic nerves from the pterygopalatine ganglia. Finally the effects on cerebral blood flow of glutamate stimulation of pontine preganglionic parasympathetic neurons were evaluated. 3. We found that lesions at any one of the sites in the putative pathway or interruption of nitric oxide synthesis led to prolongation of autoregulation as mean arterial pressure was increased to levels as high as 200 mmHg. Conversely, stimulation of pontine parasympathetic preganglionic neurons led to cerebral vasodilatation. The second series of studies utilized classic anatomical tracing methods to determine at the light and electron microscopic level whether neurons in the cardiovascular nucleus tractus solitarii, the site of termination of baroreceptor afferents, projected to the pontine preganglionic neurons. Fibers were traced with anterograde tracer from the nucleus tractus solitarii to the pons and with retrograde tracer from the pons to the nucleus tractus solitarii. Using double labeling techniques we further studied synapses made between labeled projections from the nucleus tractus solitarii and preganglionic neurons that were themselves labeled with retrograde tracer placed into the pterygopalatine ganglion. 4. These anatomical studies showed that the nucleus tractus solitarii directly projects to pontine preganglionic neurons and makes asymmetric, seemingly excitatory, synapses with those neurons. These studies provide strong evidence that arterial baroreceptors may modulate cerebral blood flow through direct connections with pontine parasympathetic neurons. Further study is needed to clarify the role this pathway plays in integrative physiology.
摘要
  1. 我们检验了这样一个假设,即动脉压力感受器反射通过一条将心血管孤束核与脑桥副交感神经节前神经元相连的通路来调节脑血管张力。2. 所有研究均使用麻醉大鼠。采用激光血流测定法测量脑血流量。我们评估了在压力感受器神经、孤束核本身、脑桥节前副交感神经元或脑血管的副交感神经节神经受损的动物中,动脉血压升高时的脑血管反应。在阻断一氧化氮合成后对动物进行了类似评估,一氧化氮由翼腭神经节的副交感神经释放。最后评估了谷氨酸刺激脑桥节前副交感神经元对脑血流量的影响。3. 我们发现,假定通路中任何一个部位的损伤或一氧化氮合成的中断都会导致自动调节延长,因为平均动脉压升高到高达200 mmHg的水平。相反,刺激脑桥副交感神经节前神经元会导致脑血管扩张。第二项系列研究利用经典的解剖追踪方法,在光镜和电镜水平确定压力感受器传入神经终止部位的心血管孤束核中的神经元是否投射到脑桥节前神经元。用顺行示踪剂从孤束核追踪纤维到脑桥,用逆行示踪剂从脑桥追踪到孤束核。使用双重标记技术,我们进一步研究了来自孤束核的标记投射与用逆行示踪剂注入翼腭神经节而自身被标记的节前神经元之间形成的突触。4. 这些解剖学研究表明,孤束核直接投射到脑桥节前神经元,并与这些神经元形成不对称的、看似兴奋性的突触。这些研究提供了有力证据,表明动脉压力感受器可能通过与脑桥副交感神经元的直接连接来调节脑血流量。需要进一步研究以阐明该通路在整合生理学中所起的作用。

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