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1
Properties of a sympatho-inhibitory and vasodilator reflex evoked by superior laryngeal nerve afferents in the cat.猫喉上神经传入纤维诱发的交感抑制和血管舒张反射的特性。
J Physiol. 1985 Jul;364:183-98. doi: 10.1113/jphysiol.1985.sp015738.
2
Properties of the inspiration-related activity of sympathetic preganglionic neurones of the cervical trunk in the cat.猫颈交感神经干节前神经元吸气相关活动的特性
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3
Responses of distinct types of sympathetic neuron to stimulation of the superior laryngeal nerve in the cat.猫不同类型交感神经元对上喉神经刺激的反应。
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4
Is the central inspiratory activity responsible for pCO2-dependent drive of the sympathetic discharge?中枢吸气活动是否是交感神经放电二氧化碳依赖性驱动的原因?
J Auton Nerv Syst. 1981 Apr;3(2-4):401-20. doi: 10.1016/0165-1838(81)90078-3.
5
Some effects of superior laryngeal nerve stimulation on sympathetic preganglionic neuron firing.喉上神经刺激对交感神经节前神经元放电的一些影响。
Can J Physiol Pharmacol. 1979 Oct;57(10):1073-81. doi: 10.1139/y79-161.
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Respiratory-related activity patterns in preganglionic neurones projecting into the cat cervical sympathetic trunk.投射至猫颈交感干的节前神经元的呼吸相关活动模式。
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9
Split medulla preparation in the cat: arterial chemoreceptor reflex and respiratory modulation of the renal sympathetic nerve activity.猫的延髓分离制备:动脉化学感受器反射与肾交感神经活动的呼吸调节
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Effect of synchronous activation of medullary inspiratory bulbo-spinal neurones on phrenic nerve discharge in cat.延髓吸气性延髓-脊髓神经元同步激活对猫膈神经放电的影响。
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Properties of the inspiration-related activity of sympathetic preganglionic neurones of the cervical trunk in the cat.猫颈交感神经干节前神经元吸气相关活动的特性
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6
Central respiratory modulation of subretrofacial bulbospinal neurones in the cat.猫面神经后核尾侧部延髓脊髓神经元的中枢呼吸调制
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7
Discharge patterns of cervical sympathetic preganglionic neurones related to central respiratory drive in the rat.与大鼠中枢呼吸驱动相关的颈交感神经节前神经元的放电模式
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本文引用的文献

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Discharges in mammalian sympathetic nerves.哺乳动物交感神经中的放电。
J Physiol. 1932 Feb 8;74(2):115-33. doi: 10.1113/jphysiol.1932.sp002832.
2
Reflex effects of upper airway irritation on total lung resistance and blood pressure.上呼吸道刺激对总肺阻力和血压的反射效应。
J Appl Physiol. 1962 Nov;17:861-5. doi: 10.1152/jappl.1962.17.6.861.
3
Respiratory influence on the vasomotor center.呼吸对血管运动中枢的影响。
Am J Physiol. 1957 Nov;191(2):218-24. doi: 10.1152/ajplegacy.1957.191.2.218.
4
Muscular, bronchomotor and cardiovascular reflexes elicited by mechanical stimulation of the respiratory tract.机械刺激呼吸道引发的肌肉、支气管运动及心血管反射。
J Physiol. 1969 Jan;200(1):25-49. doi: 10.1113/jphysiol.1969.sp008680.
5
[Respiratory variations of baroreceptor reflex transmission and their effects on sympathetic activity and vasomotor tone].[压力感受器反射传导的呼吸变化及其对交感神经活动和血管运动张力的影响]
Pflugers Arch. 1968;302(4):300-14. doi: 10.1007/BF00592730.
6
[Spontaneous vasomotor changes in the muscle and their relations to the respiratory rhythm].[肌肉中的自发性血管舒缩变化及其与呼吸节律的关系]
Pflugers Arch. 1968;302(4):285-99. doi: 10.1007/BF00592729.
7
Periodicities in efferent discharge of splanchnic nerve of the cat.猫内脏神经传出放电的周期性
Am J Physiol. 1970 Apr;218(4):1092-101. doi: 10.1152/ajplegacy.1970.218.4.1092.
8
Anatomical and functional differentiation of superior laryngeal nerve fibers affecting swallowing and respiration.影响吞咽和呼吸的喉上神经纤维的解剖学和功能分化。
Exp Neurol. 1974 Feb;42(2):369-87. doi: 10.1016/0014-4886(74)90033-8.
9
Role of peripheral and central chemosensitive afferents in the control of depth and frequency of breathing.外周和中枢化学感受性传入神经在呼吸深度和频率控制中的作用。
Respir Physiol. 1976 Feb;26(1):101-11. doi: 10.1016/0034-5687(76)90055-4.
10
Patterning of sympathetic preganglionic neuron firing by the central respiratory drive.中枢呼吸驱动对交感神经节前神经元放电的模式化作用。
Brain Res. 1975 Apr 11;87(2-3):363-74. doi: 10.1016/0006-8993(75)90434-5.

猫喉上神经传入纤维诱发的交感抑制和血管舒张反射的特性。

Properties of a sympatho-inhibitory and vasodilator reflex evoked by superior laryngeal nerve afferents in the cat.

作者信息

Bachoo M, Polosa C

出版信息

J Physiol. 1985 Jul;364:183-98. doi: 10.1113/jphysiol.1985.sp015738.

DOI:10.1113/jphysiol.1985.sp015738
PMID:4032295
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1192963/
Abstract

The background discharge of sympathetic preganglionic neurones shows a marked inspiration-synchronous component which is known to originate from within the central nervous system. The contribution of this component to total neurogenic vasoconstrictor tone is unknown. In order to estimate its extent we have exploited the inspiration-suppressing effect of a group of low threshold afferent fibres in the superior laryngeal nerve. The electrical activities of the cervical sympathetic trunk and of the phrenic nerve were recorded in pentobarbitone-anaesthetized, paralysed, artificially ventilated, sino-aortic denervated and vagotomized cats, together with the perfusion pressure of an innervated hind limb perfused at a constant flow rate. Repetitive stimulation of the superior laryngeal nerve at an intensity just sufficient to suppress phrenic nerve activity inhibited the inspiration-synchronous sympathetic discharge and caused hind limb vasodilatation. This vasodilatation was abolished by hexamethonium or phentolamine, but was not affected by atropine or propranolol. Following the elimination of phrenic nerve activity and inspiration-synchronous sympathetic discharge by systemic hypocapnia, repetitive stimulation of the superior laryngeal nerve either failed to affect the residual sympathetic activity and hind limb perfusion pressure, or caused an increase of both. Stimulation of the superior laryngeal nerve with short (0.2 s) trains of stimuli, delivered at selected times of the respiratory cycle for several consecutive cycles, had similar effects on phrenic nerve bursts, inspiration-synchronous sympathetic discharge and hind limb perfusion pressure. Stimulation at progressively earlier times during inspiration produced a graded reduction in all three variables, while stimulation during late inspiration or early expiration had no effect on any of them. The results suggest that the vasodilator reflex, elicited by inspiration-suppressing afferents in the superior laryngeal nerve, results from selective abolition of the excitatory input which causes the inspiration-synchronous discharge of sympathetic neurones. The magnitude of the hind limb vasodilatation can therefore be taken as an indication of the extent of control of hind limb vasoconstrictor tone exerted by this particular input. By comparing the magnitude of the reflexly evoked vasodilatation with that of the vasodilatation resulting from ganglionic blockade, it was estimated that 24.2% of the neurogenic vasoconstrictor tone of the hind limb was attributable to the inspiration-synchronous component of sympathetic discharge.

摘要

交感神经节前神经元的背景放电显示出明显的吸气同步成分,已知该成分起源于中枢神经系统。该成分对总神经源性血管收缩张力的贡献尚不清楚。为了估计其程度,我们利用了喉上神经中一组低阈值传入纤维的吸气抑制作用。在戊巴比妥麻醉、麻痹、人工通气、去窦主动脉神经和迷走神经切断的猫中记录颈交感干和膈神经的电活动,以及以恒定流速灌注的支配后肢的灌注压力。以刚好足以抑制膈神经活动的强度重复刺激喉上神经,可抑制吸气同步交感放电并引起后肢血管舒张。这种血管舒张被六甲铵或酚妥拉明消除,但不受阿托品或普萘洛尔影响。通过全身性低碳酸血症消除膈神经活动和吸气同步交感放电后,重复刺激喉上神经要么未能影响残余交感活动和后肢灌注压力,要么导致两者均增加。用短(0.2秒)刺激序列刺激喉上神经,在呼吸周期的选定时间连续几个周期施加,对膈神经爆发、吸气同步交感放电和后肢灌注压力有类似影响。在吸气过程中逐渐提前刺激会使所有三个变量逐渐降低,而在吸气后期或呼气早期刺激对它们中的任何一个都没有影响。结果表明,由喉上神经中抑制吸气的传入纤维引发的血管舒张反射,是由于选择性消除了导致交感神经元吸气同步放电的兴奋性输入所致。因此,后肢血管舒张的程度可作为该特定输入对后肢血管收缩张力控制程度的指标。通过比较反射诱发的血管舒张幅度与神经节阻断导致的血管舒张幅度,估计后肢神经源性血管收缩张力的24.2%可归因于交感放电的吸气同步成分。