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1.
目的:研究乙酰胆碱(ACh)受体在皮质酮(CORT)对大鼠头端延髓腹外侧区(RVLM)前交感神经元快速效应中的作用,探讨糖皮质激素在交感心血管活动调节中的非基因组机制。方法:本研究采用细胞外记录和微电泳等方法观察CORT对氨基甲酸乙酯麻醉大鼠RVLM前交感神经元的作用,观察分别给予ACh受体拮抗剂阿托品(ATR)、筒箭毒(d-TC)或六烃季铵(C6)后CORT对RVLM前交感神经元的影响。结果:在RVLM共记录到33个前交感神经元,CORT能导致25(76%)个前交感神经元快速兴奋,且具有剂量依赖性,余8个前交感神经元没有反应;其中被CORT兴奋的10个单位微电泳ART后神经元的放电明显下降,但对CORT导致的兴奋作用没有明显的影响。分别向7和6个被CORT兴奋的前交感神经元微电泳d-TC和C6后,单位放电没有变化,同时对CORT导致的兴奋作用无影响。结论:CORT对RVLM前交感神经元具有快速的兴奋作用,这种作用可能并不通过ACh受体介导。  相似文献   

2.
Liu H  Lin YH  Cheng JH  Cai Y  Yu JW  Ma J  Gao DM 《生理学报》2011,63(4):311-318
本文旨在观察低频电刺激脚桥核(pedunculopontine nucleus,PPN)对帕金森病(Parkinson’s disease,PD)模型大鼠丘脑腹外侧核(ventrolateral thalamic nucleus,VL)神经元自发放电活动的影响,以探讨低频电刺激PPN改善PD症状的作用机制。通过纹状体内注射6-羟多巴胺制备PD大鼠模型。采用在体细胞外记录、电刺激及微电泳方法,观察低频电刺激PPN、微电泳乙酰胆碱(acetylcholine,ACh)及其M型受体阻断剂阿托品(atropine,ATR)、γ-氨基丁酸(γ-aminobutyric acid,GABA)及其A型受体阻断剂荷包牡丹碱(bicuculline,BIC)对大鼠VL神经元放电频率的影响。结果显示,低频电刺激PPN可使正常大鼠和PD大鼠VL神经元自发放电频率增加。微电泳ACh对VL神经元具有兴奋和抑制两种作用,而微电泳ATR则主要抑制VL神经元,即使对被ACh抑制的神经元也产生抑制作用。微电泳GABA抑制VL神经元,而微电泳BIC则兴奋VL神经元。另外,在微电泳ACh的过程中微电泳GABA,被ACh兴奋或抑制的VL神经元放电频...  相似文献   

3.
伤害性刺激和电针对大鼠中缝大核内缝-脊神经元的效应   总被引:5,自引:0,他引:5  
用玻璃微电极细胞外记录大鼠中缝大核神经元放电,刺激脊髓胸段背外侧部诱发逆行动作电位,根据其潜伏期恒定性,能跟随高频刺激以及可与自发放电碰撞而消失等标准来鉴定缝-脊神经元。共记录45个缝-脊神经元,其传导速度多在15—60m/s 范围。对伤害性刺激发生兴奋性(增频)反应的31个,抑制性(减频)反应的6个。两个类型神经元的自发放电频率分别为5.74±0.96Hz 和12.03±2.68Hz。另有3个为兴奋抑制转化型,反应的转化与背景自发放电水平有关,即放电频率低时,对伤害性刺激为兴奋性反应,而当自发放电频率增高时,则转化为抑制性反应。此外还有5个神经元对伤害性刺激无明显反应。电针“足三里”对兴奋型的缝-脊神经元(n=13)能明显激活并抑制其伤害性反应,后者可能是由于下行抑制而产生的继发性效应。  相似文献   

4.
Shen LL  Peng YJ  Wu GQ  Cao YX  Li P 《生理学报》1999,(2):168-174
本文分析了大鼠延头端腹外侧区(RVLM)神经元单位活动与心血管活动的相干性,观察了RVLM区神经元电 对电刺激中脑防御反应区的诱发反应,以及对压力感受性反射的反应,并用FFT对RVLM区神经元自发单位放电和血压波进行频域的相干性分析,以判断是具有心节律。还分析了RVLM区单位放电变异性与心率变异性的相干性。结果显示:RVLM区大多数神经元对电刺激中脑防御反应区呈兴奋反应(67%),70%神经元放电  相似文献   

5.
在30只大鼠上,用多管微电极细胞外记录和离子微电泳方法,观察了乙酰胆碱(ACh)和阿托品对丘脑束旁核(Pf)神经元电活动的影响。结果表明,微电泳ACh可加强痛敏神经元的电活动,并使部分自发放电神经元对伤害性刺激产生反应。阿托品可以阻断ACh的上述作用。微电泳阿托品能减少痛敏神经元的电活动。这些结果提示,在Pf神经元的活动中,ACh可以直接作用于M受体发挥其兴奋作用。  相似文献   

6.
扣带回前部内脏伤害感受神经元的生物电活动   总被引:1,自引:0,他引:1  
为了从神经元水平探讨大脑皮层内脏伤害感受的特性及机制,应用玻璃微电极细胞内电位记录技术,研究18只猫扣带回前部312个神经元的自发生物电活动,及其对电刺激同侧内脏大神经的诱发反应.其中,82个为内脏伤害感受神经元,其自发生物电活动有5种主要形式.根据诱发反应的潜伏期等特性,内脏伤害感受神经元分为特异性内脏伤害感受神经元(76个,92.68%)和非特异性内脏伤害感受神经元(6个,7.32%).内脏伤害性诱发反应分为兴奋性(65.86%)、抑制性(17.07%)及混合性反应(17.07%)3种.结果提示内脏大神经的传入通路投射到同侧扣带回前部;扣带回前部神经元具有内脏伤害感受作用,存有特异性与非特异性内脏伤害感受神经元,为痛觉特异性学说提供了新的实验依据.  相似文献   

7.
为探讨电刺激Agrotis segetum雄蛾触角神经是否可以作为MGC中神经元的识别手段,采用细胞内电生理记录方法,共记录34个对性信息素有反应的MGC神经元,并测试了其中12个神经元对性信息素刺激的反应,22个神经元对性信息素刺激和电刺激的反应。结果表明,MGC神经元对性信息素及电刺激的反应模式基本一致,为一种双相反应模式。两种刺激方式均能诱导出兴奋反应,电刺激得到的兴奋反应比由信息素刺激引起的要短;MGC神经元对两种刺激的超极化反应(抑制反应)幅度影响没有显著性差别,在电刺激实验的22个神经元上,超极化反应幅度和抑制时间都与神经元本身放电频率有一定的相关性。超极化反应是在LN参与下一定的神经回路对刺激所产生的反应而形成的。这提示两种刺激所作用的神经回路应是一致的,但从整个实验过程记录到的神经元情况来看,还须进一步结合形态学实验来验证电刺激触角神经作为MGC神经元的识别手段。  相似文献   

8.
用玻璃微电极细胞外记录大鼠中缝大核(NRM)神经元的单位放电。共记录277个细胞,NRM 神经元自发放电频率大都在每秒0.5—20次之间,平均为6.41 Hz。其中221个神经元被电刺激尾所激活,35个被抑制,21个无明显变化。NRM 神经元对躯体刺激的反应类型与自发放电的特征有关,兴奋型神经元的自发放电频率较低((?)=4.96Hz),而抑制性神经元的自发放电频率较高((?)=15.03 Hz)。在24例兴奋型神经元中,刺激尾核头部能够激活大多数 NRM 神经元的自发放电和抑制其伤害感受性反应。导水管周围灰质微量注射纳洛酮(2.5ug/0.5μl,n=15)。能够明显阻断刺激尾核头部激活 NRM 神经元自发放电和抑制伤害感受性反应的效应。  相似文献   

9.
Yan HX  Zhang CW  Zheng Y 《生理学报》2004,56(6):665-670
实验选用健康成年SD大鼠,观察电刺激面神经核对前包钦格复合体(pre-—Boetzinger complex,PBC)呼吸神经元(RNs)放电活动的影响,并观察微电泳6-氰基-7-硝基喹喔啉-2,3-二酮(CNQX)、荷包牡丹碱(BIC)、士的宁(Stry)和阿托品(Atr)对电刺激面神经核引起的PBCRNs放电变化的拮抗效应,以进一步探讨面神经核是否参与呼吸调节及其可能的神经机制。在12只面运动神经元逆行溃变大鼠同侧PBC内共记录到各类RNs116个,电刺激溃变侧面神经核时,前吸气(Pre-I)神经元(24/26个)和吸气(I)神经元(30/35个)主要表现为兴奋,呼气(E)神经元(20/22个)和吸气-呼气(I-E)跨时相神经元(28/33个)表现为抑制。CNQx可完全或部分拮抗电刺激面神经核对Pre-I(18/24)和I(23/27)神经元的兴奋效应;Stry可拮抗电刺激面神经核对Pre-I(12/18)和I(14/23)神经元的瞬时抑制效应以及对I-E(20/28)和E(9/16)神经元的抑制效应;BIC可拮抗电刺激面神经核对I—E(22/25)和E(9/9)神经元的抑制效应;微电泳Atr对各类RNs的放电变化无明显作用。这些结果表明,面神经核非运动神经元可能通过向PBC的纤维投射,以Glu、GABA和Gly为神经递质或调质,调节PBC RNs的活动,从而参与对呼吸运动的调节。  相似文献   

10.
周正锋  顾蕴辉 《生理学报》1987,39(2):123-131
本实验用氨基甲酸乙酯麻醉和箭毒化的雄性大鼠,细胞外记录脊髓胸2节段的交感节前神经元(SPN)单位放电,电刺激同侧颈交感干,逆向激活 SPN,以确定所记录的神经元为交感节前神经元。共分析了80个 SPN 单位放电,其中有自发活动和无自发活动的单位各40个。SPN 轴突传导速度为0.59—3.75m/s。实验观察到电刺激同侧延髓头端腹外侧区(Rostralventrolateral medulla:RVL)可兴奋多数有自发活动的 SPN(19/25),并可使少数静止SPN 产生诱发反应(4/23),潜伏期为6—115ms。电刺激对侧 RVL 结果类似:多数自发活动的 SPN(6/9)呈兴奋反应,及少数静止 SPN(3/17)产生诱发反应,潜伏期为11—105ms。表明 RVL 对双侧 SPN 有兴奋性影响。  相似文献   

11.
1. We have previously shown that intracisternal administration of endothelin-1 (ET-1) elicited cardiorespiratory responses acting on the ventral surface of the medulla oblongata (VSM) subjacent to the rostral ventrolateral medulla (RVLM). In this study, we examined whether vasomotor and respiratory neurons in RVLM participate in above-mentioned responses and whether those neurons respond to direct iontophoretic application of ET-1 and/or an ET-A receptor antagonist, FR139317.2. Unit activity of vasomotor, respiratory, or nociceptive neurons in RVLM was recorded together with arterial blood pressure (AP) and heart rate (HR) in urethane-anesthetized Sprague-Dawley rats.3. Intracisternal administration or topical application of ET-1 (0.1–1 pmol) to VSM caused excitation of the majority of vasomotor neurons (15/18) and respiratory neurons (10/11) but not in nociceptive neurons (0/7). Changes in neuronal activity were in similar time course with corresponding changes in AP and HR. Iontophoretic application of ET-1 to the vicinity of recording neuron caused excitation in 19 of 21 vasomotor neurons without affecting AP nor HR. Remaining two neurons were insensitive to ET-1. FR139317 did not affect basal activity of the vasomotor neurons but inhibited ET-1-evoked excitation. Twenty-four of 40 respiratory neurons were excited and 13 were inhibited by iontophoretic application of ET-1. Five of ET-1-excited respiratory neurons were inhibited by FR139317 alone while six of ET-1-inhibited neurons were not affected by FR139317 alone. In both cases, FR139317 inhibited the effect of simultaneously applied ET-1. Iontophoretic application of ET-1 excited only one out of 10 nociceptive neurons so far tested.4. These results support the view that intracisternally administered ET-1 alters activity of vasomotor and respiratory neurons in the RVLM, at least in part by acting directly on neurons themselves and hence causes systemic cardiorespiratory changes. Majority of vasomotor and respiratory neurons should express ET-A receptors and some respiratory neurons are under tonic excitatory control by ET-1.  相似文献   

12.
1. The aim of these studies was to test the hypothesis that glutamate is the principal excitatory neurotransmitter in the sympathetic premotor pathway from the rostral ventrolateral medulla (RVLM) to the sympathetic preganglionic neurons (SPNs) in the thoracic spinal cord.2. Iontophoretic and pressure ejection of glutamate receptor agonists and antagonists was made onto antidromically identified splanchnic and adrenal SPNs before and during electrical stimulation of the RVLM in urethane/chloralose-anesthetized, artificially ventilated rats.3. SPNs were excited by both NMDA and non-NMDA glutamate receptor agonists. Blockade of glutamate receptors in the IML interrupted the ability of electrical activation of sympathetic premotor neurons in the RVLM to excite SPNs. Within the IML, antergradely labeled terminals of RVLM neurons were found to contain glutamate immunoreactivity and to make asymmetric synapses on local dendrites.4. These data support a significant role for glutamate neurotransmission in mediating the tonic and phasic excitation of SPNs by the sympathetic premotor pathway from the RVLM. It seems likely that stimulation of the RVLM produces glutamate release from both C1 and non-PNMT-containing axon terminals in the IML.  相似文献   

13.
Ischemic stimulation of cardiac receptors reflexly excites the cardiovascular system. However, the supraspinal mechanisms involved in this reflex are not well defined. This study examined the responses of barosensitive neurons in the rostral ventrolateral medulla (RVLM) to stimulation of cardiac receptors and the afferent pathways involved in these responses. Single-unit activity of RVLM neurons was recorded in alpha-chloralose-anesthetized rats. Cardiac receptors were stimulated by epicardial application of 10 microg/ml of bradykinin (BK). Barosensitive neurons were silenced by stimulation of baroreceptors. Application of BK increased the mean arterial pressure from 65.2 +/- 1.9 to 89.3 +/- 2.9 mmHg and excited RVLM barosensitive neurons from 6.2 +/- 0.7 to 10.7 +/- 0.9 impulses/s (P < 0.05, n = 40). BK had no effect on 21 nonbarosensitive neurons. Blockade of stellate ganglia abolished the response of barosensitive neurons to BK. Cervical vagotomy significantly increased the baseline discharges of RVLM barosensitive neurons but had no effect on their responses to BK. Thus this study indicates that stimulation of cardiac receptors selectively activates RVLM barosensitive neurons through sympathetic afferent pathways. This information suggests that the RVLM barosensitive neurons are likely involved in the sympathetic control of circulation during myocardial ischemia.  相似文献   

14.
The effect of frontoparietal sensorimotor (FPSM) cortex stimulation on both the spontaneous and the noxious evoked activity of neurons in the lateral reticular nucleus (LRN) was tested in barbiturate-anesthetized rats. Ninety-three LRN neurons that responded to a noxious heat stimulus (HS) were recorded (72% antidromically fired from the cerebellum). Of these, 66 neurons altered their spontaneous firing rates in response to cortical stimulation. Two patterns of responses were found: either an excitation followed by a suppression of spontaneous activity (52 neurons), or a pure suppression of spontaneous activity lasting 50-400 msec (14 neurons). In 46 of these neurons, it was found that cortical stimulation reduced HS-evoked activity to near the baseline level. Furthermore, it was found that when applied after a prolonged cortical stimulation, the HS was ineffective. It is concluded that FPSM cortex can influence nociceptive information in LRN neurons that respond to its stimulation, possibly interfering with the mechanisms underlying stimulation-produced analgesia (SPA). In this context, it is proposed that the cortex can modulate the activity of LRN neurons that activate, through local loops, a descending antinociceptive system and also a separate projection system to the cerebellum.  相似文献   

15.
The effect of frontoparietal sensorimotor (FPSM) cortex stimulation on both the spontaneous and the noxious evoked activity of neurons in the lateral reticular nucleus (LRN) was tested in barbiturate-anesthetized rats. Ninety-three LRN neurons that responded to a noxious heat stimulus (HS) were recorded (72% antidromically fired from the cerebellum). Of these, 66 neurons altered their spontaneous firing rates in response to cortical stimulation. Two patterns of responses were found: either an excitation followed by a suppression of spontaneous activity (52 neurons), or a pure suppression of spontaneous activity lasting 50-400 msec (14 neurons). In 46 of these neurons, it was found that cortical stimulation reduced HS-evoked activity to near the baseline level. Furthermore, it was found that when applied after a prolonged cortical stimulation, the HS was ineffective. It is concluded that FPSM cortex can influence nociceptive information in LRN neurons that respond to its stimulation, possibly interfering with the mechanisms underlying stimulation-produced analgesia (SPA). In this context, it is proposed that the cortex can modulate the activity of LRN neurons that activate, through local loops, a descending antinociceptive system and also a separate projection system to the cerebellum.  相似文献   

16.
The responses to vestibular stimulation of brain stem neurons that regulate sympathetic outflow and blood flow have been studied extensively in decerebrate preparations, but not in conscious animals. In the present study, we compared the responses of neurons in the rostral ventrolateral medulla (RVLM), a principal region of the brain stem involved in the regulation of blood pressure, to whole body rotations of conscious and decerebrate cats. In both preparations, RVLM neurons exhibited similar levels of spontaneous activity (median of ~17 spikes/s). The firing of about half of the RVLM neurons recorded in decerebrate cats was modulated by rotations; these cells were activated by vertical tilts in a variety of directions, with response characteristics suggesting that their labyrinthine inputs originated in otolith organs. The activity of over one-third of RVLM neurons in decerebrate animals was altered by stimulation of baroreceptors; RVLM units with and without baroreceptor signals had similar responses to rotations. In contrast, only 6% of RVLM neurons studied in conscious cats exhibited cardiac-related activity, and the firing of just 1% of the cells was modulated by rotations. These data suggest that the brain stem circuitry mediating vestibulosympathetic reflexes is highly sensitive to changes in body position in space but that the responses to vestibular stimuli of neurons in the pathway are suppressed by higher brain centers in conscious animals. The findings also raise the possibility that autonomic responses to a variety of inputs, including those from the inner ear, could be gated according to behavioral context and attenuated when they are not necessary.  相似文献   

17.
The caudal ventrolateral reticular formation of the medulla oblongata is the first layer of visceral nociceptive processing. In experiments on rats, neuronal responses in this zone to nociceptive stimulation of the large intestine were examined and the effects of selective blockade of 5-HT3 receptors on these responses were assessed. By the character of responses to nociceptive colorectal stimulation (CRS), the recorded medullary neurons were divided into three groups—excited, inhibited and indifferent. Intravenous injection of 5-HT3 antagonist granisetron (1 and 2 mg/kg) as well as local application of this agent on the surface of the medulla oblongata (1.25 and 2.5 nmole) suppressed the background and evoked firing of CRS-excited reticular neurons in a dose-dependent manner but did not exert as pronounced influence on the cells inhibited by visceral nociceptive stimulation. Spike activity in the group of CRS-indifferent neurons under similar conditions was 5-HT3-independent. The results obtained provide evidence that 5-HT3 receptors mediate the facilitating effect of serotonin on supraspinal transmission of the abdominal nociceptive stimulus which, at least in part, is realized via selective activation of visceral medullary nociceptive neurons. A shutdown of this mechanism may underlie the analgesic effect of 5-HT3 antagonists in abdominal pain syndromes.  相似文献   

18.
Anatomy and physiology of a nociceptive modulatory system   总被引:6,自引:0,他引:6  
Although efferent control of sensory transmission is a well-established concept, a specific network for nociceptive modulation has only recently been discovered. This network includes interconnected components at midbrain, medullary and spinal levels. At the midbrain level, electrical stimulation of the periaqueductal grey (p.a.g.) inhibits spinal neurons that respond to noxious stimuli as well as nociceptor-induced reflexes and escape behaviour in a variety of species. Midbrain stimulation also produces analgesia in patients with clinically significant pain. The rostral ventral medulla (r.v.m.) has similar behavioural and physiological effects and mediates midbrain antinociceptive actions at the level of the spinal cord. Endorphins are present at all levels of this nociceptive modulating network. Opiate microinjections at p.a.g., r.v.m. or spinal levels produce analgesia, presumably by mimicking the actions of the endorphins. The nociceptive modulatory system is diffusely organized, highly interconnected and appears to act as a unit whether activated by opiates or electrical stimulation. There are two classes of r.v.m. neurons the activity of which is correlated with the occurrence of reflexes induced by noxious stimulation. One class (the on-cell) accelerates, the other class (the off-cell) pauses just before tail flick. Both classes project to the spinal cord and are excited by electrical stimulation of the midbrain. However, when morphine is injected either systemically or into the p.a.g., the off-cell is excited and the on-cell stops firing. The off-cell is probably the r.v.m. output cell that inhibits nociceptive transmission at the level of the spinal cord. The function of the on-cell is not clear. The nociceptive modulatory system can be activated by a variety of stressful environmental factors, which are often, but not necessarily, noxious. The idea that the system acts as a simple negative feedback circuit is not consistent with its known properties.  相似文献   

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