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Single unit activity in medullary respiratory centers of cat.猫延髓呼吸中枢的单单位活动
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Generation of spontaneous respiratory rhythm in high spinal cats.高位脊髓猫自主呼吸节律的产生
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Brain stem genesis of automatic ventilatory patterns independent of spinal mechanisms.自动呼吸模式的脑干起源独立于脊髓机制。
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Anatomical organization of central respiratory neurons.中枢呼吸神经元的解剖结构
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Generation and maintenance of the respiratory rhythm.呼吸节律的产生与维持。
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Axonal projections from the rostral expiratory neurones of the Bötzinger complex to medulla and spinal cord in the cat.猫中脑桥尾侧网状核呼气神经元向延髓和脊髓的轴突投射。
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Effects of carotid chemoreceptor excitation on medullary expiratory neurons in cats.
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A method for evoking physiological responses by stimulation of cell bodies, but not axons of passage, within localized regions of the central nervous system.一种通过刺激中枢神经系统局部区域内的细胞体而非传导轴突来诱发生理反应的方法。
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The lateral respiratory neurones of the medulla: their associations with nucleus ambiguus, nucleus retroambigualis, the spinal accessory nucleus and the spinal cord.延髓的外侧呼吸神经元:它们与疑核、后疑核、副神经核及脊髓的联系。
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Antidromic action potentials fail to demonstrate known interactions between neurons.逆向动作电位无法证明神经元之间已知的相互作用。
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延髓尾部呼气神经元的化学激活改变了猫的呼吸模式。

Chemical activation of caudal medullary expiratory neurones alters the pattern of breathing in the cat.

作者信息

Bongianni F, Corda M, Fontana G A, Pantaleo T

机构信息

Dipartimento di Scienze Fisiologiche, Università degli Studi di Firenze, Italy.

出版信息

J Physiol. 1994 Feb 1;474(3):497-507. doi: 10.1113/jphysiol.1994.sp020040.

DOI:10.1113/jphysiol.1994.sp020040
PMID:8014909
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1160340/
Abstract
  1. The purpose of this work was to ascertain whether the activation of caudal expiratory neurones located in the caudal part of the ventral respiratory group (VRG) may affect the pattern of breathing via medullary axon collaterals. 2. We used microinjections of DL-homocysteic acid (DLH) to activate this population of neurones in pentobarbitone-anaesthetized, vagotomized, paralysed and artificially ventilated cats. Both phrenic and abdominal nerve activities were monitored; extracellular recordings from medullary and upper cervical cord respiratory neurones were performed. 3. DLH (160 mM) microinjected (10-30 nl for a total of 1.6-4.8 nmol) into the caudal VRG, into sites where expiratory activity was encountered, provoked an intense and sustained activation of the expiratory motor output associated with a corresponding period of silence in phrenic nerve activity. During the progressive decline of the activation of abdominal motoneurones, rhythmic inspiratory activity resumed, displaying a decrease in frequency and a marked reduction or the complete suppression of postinspiratory activity as its most consistent features. 4. Medullary and upper cervical cord inspiratory neurones exhibited inhibitory responses consistent with those observed in phrenic nerve activity, while expiratory neurones in the caudal VRG on the side contralateral to the injection showed excitation patterns similar to those of abdominal motoneurones. On the other hand, in correspondence to expiratory motor output activation, expiratory neurones of the Bötzinger complex displayed tonic discharges whose intensity was markedly lower than the peak level of control breaths. 5. Bilateral lignocaine blockades of neural transmission at C2-C3 affecting the expiratory and, to a varying extent, the inspiratory bulbospinal pathways as well as spinal cord transections at C2-C3 or C1-C2, did not suppress the inhibitory effect on inspiratory neurones of either the ipsi- or contralateral VRG in response to DLH microinjections into the caudal VRG. 6. The results show that neurones within the column of caudal VRG expiratory neurones promote inhibitory effects on phrenic nerve activity and resetting of the respiratory rhythm. We suggest that these effects are mediated by medullary bulbospinal expiratory neurones, which may, therefore, have a function in the control of breathing through medullary axon collaterals.
摘要
  1. 这项研究的目的是确定位于腹侧呼吸组(VRG)尾部的尾侧呼气神经元的激活是否会通过延髓轴突侧支影响呼吸模式。2. 我们在戊巴比妥麻醉、迷走神经切断、麻痹并人工通气的猫身上,使用微量注射DL-高半胱氨酸(DLH)来激活这群神经元。同时监测膈神经和腹神经的活动;对延髓和颈髓上段的呼吸神经元进行细胞外记录。3. 将DLH(160 mM)微量注射(10 - 30 nl,总量为1.6 - 4.8 nmol)到尾侧VRG中遇到呼气活动的部位,会引发呼气运动输出的强烈且持续的激活,并伴有膈神经活动相应时期的沉默。在腹侧运动神经元激活的逐渐下降过程中,有节律的吸气活动恢复,其频率降低,吸气后活动明显减少或完全被抑制,这是其最一致的特征。4. 延髓和颈髓上段的吸气神经元表现出与膈神经活动中观察到的一致的抑制反应,而注射对侧尾侧VRG中的呼气神经元则表现出与腹侧运动神经元相似的兴奋模式。另一方面,与呼气运动输出激活相对应,包钦格复合体的呼气神经元呈现出强直性放电,其强度明显低于对照呼吸的峰值水平。5. 在C2 - C3水平双侧利多卡因阻断影响呼气以及在不同程度上影响吸气的延髓脊髓通路,以及在C2 - C3或C1 - C2水平进行脊髓横断,均未抑制尾侧VRG微量注射DLH后同侧或对侧VRG对吸气神经元的抑制作用。6. 结果表明,尾侧VRG呼气神经元柱内的神经元对膈神经活动具有促进抑制作用,并能重置呼吸节律。我们认为这些作用是由延髓脊髓呼气神经元介导的,因此它们可能通过延髓轴突侧支在呼吸控制中发挥作用。