α1-adrenergic receptor-induced slow rhythmicity in nonrespiratory cervical motoneurons of neonatal rat spinal cord

被引:25
作者
Morin, D [1 ]
Bonnot, A [1 ]
Ballion, B [1 ]
Viala, D [1 ]
机构
[1] Univ Bordeaux 1, CNRS, UMR 5816, Lab Neurobiol Reseaux, F-33405 Talence, France
关键词
cranial and phrenic activities; in vitro study; phenylephrine; potassium channel; respiration;
D O I
10.1046/j.1460-9568.2000.00154.x
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
Previous studies have reported that the alpha(1)-adrenergic system can activate spinal rhythm generators belonging to the central respiratory network. In order to analyse alpha(1)-adrenergic effects on both cranial and spinal motoneuronal activity, phenylephrine (1-800 mu m) was applied to in vitro preparations of neonatal rat brainstem-spinal cord. High concentration of phenylephrine superfusion exerted multiple effects on spinal cervical outputs (C2-C6), consisting of a lengthening of respiratory period and an increase in inspiratory burst duration. Furthermore, in 55% of cases a slow motor rhythm recorded from the same spinal outputs was superimposed on the inspiratory activity. However, this phenylephrine-induced slow motor rhythm generated at the spinal level was observed neither in inspiratory cranial nerves (glossopharyngeal, vagal and hypoglossal outputs) nor in phrenic nerves. Whole-cell patch-clamp recordings were carried out on cervical motoneurons (C4-C5), to determine first which motoneurons were involved in this slow rhythm, and secondly the cellular events underlying direct phenylephrine effects on motoneurons. In all types of motoneurons (inspiratory and nonrespiratory) phenylephrine induced a prolonged depolarization with an increase in neuronal excitability. However, only nonrespiratory motoneurons showed additional rhythmic membrane depolarizations (with spiking) occurring in phase with the slow motor rhythm recorded from the ventral root. Furthermore the tonic depolarization produced in all motoneurons results from an inward current [which persists in the presence of tetrodotoxin (TTX)] associated with a decrease in neuron input conductance, with a reversal potential varying as a Nernstian function of extracellular K+ concentration. Our results indicate that the alpha(1)-adrenoceptor activation: (i) affects both the central respiratory command (i.e. respiratory period and inspiratory burst duration) and spinal inspiratory outputs; (ii) induces slow spinal motor rhythmicity, which is unlikely to be related to the respiratory system; and (iii), increases motoneuronal excitability, probably through a decrease in postsynaptic leak K+ conductance.
引用
收藏
页码:2950 / 2966
页数:17
相关论文
共 55 条
[1]   Serotonergic and noradrenergic effects on respiratory neural discharge in the medullary slice preparation of neonatal rats [J].
AlZubaidy, ZA ;
Erickson, RL ;
Greer, JJ .
PFLUGERS ARCHIV-EUROPEAN JOURNAL OF PHYSIOLOGY, 1996, 431 (06) :942-949
[2]   GENERATION OF SPONTANEOUS RESPIRATORY RHYTHM IN HIGH SPINAL CATS [J].
AOKI, M ;
MORI, S ;
KAWAHARA, K ;
WATANABE, H ;
EBATA, N .
BRAIN RESEARCH, 1980, 202 (01) :51-63
[3]   The adrenergic modulation of firings of respiratory rhythm-generating neurons in medulla-spinal cord preparation from newborn rat [J].
Arata, A ;
Onimaru, H ;
Homma, I .
EXPERIMENTAL BRAIN RESEARCH, 1998, 119 (04) :399-408
[4]   Neuromodulation of hypoglossal motoneurons: cellular and developmental mechanisms [J].
Bayliss, DA ;
Viana, F ;
Talley, EM ;
Berger, AJ .
RESPIRATION PHYSIOLOGY, 1997, 110 (2-3) :139-150
[5]   CENTRAL CONTROL OF BREATHING IN MAMMALS - NEURONAL CIRCUITRY, MEMBRANE-PROPERTIES, AND NEUROTRANSMITTERS [J].
BIANCHI, AL ;
DENAVITSAUBIE, M ;
CHAMPAGNAT, J .
PHYSIOLOGICAL REVIEWS, 1995, 75 (01) :1-45
[6]   WHOLE CELL RECORDING FROM NEURONS IN SLICES OF REPTILIAN AND MAMMALIAN CEREBRAL-CORTEX [J].
BLANTON, MG ;
LOTURCO, JJ ;
KRIEGSTEIN, AR .
JOURNAL OF NEUROSCIENCE METHODS, 1989, 30 (03) :203-210
[7]   VARIABILITY AS A CHARACTERISTIC OF IMMATURE MOTOR SYSTEMS - AN ELECTROMYOGRAPHIC STUDY OF SWIMMING IN THE NEWBORN RAT [J].
CAZALETS, JR ;
MENARD, I ;
CREMIEUX, J ;
CLARAC, F .
BEHAVIOURAL BRAIN RESEARCH, 1990, 40 (03) :215-225
[8]  
Cooke IRC, 1996, J NEUROBIOL, V30, P385, DOI 10.1002/(SICI)1097-4695(199607)30:3<385::AID-NEU7>3.0.CO
[9]  
2-0
[10]  
DIPASQUALE E, 1992, EXP BRAIN RES, V89, P459