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Biomedical subjects

I Homma

Publications and source records attributed to I Homma.

At least 73 records · Page 4Linked to original sources

TRH regulation of tracheal tension through vagal preganglionic motoneurons.

TRH-immunoreactive nerve terminals innervate the ambiguous nucleus in the rabbit. Vagal preganglionic motoneurons that innervate the trachea, were revealed by HRP histochemistry in the rostral part of the ambiguous nucleus and the dorsal motor nucleus of the vagus. HRP histochemistry plus TRH immunocytochemistry revealed that TRH-immunoreactive axon terminals synapsed on ambiguous nucleus neurons retrogradely labeled by HRP injection into tracheal smooth muscle and the superior laryngeal nerve. Microinjection of 50 ng TRH into the rostral ambiguous nucleus caused slight dilation followed by constriction, which was inhibited by atropine and vagotomy. Results show that central TRH-containing neurons regulate tracheal tension through synapses on vagal preganglionic motoneurons that innervate tracheal smooth muscle.

Animals↗

Excitation of inspiratory neurons by preinspiratory neurons in rat medulla in vitro.

In brain stem-spinal cord preparations isolated from newborn rats, we examined synaptic connections to inspiratory neurons from preinspiratory (Pre-I) neurons, by spike-triggered averaging. Potentials were simultaneously recorded intracellularly from inspiratory neurons, and extracellularly from Pre-I neurons in the ipsilateral ventrolateral medulla. The Pre-I neuron pulses were used to trigger computer averaging of potential changes. A total of 16 pairs were analyzed, and EPSP-like depolarizing potentials locked to the triggering Pre-I spikes were obtained from three pairs. Latency from the Pre-I spikes was 3.4-4.5 ms, and the amplitude was 0.07-0.4 mV. These connections were concluded to be monosynaptic, because the antidromic latency was 3.6 +/- 1.5 ms. The present results suggest the presence of excitatory synaptic connections from Pre-I neurons to inspiratory neurons in the ventrolateral medulla. These excitatory synaptic connections are probably important in the initiation of inspiratory burst activity.

Animals↗

An ubiquitous modulating function of rabbit tracheal epithelium: degradation of tachykinins.

1. To examine the role of epithelium in the responsiveness of tracheal smooth muscle in rabbit, we measured the contractile responses to acetylcholine (ACh), KCl, 5-hydroxytryptamine (5-HT), histamine, substance P (SP), neurokinin A (NKA), and electrical field stimulation EFS) in intact and epithelium-denuded preparations. 2. Removal of epithelium did not alter the contractile response to any agonist examined, except SP. 3. Removal of epithelium enhances the contractile response to SP. In the presence of phosphoramidon, the contractile response to SP was not significantly different in either group. The results suggest that the effect of epithelium is largely due to degradation of SP by enzymes in the epithelium. 4. Arachidonic acid metabolites did not seem to be related to the responses induced by contractile agonists or EFS. 5. In the presence of SP, the contractile responses and [3H]-choline outflow evoked by EFS were dose-dependently enhanced. Contractile responses to EFS and [3H]-choline outflow evoked by EFS were enhanced by SP significantly more than by NKA. Both were abolished by atropine or tetrodotoxin. 6. These results suggest that rabbit tracheal epithelium may modulate SP-induced contractions, both direct and indirect, by inactivation of SP. This phenomenon is widespread in mammals. The rabbit may be a useful model to examine airway cholinergic functions.

Animals↗

Effect of acupuncture at right Hoku point on the bilateral vibration-induced finger flexion reflex in man.

Vibration applied to the volar side of the finger tip has been reported to induce finger flexion reflex. Acupuncture is reported to inhibit this vibration-induced finger flexion reflex (VFR) in the ipsilateral hand. The purpose of this study was to investigate the effect of unilateral acupuncture in the hand on VFR in both hands. As no systematic study on the relationship between VFR and the force of voluntary contraction with no vibration (Initial Force: IF) has been reported, this relationship was studied prior to the present study on acupuncture. VFR was induced by mechanical vibration on the volar side of the middle finger tip with 10 g to 500 g IF. With approximately 300 g IF, VFR was consistent. Therefore, approximately 300 g IF was applied for VFR induction to study the effect of acupuncture on VFR. A stainless steel needle was inserted into the right Hoku point and remained inserted (in-situ technique) for 10 minutes. VFR in both hands was significantly decreased by acupuncture at the right Hoku point (% control force of VFR: right, 67.8%; left, 74.6%). The present results suggest that acupuncture in the unilateral hand influences the bilateral reflex arc of VFR.

Acupuncture Points↗

[Dyspnea and respiratory reflexes].

It has been suggested that afferents from intercostal muscles may play a role in the genesis of dyspnea. In this study, lower intercostal muscles were tapped or vibrated to induce a reflex, evoked potentials, and sensation. The tapping stimulus induced H reflex in the same muscle with a latency of 12 msec. Also the same stimulus induced evoked potentials in the cerebral cortex (N1: 19.8 +/- 1.2 msec). This suggests projection of the intercostal muscle spindle afferents to the cerebral cortex. 100 Hz vibration induced a later component, presumably an event-related potential, at 250 msec after the onset of both the inspiratory and expiratory phase. Thus, it may be possible that intercostal muscle spindle afferents project to the cerebral cortex and play a role in respiratory sensation. It has been suggested that dyspnea is reduced by increasing inspiratory and expiratory intercostal muscle spindle afferents during the inspiratory and expiratory phases, respectively. Thus, stretching the inspiratory and expiratory intercostal muscles during the respective muscular contraction phase may be effective in reducing dyspnea.

Dyspnea↗

Contractile responses and calcium mobilization in renal arteries of diabetic rats.

The causes of diabetes-associated change of renal artery vasomotion have not been established. We investigated both contractile responses to KCl and norepinephrine (NE) in renal arteries of rats with streptozotocin-induced diabetes and age-matched controls and the effects on Ca2+ mobilization. Renal arteries from diabetics had greater maximum contractile responses to KCl and NE, but the threshold concentrations and EC50 values of KCl and NE were similar in controls and diabetics. The concentration-response for Bay K 8644, a dihydropyridine Ca2+ channel agonist in the presence of 20 mM KCl was significantly greater in diabetics than in controls. The maximum contractile responses to Ca2+ in the presence of 10(-6) M NE were significantly (P less than 0.05) greater in diabetics than in controls. The increased contractile response at low concentrations of Ca2+ (0.01-0.05 mM) was inhibited in both preparations by 10(-6) M nifedipine, but at high concentrations of Ca2+ (0.1-2.5 mM) the inhibition by nifedipine was significantly less in diabetics than in the controls. 45Ca2+ uptake had significantly greater resting levels in diabetics than in controls. The uptake of 45Ca2+ induced by 10(-5) M NE was significantly greater in diabetics than in controls, and 10(-7) M prazosin diminished both responses. The results suggest hyperreactivity of contractile responses to KCl or NE, and hyperpermeability of renal artery smooth muscle membrane to Ca2+ in streptozotocin-induced diabetics.

3-Pyridinecarboxylic acid, 1,4-dihydro-2,6-dimethy↗

Relations between contractile responses and beta-adrenoceptors in gastric fundus of diabetic rats.

Contractile responses to norepinephrine (NE), and the population of beta-adrenoceptors, were determined in gastric fundus smooth muscle from rats with diabetes induced by streptozotocin (STZ), and age-matched controls. Relaxation and/or contraction of fundus strips of controls and diabetics were induced by 10(-5)M NE. Responses to NE were mainly relaxation in gastric fundus isolated from controls, and contraction in fundus isolated from diabetics. Contraction was blocked by 10(-8) M prazosin and relaxation was blocked by 10(-6) M propranolol. Relaxation by isoproterenol of contraction induced by 10(-6) M acetylcholine was significantly less in fundus from diabetics than in that from controls. The number of beta-adrenoceptors, measured with [125I] iodocyanopindolol as a ligand, was significantly less in gastric fundus membrane isolated from diabetics than in that from controls, but affinity was no different. The level of plasma catecholamine was higher in diabetics than in controls. Results suggest that depression of gastric fundus relaxation and increase of contraction by NE in diabetics could be due to fewer beta-adrenoceptor binding sites caused by down-regulation by higher catecholamine level in diabetic rats.

Animals↗

Immunocytochemistry of thyrotropin-releasing hormone in the rabbit medulla oblongata.

The distribution and ultrastructure of thyrotropin-releasing hormone-like immunoreactive (TRH-LI) neurons were examined in rabbit medulla oblongata. TRH-LI cell bodies were located in the ventral region of the medulla oblongata: in the paraolivary and parapyramidal regions, regions in and around the pyramidal tract, the dorsolateral region of the lateral reticular nucleus, and the raphe nuclei. The paraolivary and parapyramidal regions contained most of the TRH-LI cell bodies in the medulla oblongata. TRH-LI neurons processes were densely distributed in the dorsal vagal complex and the area postrema. Electron-microscopic immunocytochemical studies revealed TRH-LI neurons at the obex level in the paraolivary region of rabbits. TRH-like immunoreactivity was localized in larger granular vesicles. TRH-LI somata and dendrites received synaptic inputs from both TRH-LI and unlabeled axon terminals. More than half of the TRH-LI axon terminals made synapses with somata or processes of TRH-LI neurons. These observations, together with previous reports that TRH causes respiratory facilitation, suggest that TRH-LI neurons in the paraolivary region in rabbits may be involved in respiratory functions.

Animals↗

[Rabbit immunization to induce experimental asthma--relationship between antigens and airway reactivity].

Japanese white rabbits were immunized with either alternaria or ragweed starting at birth to induce experimental asthmatic model. We studied the characteristics of contractile responses of tracheal smooth muscle isolated from these sensitized animals and compared them with non-sensitized control animals. Both sensitivity and reactivity of contraction induced by acetylcholine (ACh) were increased in the alternaria sensitized group, but only sensitivity was increased in the ragweed group. Contractile responses to electrical field stimulation were enhanced in both sensitized groups, and responses in the alternaria group were significantly greater than those in the ragweed group. In the alternaria group, atropine suppressed the contractile response to KCl, indicating that the contraction was mediated partially through a muscarinic mechanism. In the ragweed group, atropine suppressed responses to 20 mM KCl. Stimulation of the intramural nerve plexus facilitated the release of neurotransmitters, especially ACh. This was more obvious in the alternaria group than in the ragweed group. These results suggest that alternaria sensitization of rabbits produces a better model for studying changes in interaction between nerves and smooth muscle in the airway.

Acetylcholine↗

Pre-inspiratory burst in the caudal medulla of rabbits.

The activity of 48 respiratory units in the paraolivary region from the middle to the rostral end of the hypoglossal cranial nerve root, and the effect of electrical stimulation and L-glutamate applied to the region on phrenic nerve activity was investigated in 14 rabbits. Electrical stimulation (50 Hz, 0.2 ms current pulses at intensities 5-20 microA) and L-glutamate (30-100 ng) shortened the expiratory time and increased the respiratory rhythm with no change in tidal phrenic nerve activity. Rhythmic activity preceding the phrenic nerve activity (pre-inspiratory burst) was recorded in the paraolivary region. The temporal relationship between the pre-inspiratory (pre-I) burst and the phrenic activity remained constant even when the respiratory frequency was altered by passive lung inflation. These results suggest that structures in the paraolivary region may influence the respiratory rhythm in rabbits and that pre-I burst neurons may play a role in triggering periodic phrenic activity.

Action Potentials↗

Inhibitory synaptic inputs to the respiratory rhythm generator in the medulla isolated from newborn rats.

Involvement of chloride-dependent, gamma-aminobutyric acid-(GABA-) like synaptic inhibition in the generation of respiratory rhythm was studied in brainstem-spinal cord preparations isolated from newborn rats. Primary respiratory rhythm is presumably generated within the rostral ventrolateral medulla, the site of Pre-I neurones, the firing of which precedes inspiration. Therefore, we examined the responses of Pre-I and inspiratory neurones to GABA antagonists (picrotoxin and bicuculline), a glycine antagonist (strychnine) and reduced chloride concentration in the perfusate. These antagonists (2-20 microM) and reduction of chloride concentration reversibly blocked the transient inhibition of Pre-I activity that occurred during the inspiratory phase. The rhythmic Pre-I and inspiratory neurone activity remained. Changes in the firing properties of Pre-I and inspiratory neurones in 10 microM bicuculline, 10 microM picrotoxin, 5 microM strychnine or reduction of chloride concentration to 40% of normal were analysed statistically. Burst rate of Pre-I neurones tended to increase during these treatments. Delay time from initiation of Pre-I firing to the peak of C4 motorneurone inspiratory activity tended to decrease except during reduced chloride concentration. Changes in mean intraburst firing frequency of Pre-I neurones were not consistent; increase (32%), no change (38%) or decrease (30%). Burst duration of inspiratory neurones decreased. Intraburst firing frequency of inspiratory neurones tended to increase except in 5 microM strychnine. GABA (0.1 mM) or glycine (0.2 mM) reduced the intraburst firing frequency and burst rate of Pre-I neurones, but did not affect the intraburst firing frequency of inspiratory neurones. The burst duration of inspiratory neurones increased during GABA and glycine treatment.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Respiration-related neurons in the ventral medulla of newborn rats in vitro.

In brainstem-spinal cord preparations isolated from newborn rats, we examined functions of the ventral medulla in respiratory rhythm generation, and located respiratory neurons in that region. Removal of the dorsal half of the medulla caused only modest reduction of the rate of inspiratory bursts from the cervical (C4 or C5) ventral root and moderate changes in the burst pattern. We describe here two types of respiratory neurons; Pre-I neurons that are presumably crucial in primary rhythm generation, and inspiratory (I) neurons that we presume to be important in inspiratory pattern generation. Pre-I neurons were located close to phenylethanolamine N-methyltransferase (PNMT)-immunoreactive (IR) neurons that are common in the reticular formation of the rostral ventrolateral medulla (RVL). Distributions of I neurons and Pre-I neurons overlapped in the RVL, and I neurons were also near the nucleus ambiguus in the more caudal part of the ventrolateral medulla. The results indicate that the ventral medulla is essential to inspiratory pattern generation as well as rhythm generation. It is suggested that the RVL is an important site in rhythm generation. The region of inspiratory pattern generation may extend more caudally in the ventral medulla.

Action Potentials↗

Electron microscopic studies of medullary synaptic inputs to vasopressin-containing neurons in the hypothalamic paraventricular nucleus.

We have observed the ascending projections from the lower brain stem to the magnocellular vasopressin-like immunoreactive (VP-LI) neurosecretory neurons in the paraventricular nucleus (PVN) using electron microscopy. The tissues were prepared by a double labeling technique combining anterograde tracing after iontophoretic injection of wheat germ agglutinin-coupled horseradish peroxidase (WGA-HRP) in the A1 group (lateral reticular nucleus in the medulla oblongata) with VP immunocytochemistry. Both the WGA-HRP-labeled and the unlabeled axon terminals made synaptic contacts with VP-LI cell bodies and processes in the PVN. This indicates a direct synaptic influence of medullary A1 group on the secretory activity of the VP-containing neurons in the hypothalamic paraventricular nucleus.

Animals↗

Firing properties of respiratory rhythm generating neurons in the absence of synaptic transmission in rat medulla in vitro.

It has previously been demonstrated that Pre-I neurons, localized in the rostral ventrolateral medulla, are important in the generation of the primary respiratory rhythm in brainstem-spinal cord preparations from newborn rats. To investigate whether or not Pre-I neurons have endogenous pacemaker properties, we examined Pre-I neuron activity before and after chemical synaptic transmission was blocked by incubation in a low Ca2+ (0.2 mM), high Mg2+ (5 mM) solution (referred to here as low Ca). After incubation for about 30 min in low Ca, 28 (52%, type-1) out of 54 neurons tested in 27 preparations retained apparent rhythmic (phasic) activity after complete disappearance of C4 inspiratory activity. Sixteen neurons (30%, type-2) fired tonically and 10 (18%, type-3) were silent. We examined the effects of synaptic blockade on 14 inspiratory neurons in the RVL. The firing of all 14 neurons in 9 preparations disappeared concomitantly with the disappearance of C4 activity in low Ca. When the pH of the low Ca solution was lowered with a decrease in NaHCO3 concentration from 7.4 to 7.1, the firing rate of the Pre-I neurons (type-1) increased from 12 to 18/min. In conclusion, the generator of respiratory rhythm in the newborn rat is probably a neuronal network with chemical synapses that functions mainly through the endogenous Pre-I pacemaker cells. Intrinsic chemoreception in the rhythm generator is probably important in frequency control of respiratory rhythm.

Action Potentials↗

Evidence that the Na+-Ca2+ exchange system is related to the antiarrhythmic action of disopyramide.

1. Disopyramide induced a concentration-dependent decrease in action potential amplitude and Vmax, and prolonged action potential durations (APD50 and APD90) in ventricular muscle. 2. Na+-loaded membrane vesicles isolated from canine ventricular muscle rapidly accumulated Ca2+. 3. Monensin (10(-5) M) abolished Na+-dependent Ca2+ uptake, and Na+ enhanced Ca2+ efflux. 4. Na+-Ca2+ exchange by membrane vesicles was more active in preparations pretreated with disopyramide (10(-5) M) than in control membranes. 5. The results suggest that disopyramide changes Na+ influx from Na+ channel mediated to Na+-Ca2+ exchange mediated. This is verified in part by increased Ca2+ efflux.

Animals↗

Functional mechanism of expiratory pattern generator.

Tidal expiratory activity and the time to its peak (TEa, i.e., time of active expiration) were measured from the integration curve of external oblique muscle activity in rabbits. The rabbits were spontaneously breathing under urethan-chloralose anesthesia in the prone position. CO2 rebreathing was performed, and the changes in the temporal profile of the integrated expiratory activity were studied. Hypercapnia increased the tidal expiratory activity before and after bilateral vagotomy. Before vagotomy, the rate of rise (tidal expiratory activity/TEa) increased significantly and TEa was shortened. On the other hand, after vagotomy, the rate of rise remained unchanged and TEa was prolonged. An expiratory off-switch model is postulated according to the quantitative relationship between the time and amplitude of the tidal expiratory activity. The expiratory activity pattern in vagotomized rabbits was similar to that in humans.

Animals↗

Thyrotropin-releasing hormone-like immunoreactive neurons in rabbit medulla oblongata.

Thyrotropin-releasing hormone-like immunoreactive (TRH-LI) neuronal cell bodies and processes were identified by using the peroxidase-antiperoxidase method in the medullar oblongata of rabbits. TRH-LI cell bodies were mainly distributed in the ventral medulla (paraolivary and parapyramidal regions), and caudal raphe nuclei (nucleus raphe obscurus and nucleus raphe pallidus). TRH-LI processes with varicosities were densely distributed in the solitary nucleus, dorsal motor nucleus of the vagus nerve and area postrema. TRH-LI processes appeared to be in contact with unlabelled cell bodies in the dorsal motor nucleus of the vagus nerve.

Animals↗