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S C Nuding

Publications and source records attributed to S C Nuding.

6 recordsLinked to original sources

Production of reflex cough by brainstem respiratory networks.

Delineation of neural mechanisms involved in reflex cough is essential for understanding its many physiological and clinical complexities, and the development of more desirable antitussive agents. Brainstem networks that generate and modulate the breathing pattern are also involved in producing the motor patterns during reflex cough. Neurones of the ventrolateral medulla respiratory pattern generator mutually interact with neural networks in the pons, medulla and cerebellum to form a larger dynamic network. This paper discusses evidence from our laboratory and others supporting the involvement of the nucleus tractus solitarii, midline raphe nuclei and lateral tegmental field in the medulla, and the pontine respiratory group and cerebellum in the production of reflex cough. Gaps in our knowledge are identified to stimulate further research on this complicated issue.

Brain Stem↗

Invited review: Neural network plasticity in respiratory control.

Respiratory network plasticity is a modification in respiratory control that persists longer than the stimuli that evoke it or that changes the behavior produced by the network. Different durations and patterns of hypoxia can induce different types of respiratory memories. Lateral pontine neurons are required for decreases in respiratory frequency that follow brief hypoxia. Changes in synchrony and firing rates of ventrolateral and midline medullary neurons may contribute to the long-term facilitation of breathing after brief intermittent hypoxia. Long-term changes in central respiratory motor control may occur after spinal cord injury, and the brain stem network implicated in the production of the respiratory rhythm could be reconfigured to produce the cough motor pattern. Preliminary analysis suggests that elements of brain stem respiratory neural networks respond differently to hypoxia and hypercapnia and interact with areas involved in cardiovascular control. Plasticity or alterations in these networks may contribute to the chronic upregulation of sympathetic nerve activity and hypertension in sleep apnea syndrome and may also be involved in sudden infant death syndrome.

Animals↗

Monaural response properties of single neurons in the chinchilla inferior colliculus.

The responses of 274 inferior colliculus (IC) central nucleus neurons from 20 chinchillas were studied. Characteristic frequency (CF) increased as the IC was traversed in the dorsal-ventral direction. Most units had little or no spontaneous activity, with a mean threshold for response of about 30 dB SPL across all units. Tuning curve width varied between units, with a significant increase in Q20, with increasing CF. Peri-stimulus time histogram (PSTH) types were similar to those reported for cat inferior colliculus units. Transient, sustained, pauser, and buildup types were observed, with transient responses predominating. Response area (RA) types were also similar to those of cat IC units, with most units displaying stable best frequencies across a range of stimulus intensity levels. For a few units, excitatory RA regions were surrounded by inhibitory sidebands. Nonmonotonic discharge rate vs. stimulus intensity level functions were common in all CF ranges and for all PSTH and RA types. Mean first spike latencies, however, differed across PSTH groups, owing to the temporal definitions of these PSTH shapes. Latencies of sustained units were significantly longer than those of transient units, and buildup PSTHs showed significantly longer latencies than any other group.

Action Potentials↗

Bilateral projections of the pontine micturition center to the sacral parasympathetic nucleus in the rat.

Previous work has revealed that pontine micturition center (PMC) neurons send projections to the sacral parasympathetic nucleus (SPN) of the intermediolateral (IML) regions of L6-S1 spinal cord segments in rats. Although unilateral SPN injections will retrogradely label PMC neurons bilaterally, it is not known whether single PMC neurons project bilaterally to the SPN. There may be two different populations of PMC neurons on each side of the brainstem, with both groups independently connecting to the SPNs on opposite sides of the spinal cord. To verify one of these alternatives, a small injection of either rhodamine-labeled latex microspheres or a red fluorescent emulsion was made into the SPN on one side of the cord; a similar injection of either fluorescein-tagged microspheres or a green fluorescent emulsion was made into the other. After at least seven days, the rats were perfused. Inspection of 40 micron cord sections confirmed the similar placement of these injections along the rostrocaudal axis of the cord and that no tracer had spread across midline. Thirty-micron brain sections were examined for filled neurons. Red, green and double labeled neurons were found bilaterally in the PMC, subcoeruleus, and A5 regions. Although some red nucleus cells were also filled, they were only singly labeled and always located contralateral to the injection. Finally, immunohistochemical staining of dopamine-beta-hydroxylase (DBH) containing cells confirmed that some labeled cells were also noradrenergic. We therefore conclude that some PMC, subcoeruleus, and A5 neurons send axons to the SPN on both sides of the lumbosacral cord.

Animals↗

Taste-responsive neurons and their locations in the solitary nucleus of the hamster.

The solitary nucleus (nucleus tractus solitarii), the first central relay for taste in mammals, was studied anatomically and physiologically in the golden hamster (Mesocricetus auratus). Activity of neurons to anterior tongue stimulation with sucrose, NaCl and KCl were extracellularly recorded. Electrolytic lesions or horseradish peroxidase deposits allowed subsequent localization of recording sites. Anterior tongue taste-responsive sites were restricted to a very small part of the rostral pole of the solitary nucleus, which is about 3% of the entire nucleus. Sites were confined to the rostral-central and rostral-lateral subdivisions of Whitehead, which contain a number of morphological cell types. Some chemotopic organization was seen with multi-unit recordings, with NaCl-selective sites concentrated rostrally and sucrose- and KCl-selective sites concentrated caudally. Sites with broad sensitivity were distributed throughout the gustatory region. Single neural units showing inhibition to taste stimuli, units highly reactive to all three stimuli, and units with high spontaneous rates were seen in the solitary nucleus, as well as units that responded very selectively and had low spontaneous rates. Single units with similar response profiles to sucrose, NaCl and KCl were not segregated to separate restricted locations within the taste-reactive region; their distributions overlapped. In the hamster, neurons in the anterior tongue taste region of the solitary nucleus process taste quality information in diverse ways. Highly reactive non-specific neurons, neurons that show inhibition, and neurons with high spontaneous rates are more frequently observed in the solitary nucleus than in the afferent input fibers of the chorda tympani nerve. The small region of the rostral pole enclosing taste-responsive neurons is complexly organized in relation to taste quality and contains a number of morphological cell types whose functional role in taste is not yet known.

Action Potentials↗

Older observers have attenuated increment thresholds upon transient backgrounds.

Foveal increment thresholds were measured in young, middle-aged, and older observers. These thresholds, which involved the detection of a small test flash as a function of the intensity of a larger background adapting field (AF), were measured at the instant of onset of the AF (transient condition) and when the eye had been fully light adapted to the AF (steady-state condition). All stimuli were presented to the left eye in a free-viewing system through a 2 mm artificial pupil. For the steady-state condition for all age groups, the functions were similar, but for the transient condition, the slope for the older observers was significantly less steep than that for the younger observers. These findings are consistent with an hypothesis of a selective loss of transient (Y) channels in the aging visual system.

Adult↗