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Biomedical subjects

J P Baker

Publications and source records attributed to J P Baker.

6 recordsLinked to original sources

Behavior of expiratory neurons in response to mechanical and chemical loading.

The response of medullary expiratory neurons to added mechanical and chemical loads was studied in anesthetized cats. Alterations in burst characteristics and central timing were compared in the intact and bilaterally vagotomized cat. The following results were obtained: (1) Graded expiratory airflow resistances caused progressive increases in burst duration, spikes per burst and firing rate; similar effects were noted for end-inspiratory tracheal occlusions and continuous positive breathing; all facilitation was eliminated by vagotomy. (2) Graded inspiratory airflow resistances delayed the onset of an expiratory burst but did not change the overall burst characteristics. (3) Acute hypercapnia increased ventilation without noticeable changes in expiratory burst characteristics; acute hypoxia produced a reduction in burst duration concomitant with changes in ventilation. It is concluded that (1) expiratory neurons are responsive to vagally mediated volume information and (2) transient hypoxia and hypercapnia sufficient to increase ventilation does not increase the firing rate of expiratory neurons but exerts differential effects with respect to timing. It is suggested that expiratory duration is related to the time integral of expired volume and that the increase in FRC imposed by expiratory loads does not alter the central timing of the next inspiration.

Action Potentials

Graded inspiratory inhibition: specific effects of flow rate.

The effect of inspiratory flow rate on graded inspiratory inhibition was examined in barbiturate-anesthetized paralyzed cats normally ventilated by a phrenic-driven servorespirator. Periodically, the animals were inflated, for a single breath, by a constant-flow volume ramp begun at one of several delays following phrenic onset. The phrenic activity during these volume-ramp test inflations was compared with phrenic activity in the absence of volume feedback. The relation between volume and phrenic inhibition was determined for two different flow rates. Inhibition of phrenic activity began when volume above functional residual capacity (FRC) exceeded a time-dependent threshold and, beyond this threshold, continued in a graded fashion. The threshold for the first detectable inhibition declined as inspiratory time progressed both in intact animals and in pneumotaxic-lesioned animals when phrenic activity reached an apneustic plateau. Inspiratory inhibition was associated with similar lung volume above FRC regardless of whether volume resulted from high or low flow rates, suggesting that the processing of the receptor feedback information offsets flow effects on receptor firing.

Animals