The long term objective is to define the synaptic relationships among brain stem respiratory neurons and their contribution to the generation and coordination of discharge patterns which underlie the rhythmic respiratory drive to motor neurons. Planned experiments address three hypotheses. 1. Redundant, ccomplementary synaptic interactions among spatially distributed neurons with demonstrable functional links to respiratory motor and premotor neurons contribute to both the development and termination of each phase of breathing. 2. The strength of synaptic coupling among some classes of co-active respiratory neurons varies with the gating actions of other brain stem neurons during each phase of breathing. These modulatory processes help to regulate phase durations. 3. Neurons located in one region of the brain stem capable of independent rhythmogenesis are linked by multiple coordinating mechanisms to cells in each other such region. Experiments will be performed with anesthetized or decerebrate, paralyzed, bilaterally vagotomized, ventilated cats. Three independently controlled arrays of extracellular tungsten and multi-barrel pipette electrodes (total=12) will be used to monitor simultaneously respiratory neurons in the medulla (including the dorsal and ventral respiratry groups) and/or pons (including the rostral respiratory group or """"""""pneumotaxic area""""""""). Microiontophoresis of amino acids, peptides, or transmitter antagonists will be used to enhance or suppress the activities of selected cells. Neurons with spinal or vagal projections will be identified using antidromic stimulation methods. Functional interactions will be detected and evaluated using cross-correlational and spike triggered averaging methods, a """"""""gravitational clustering"""""""" method, pharmacological manipulations of putative driver and modulatory neurons, and network simulations. The results of these experiments will provide insights into the central neural mechanisms underlying the breathing rhythm and the remarkable ability of the system to tolerate insults of various origins.

Agency
National Institute of Health (NIH)
Institute
National Institute of Neurological Disorders and Stroke (NINDS)
Type
Research Project (R01)
Project #
2R01NS019814-04
Application #
3399898
Study Section
Neurology B Subcommittee 1 (NEUB)
Project Start
1984-04-01
Project End
1990-03-31
Budget Start
1987-04-01
Budget End
1988-03-31
Support Year
4
Fiscal Year
1987
Total Cost
Indirect Cost
Name
University of South Florida
Department
Type
Schools of Medicine
DUNS #
City
Tampa
State
FL
Country
United States
Zip Code
33612
Lindsey, Bruce G; Nuding, Sarah C; Segers, Lauren S et al. (2018) Carotid Bodies and the Integrated Cardiorespiratory Response to Hypoxia. Physiology (Bethesda) 33:281-297
Nuding, Sarah C; Segers, Lauren S; Iceman, Kimberly E et al. (2015) Functional connectivity in raphé-pontomedullary circuits supports active suppression of breathing during hypocapnic apnea. J Neurophysiol 114:2162-86
Segers, L S; Nuding, S C; Ott, M M et al. (2015) Peripheral chemoreceptors tune inspiratory drive via tonic expiratory neuron hubs in the medullary ventral respiratory column network. J Neurophysiol 113:352-68
O'Connor, Russell; Segers, Lauren S; Morris, Kendall F et al. (2012) A joint computational respiratory neural network-biomechanical model for breathing and airway defensive behaviors. Front Physiol 3:264
Morris, K F; Nuding, S C; Segers, L S et al. (2010) Respiratory and Mayer wave-related discharge patterns of raphe and pontine neurons change with vagotomy. J Appl Physiol 109:189-202
Dick, Thomas E; Baekey, David M; Paton, Julian F R et al. (2009) Cardio-respiratory coupling depends on the pons. Respir Physiol Neurobiol 168:76-85
Dick, Thomas E; Shannon, Roger; Lindsey, Bruce G et al. (2008) Pontine respiratory-modulated activity before and after vagotomy in decerebrate cats. J Physiol 586:4265-82
Lindsey, Bruce G; Gerstein, George L (2006) Two enhancements of the gravity algorithm for multiple spike train analysis. J Neurosci Methods 150:116-27
Dick, Thomas E; Shannon, Roger; Lindsey, Bruce G et al. (2005) Arterial pulse modulated activity is expressed in respiratory neural output. J Appl Physiol 99:691-8
Dick, Thomas E; Morris, Kendall F (2004) Quantitative analysis of cardiovascular modulation in respiratory neural activity. J Physiol 556:959-70

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