|
|
||||||||
Central Research Department, DuPont Experimental Station E-328/B31, Wilmington, Delaware 19880-0328; and Department of Physiology, School of Medical Sciences, University of Bristol, Bristol BS8 1TD, United Kingdom
Rybak, Ilya A., Julian F. R. Paton, and James S. Schwaber. Modeling neural mechanisms for genesis of respiratory rhythm and pattern. II. Network models of the central respiratory pattern generator. J. Neurophysiol. 77: 2007-2026, 1997. The present paper describes several models of the central respiratory pattern generator (CRPG) developed employing experimental data and current hypotheses for respiratory rhythmogenesis. Each CRPG model includes a network of respiratory neuron types (e.g., early inspiratory; ramp inspiratory; late inspiratory; decrementing expiratory; postinspiratory; stage II expiratory; stage II constant firing expiratory; preinspiratory) and simplified models of lung and pulmonary stretch receptors (PSR), which provide feedback to the respiratory network. The used models of single respiratory neurons were developed in the Hodgkin-Huxley style as described in the previous paper. The mechanism for termination of inspiration (the inspiratory off-switch) in all models operates via late-I neuron, which is considered to be the inspiratory off-switching neuron. Several two- and three-phase CRPG models have been developed using different accepted hypotheses of the mechanism for termination of expiration. The key elements in the two-phase models are the early-I and dec-E neurons. The expiratory off-switch mechanism in these models is based on the mutual inhibitory connections between early-I and dec-E and adaptive properties of the dec-E neuron. The difference between the two-phase models concerns the mechanism for ramp firing patterns of E2 neurons resulting either from the intrinsic neuronal properties of the E2 neuron or from disinhibition from the adapting dec-E neuron. The key element of the three-phase models is the pre-I neuron, which acts as the expiratory off-switching neuron. The three-phase models differ by the mechanisms used for termination of expiration and for the ramp firing patterns of E2 neurons. Additional CRPG models were developed employing a dual switching neuron that generates two bursts per respiratory cycle to terminate both inspiration and expiration. Although distinctly different each model generates a stable respiratory rhythm and shows physiologically plausible firing patterns of respiratory neurons with and without PSR feedback. Using our models, we analyze the roles of different respiratory neuron types and their interconnections for the respiratory rhythm and pattern generation. We also investigate the possible roles of intrinsic biophysical properties of different respiratory neurons in controlling the duration of respiratory phases and timing of switching between them. We show that intrinsic membrane properties of respiratory neurons are integrated with network properties of the CRPG at three hierarchical levels: at the cellular level to provide the specific firing patterns of respiratory neurons (e.g., ramp firing patterns); at the network level to provide switching between the respiratory phases; and at the systems level to control the duration of inspiration and expiration under different conditions (e.g., lack of PSR feedback).
This article has been cited by other articles:
![]() |
K. B. Hengen, M. Behan, H. V. Carey, M. V. Jones, and S. M. Johnson Hibernation induces pentobarbital insensitivity in medulla but not cortex Am J Physiol Regulatory Integrative Comp Physiol, October 1, 2009; 297(4): R1028 - R1036. [Abstract] [Full Text] [PDF] |
||||
![]() |
M. Morschel and M. Dutschmann Pontine respiratory activity involved in inspiratory/expiratory phase transition Phil Trans R Soc B, September 12, 2009; 364(1529): 2517 - 2526. [Abstract] [Full Text] [PDF] |
||||
![]() |
J. C. Smith, A. P. L. Abdala, I. A. Rybak, and J. F. R. Paton Structural and functional architecture of respiratory networks in the mammalian brainstem Phil Trans R Soc B, September 12, 2009; 364(1529): 2577 - 2587. [Abstract] [Full Text] [PDF] |
||||
![]() |
I. A. Rybak, R. O'Connor, A. Ross, N. A. Shevtsova, S. C. Nuding, L. S. Segers, R. Shannon, T. E. Dick, W. L. Dunin-Barkowski, J. M. Orem, et al. Reconfiguration of the Pontomedullary Respiratory Network: A Computational Modeling Study With Coordinated In Vivo Experiments J Neurophysiol, October 1, 2008; 100(4): 1770 - 1799. [Abstract] [Full Text] [PDF] |
||||
![]() |
J. C. Smith, A. P. L. Abdala, H. Koizumi, I. A. Rybak, and J. F. R. Paton Spatial and Functional Architecture of the Mammalian Brain Stem Respiratory Network: A Hierarchy of Three Oscillatory Mechanisms J Neurophysiol, December 1, 2007; 98(6): 3370 - 3387. [Abstract] [Full Text] [PDF] |
||||
![]() |
S. M. Johnson, L. M. Wiegel, and D. J. Majewski Are pacemaker properties required for respiratory rhythm generation in adult turtle brain stems in vitro? Am J Physiol Regulatory Integrative Comp Physiol, August 1, 2007; 293(2): R901 - R910. [Abstract] [Full Text] [PDF] |
||||
![]() |
I. A. Rybak, N. A. Shevtsova, M. Lafreniere-Roula, and D. A. McCrea Modelling spinal circuitry involved in locomotor pattern generation: insights from deletions during fictive locomotion J. Physiol., December 1, 2006; 577(2): 617 - 639. [Abstract] [Full Text] [PDF] |
||||
![]() |
J. A. N. Fisher, V. A. Marchenko, A. G. Yodh, and R. F. Rogers Spatiotemporal Activity Patterns During Respiratory Rhythmogenesis in the Rat Ventrolateral Medulla J Neurophysiol, March 1, 2006; 95(3): 1982 - 1991. [Abstract] [Full Text] [PDF] |
||||
![]() |
W. A. Janczewski and J. L. Feldman Distinct rhythm generators for inspiration and expiration in the juvenile rat J. Physiol., January 15, 2006; 570(2): 407 - 420. [Abstract] [Full Text] [PDF] |
||||
![]() |
M. Y. Covarrubias, R. L. Khan, R. Vadigepalli, J. B. Hoek, and J. S. Schwaber Chronic alcohol exposure alters transcription broadly in a key integrative brain nucleus for homeostasis: the nucleus tractus solitarius Physiol Genomics, December 14, 2005; 24(1): 45 - 58. [Abstract] [Full Text] [PDF] |
||||
![]() |
F. P. Elsen and J.-M. Ramirez Postnatal Development Differentially Affects Voltage-Activated Calcium Currents in Respiratory Rhythmic Versus Nonrhythmic Neurons of the Pre-Botzinger Complex J Neurophysiol, August 1, 2005; 94(2): 1423 - 1431. [Abstract] [Full Text] [PDF] |
||||
![]() |
M. Krolo, V. Tonkovic-Capin, A. G. Stucke, E. A. Stuth, F. A. Hopp, C. Dean, and E. J. Zuperku Subtype Composition and Responses of Respiratory Neurons in the Pre-Botzinger Region to Pulmonary Afferent Inputs in Dogs J Neurophysiol, May 1, 2005; 93(5): 2674 - 2687. [Abstract] [Full Text] [PDF] |
||||
![]() |
J. T. Potts, I. A. Rybak, and J. F. R. Paton Respiratory Rhythm Entrainment by Somatic Afferent Stimulation J. Neurosci., February 23, 2005; 25(8): 1965 - 1978. [Abstract] [Full Text] [PDF] |
||||
![]() |
J. Duffin Functional organization of respiratory neurones: a brief review of current questions and speculations Exp Physiol, September 1, 2004; 89(5): 517 - 529. [Abstract] [Full Text] [PDF] |
||||
![]() |
K. Ezure, I. Tanaka, and M. Kondo Glycine Is Used as a Transmitter by Decrementing Expiratory Neurons of the Ventrolateral Medulla in the Rat J. Neurosci., October 1, 2003; 23(26): 8941 - 8948. [Abstract] [Full Text] [PDF] |
||||
![]() |
A Monnier, G F Alheid, and D R McCrimmon Defining ventral medullary respiratory compartments with a glutamate receptor agonist in the rat J. Physiol., May 1, 2003; 548(3): 859 - 874. [Abstract] [Full Text] [PDF] |
||||
![]() |
D. L. Young, F. L. Eldridge, and C.-S. Poon Integration-differentiation and gating of carotid afferent traffic that shapes the respiratory pattern J Appl Physiol, March 1, 2003; 94(3): 1213 - 1229. [Abstract] [Full Text] [PDF] |
||||
![]() |
S. M Johnson, J. E R Wilkerson, M. R Wenninger, D. R Henderson, and G. S Mitchell Role of synaptic inhibition in turtle respiratory rhythm generation J. Physiol., October 1, 2002; 544(1): 253 - 265. [Abstract] [Full Text] [PDF] |
||||
![]() |
M Dutschmann and J F R Paton Glycinergic inhibition is essential for co-ordinating cranial and spinal respiratory motor outputs in the neonatal rat J. Physiol., September 1, 2002; 543(2): 643 - 653. [Abstract] [Full Text] [PDF] |
||||
![]() |
D. Mutolo, F. Bongianni, M. Carfi, and T. Pantaleo Respiratory changes induced by kainic acid lesions in rostral ventral respiratory group of rabbits Am J Physiol Regulatory Integrative Comp Physiol, July 1, 2002; 283(1): R227 - R242. [Abstract] [Full Text] [PDF] |
||||
![]() |
P. G. Guyenet, C. P. Sevigny, M. C. Weston, and R. L. Stornetta Neurokinin-1 Receptor-Expressing Cells of the Ventral Respiratory Group Are Functionally Heterogeneous and Predominantly Glutamatergic J. Neurosci., May 1, 2002; 22(9): 3806 - 3816. [Abstract] [Full Text] [PDF] |
||||
![]() |
R Shannon, D M Baekey, K F Morris, Z Li, and B G Lindsey Functional connectivity among ventrolateral medullary respiratory neurones and responses during fictive cough in the cat J. Physiol., May 15, 2000; 525(1): 207 - 224. [Abstract] [Full Text] [PDF] |
||||
![]() |
P. E. Latham, B. J. Richmond, P. G. Nelson, and S. Nirenberg Intrinsic Dynamics in Neuronal Networks. I. Theory J Neurophysiol, February 1, 2000; 83(2): 808 - 827. [Abstract] [Full Text] [PDF] |
||||
![]() |
I. C. Gibson and A. J. Berger Effect of Ethanol Upon Respiratory-Related Hypoglossal Nerve Output of Neonatal Rat Brain Stem Slices J Neurophysiol, January 1, 2000; 83(1): 333 - 342. [Abstract] [Full Text] [PDF] |
||||
![]() |
R. J. Butera Jr., J. Rinzel, and J. C. Smith Models of Respiratory Rhythm Generation in the Pre-Botzinger Complex. I. Bursting Pacemaker Neurons J Neurophysiol, July 1, 1999; 82(1): 382 - 397. [Abstract] [Full Text] [PDF] |
||||
![]() |
R. J. Butera Jr., J. Rinzel, and J. C. Smith Models of Respiratory Rhythm Generation in the Pre-Botzinger Complex. II. Populations of Coupled Pacemaker Neurons J Neurophysiol, July 1, 1999; 82(1): 398 - 415. [Abstract] [Full Text] [PDF] |
||||
![]() |
E. Herlenius and H. Lagercrantz Adenosinergic modulation of respiratory neurones in the neonatal rat brainstem in vitro J. Physiol., July 1, 1999; 518(1): 159 - 172. [Abstract] [Full Text] [PDF] |
||||
![]() |
G. Hilaire and B. Duron Maturation of the Mammalian Respiratory System Physiol Rev, April 1, 1999; 79(2): 325 - 360. [Abstract] [Full Text] [PDF] |
||||
![]() |
E. N. Bruce Invited Editorial on "Irregularities and power law distributions in the breathing pattern in preterm and term infants" J Appl Physiol, September 1, 1998; 85(3): 787 - 788. [Full Text] [PDF] |
||||
![]() |
O Pierrefiche, S W Schwarzacher, A M Bischoff, and D W Richter Blockade of synaptic inhibition within the pre-Botzinger complex in the cat suppresses respiratory rhythm generation in vivo J. Physiol., May 15, 1998; 509(1): 245 - 254. [Abstract] [Full Text] [PDF] |
||||
![]() |
I. A. Rybak, J. F. R. Paton, and J. S. Schwaber Modeling Neural Mechanisms for Genesis of Respiratory Rhythm and Pattern. III. Comparison of Model Performances During Afferent Nerve Stimulation J Neurophysiol, April 1, 1997; 77(4): 2027 - 2039. [Abstract] [Full Text] [PDF] |
||||
| HOME | HELP | FEEDBACK | SUBSCRIPTIONS | ARCHIVE | SEARCH | TABLE OF CONTENTS |
| Visit Other APS Journals Online |