Literature DB >> 33029786

Evidence for multiple bulbar and higher brain circuits processing sensory inputs from the respiratory system in humans.

Michael J Farrell1,2, Tara G Bautista3, Emma Liang2, Damian Azzollini2, Gary F Egan2,4,5, Stuart B Mazzone3.   

Abstract

KEY POINTS: Unpleasant respiratory sensations contribute to morbidity in pulmonary disease. In rodents, these sensations are processed by nodose and jugular vagal sensory neurons, two distinct cell populations that differentially project to the airways and brainstem. Whether similar differences exist in bronchopulmonary sensory pathways in humans is unknown. We use functional magnetic resonance imaging during inhalation of capsaicin and ATP, showing that airway nodose pathways project centrally to the nucleus of the solitary tract, whereas jugular pathways input into the trigeminal brainstem nuclei. We also show differences between the efficacy of nodose and jugular stimuli to evoke cough and activity in motor control regions of the brain. Our data suggest that humans have two distinct vagal sensory neural systems governing airway sensations and this may have implications for the development of new antitussive therapies. ABSTRACT: In rodents, nodose vagal sensory neurons preferentially innervate the distal airways and terminate centrally in the nucleus of the solitary tract. By contrast, jugular vagal sensory neurons preferentially innervate the proximal airways and terminate in the paratrigeminal nucleus in the dorsolateral medulla. This differential organization suggests distinct roles for nodose and jugular pathways in respiratory sensory processing. However, it is unknown whether bronchopulmonary afferent pathways are similarly arranged in humans. We set out to investigate this using high resolution brainstem and whole brain functional magnetic resonance imaging in healthy human participants when they were inhaling stimuli known to differentially activate nodose and jugular pathways. Inhalation of capsaicin or ATP evoked respiratory sensations described as an urge-to-cough, although ATP was significantly less effective compared to capsaicin at evoking the motor act of coughing. The nodose and jugular neuron stimulant capsaicin increased blood oxygen level-dependent (BOLD) signals extending across the dorsomedial and dorsolateral medulla, encompassing regions containing both the nucleus of the solitary tract and the paratrigeminal nucleus. By contrast, at perceptually comparable stimulus intensities, the nodose-selective stimulant ATP resulted in BOLD signal intensity changes that were confined to the area of the nucleus of the solitary tract. During whole brain imaging, capsaicin demonstrated a wider distributed network of activity compared to ATP, with significantly increased activity in regions involved with motor control functions. These data suggest that functional and neuroanatomical differences in bronchopulmonary nodose and jugular sensory pathway organization are conserved in humans and also that this has implications for understanding the neurobiological mechanisms underpinning cough.
© 2020 The Authors. The Journal of Physiology © 2020 The Physiological Society.

Entities:  

Keywords:  brain imaging; brainstem; cough; purinergic; vagal sensory

Year:  2020        PMID: 33029786     DOI: 10.1113/JP280220

Source DB:  PubMed          Journal:  J Physiol        ISSN: 0022-3751            Impact factor:   5.182


  5 in total

1.  Descending Modulation of Laryngeal Vagal Sensory Processing in the Brainstem Orchestrated by the Submedius Thalamic Nucleus.

Authors:  Stuart B Mazzone; Tara G Bautista; Anthony J M Verberne; Matthew W Trewella; Michael J Farrell; Alice E McGovern
Journal:  J Neurosci       Date:  2020-10-28       Impact factor: 6.167

2.  Vague no more: Evidence of divergent central pathways of sensory nerves innervating the human airways.

Authors:  Thomas E Taylor-Clark; Marian Kollarik
Journal:  J Physiol       Date:  2020-10-08       Impact factor: 5.182

Review 3.  Cough hypersensitivity and chronic cough.

Authors:  Kian Fan Chung; Lorcan McGarvey; Woo-Jung Song; Anne B Chang; Kefang Lai; Brendan J Canning; Surinder S Birring; Jaclyn A Smith; Stuart B Mazzone
Journal:  Nat Rev Dis Primers       Date:  2022-06-30       Impact factor: 65.038

4.  Mapping of the Sensory Innervation of the Mouse Lung by Specific Vagal and Dorsal Root Ganglion Neuronal Subsets.

Authors:  Seol-Hee Kim; Mayur J Patil; Stephen H Hadley; Parmvir K Bahia; Shane G Butler; Meghana Madaram; Thomas E Taylor-Clark
Journal:  eNeuro       Date:  2022-04-13

Review 5.  Research Opportunities in Autonomic Neural Mechanisms of Cardiopulmonary Regulation: A Report From the National Heart, Lung, and Blood Institute and the National Institutes of Health Office of the Director Workshop.

Authors:  Reena Mehra; Olga A Tjurmina; Olujimi A Ajijola; Rishi Arora; Donald C Bolser; Mark W Chapleau; Peng-Sheng Chen; Colleen E Clancy; Brian P Delisle; Michael R Gold; Jeffrey J Goldberger; David S Goldstein; Beth A Habecker; M Louis Handoko; Robert Harvey; James P Hummel; Thomas Hund; Christian Meyer; Susan Redline; Crystal M Ripplinger; Marc A Simon; Virend K Somers; Stavros Stavrakis; Thomas Taylor-Clark; Bradley Joel Undem; Richard L Verrier; Irving H Zucker; George Sopko; Kalyanam Shivkumar
Journal:  JACC Basic Transl Sci       Date:  2022-01-26
  5 in total

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