Peripheral chemoreceptor deactivation attenuates the sympathetic response to glucose ingestion.
Administration, Oral
Adult
Arterial Pressure
Blood Glucose
/ metabolism
Cardiac Output
Cardiovascular System
/ innervation
Chemoreceptor Cells
/ metabolism
Female
Glucose
/ administration & dosage
Heart Rate
Hemodynamics
Humans
Hyperoxia
/ blood
Male
Muscle Contraction
Muscle, Skeletal
/ innervation
Sympathetic Nervous System
/ metabolism
Time Factors
Young Adult
apport alimentaire
autonomic nervous system
chimiorécepteurs périphériques
dietary intake
glucose ingestion
ingestion de glucose
peripheral chemoreceptors
régulation sympathique
sympathetic regulation
système nerveux autonome
Journal
Applied physiology, nutrition, and metabolism = Physiologie appliquee, nutrition et metabolisme
ISSN: 1715-5320
Titre abrégé: Appl Physiol Nutr Metab
Pays: Canada
ID NLM: 101264333
Informations de publication
Date de publication:
Apr 2019
Apr 2019
Historique:
pubmed:
19
9
2018
medline:
31
7
2019
entrez:
19
9
2018
Statut:
ppublish
Résumé
Acute increases in blood glucose are associated with heightened muscle sympathetic nerve activity (MSNA). Animal studies have implicated a role for peripheral chemoreceptors in this response, but this has not been examined in humans. Heart rate, cardiac output (CO), mean arterial pressure, total peripheral conductance, and blood glucose concentrations were collected in 11 participants. MSNA was recorded in a subset of 5 participants via microneurography. Participants came to the lab on 2 separate days (i.e., 1 control and 1 experimental day). On both days, participants ingested 75 g of glucose following baseline measurements. On the experimental day, participants breathed 100% oxygen for 3 min at baseline and again at 20, 40, and 60 min after glucose ingestion to deactivate peripheral chemoreceptors. Supplemental oxygen was not given to participants on the control day. There was a main effect of time on blood glucose (P < 0.001), heart rate (P < 0.001), CO (P < 0.001), sympathetic burst frequency (P < 0.001), burst incidence (P = 0.01), and total MSNA (P = 0.001) for both days. Blood glucose concentrations and burst frequency were positively correlated on the control day (r = 0.42; P = 0.03) and experimental day (r = 0.62; P = 0.003). There was a time × condition interaction (i.e., normoxia vs. hyperoxia) on burst frequency, in which hyperoxia significantly blunted burst frequency at 20 and 60 min after glucose ingestion only. Given that hyperoxia blunted burst frequency only during hyperglycemia, our results suggest that the peripheral chemoreceptors are involved in activating MSNA after glucose ingestion.
Identifiants
pubmed: 30226994
doi: 10.1139/apnm-2018-0062
doi:
Substances chimiques
Blood Glucose
0
Glucose
IY9XDZ35W2
Types de publication
Journal Article
Langues
eng