Intracranial baroreflex is attenuated in an ovine model of renovascular hypertension.


Journal

Scientific reports
ISSN: 2045-2322
Titre abrégé: Sci Rep
Pays: England
ID NLM: 101563288

Informations de publication

Date de publication:
12 03 2021
Historique:
received: 18 12 2020
accepted: 26 02 2021
entrez: 13 3 2021
pubmed: 14 3 2021
medline: 15 12 2021
Statut: epublish

Résumé

We have previously shown that elevations in intracranial pressure (ICP) within physiological ranges in normotensive animals increase arterial pressure; termed the intracranial baroreflex. Hypertension is associated with alterations in reflexes which maintain arterial pressure however, whether the intracranial baroreflex is altered is not known. Hence, in the present study, we tested the hypothesis that in hypertension, physiological increases in ICP would not be accompanied with an increase in arterial pressure. Renovascular hypertension was associated with no change in heart rate, renal blood flow or ICP levels compared to the normotensive group. ICV infusion of saline produced a ramped increase in ICP of 20 ± 1 mmHg. This was accompanied by an increase in arterial pressure (16 ± 2 mmHg) and a significant decrease in renal vascular conductance. ICV infusion of saline in the hypertensive group also increased ICP (19 ± 2 mmHg). However, the increase in arterial pressure was significantly attenuated in the hypertensive group (5 ± 2 mmHg). Ganglionic blockade abolished the increase in arterial pressure in both groups to increased ICP. Our data indicates that physiological increases in ICP lead to increases in arterial pressure in normotensive animals but this is severely attenuated in renovascular hypertension.

Identifiants

pubmed: 33712655
doi: 10.1038/s41598-021-85278-3
pii: 10.1038/s41598-021-85278-3
pmc: PMC7955074
doi:

Types de publication

Journal Article Research Support, Non-U.S. Gov't

Langues

eng

Sous-ensembles de citation

IM

Pagination

5816

Références

Cardiovasc Psychiatry Neurol. 2012;2012:367516
pubmed: 23243502
Hypertension. 1988 Jun;11(6 Pt 2):608-12
pubmed: 3391673
Hypertension. 1990 Oct;16(4):441-51
pubmed: 2210812
Front Physiol. 2018 Feb 08;9:11
pubmed: 29472865
Clin J Am Soc Nephrol. 2011 Nov;6(11):2620-7
pubmed: 21940841
Am J Physiol Regul Integr Comp Physiol. 2006 Mar;290(3):R701-8
pubmed: 16239371
Hypertension. 2008 Apr;51(4):878-83
pubmed: 18268138
Nutr Metab Cardiovasc Dis. 2009 Sep;19(7):469-75
pubmed: 19157817
Circulation. 1996 May 1;93(9):1667-76
pubmed: 8653872
Hypertension. 2018 Jun;71(6):1108-1116
pubmed: 29686011
Hypertension. 1998 Mar;31(3):780-6
pubmed: 9495261
Am J Physiol. 1980 Jun;238(6):H770-5
pubmed: 7386637
Hypertension. 2004 Feb;43(2):169-75
pubmed: 14610101
J Hypertens. 2020 Dec 09;:
pubmed: 33306520
Circulation. 1998 May 26;97(20):2037-42
pubmed: 9610534
Hypertension. 2020 Nov;76(5):1451-1460
pubmed: 32981362
Am J Physiol Regul Integr Comp Physiol. 2014 Aug 1;307(3):R271-80
pubmed: 24848361
Brain Res. 1992 Jul 3;584(1-2):272-86
pubmed: 1381266
Circ Res. 1963 Feb;12:190-202
pubmed: 14027720
Circ Res. 2016 Dec 9;119(12):e140-e151
pubmed: 27672161
Hypertens Res. 2008 Apr;31(4):673-8
pubmed: 18633179
Acta Physiol (Oxf). 2017 Jan;219(1):274-287
pubmed: 27172364
Exp Physiol. 2010 Jan;95(1):34-40
pubmed: 19617268
Int J Cardiol. 2014 Dec 20;177(3):1020-5
pubmed: 25449517
Lancet. 1996 Apr 27;347(9009):1141-5
pubmed: 8609748
Hypertension. 1998 Jan;31(1):68-72
pubmed: 9449393
Nat Commun. 2020 Jan 9;11(1):131
pubmed: 31919423
Nat Commun. 2016 Jan 08;7:10002
pubmed: 26743691
Hypertension. 1986 Feb;8(2):109-16
pubmed: 3002979
Am J Physiol Regul Integr Comp Physiol. 2018 Nov 1;315(5):R1049-R1053
pubmed: 30207755
Acta Physiol Scand. 1981 May;112(1):27-32
pubmed: 7282404
J Cereb Blood Flow Metab. 2008 Feb;28(2):412-9
pubmed: 17622253
Br J Pharmacol. 1997 Mar;120(6):1179-85
pubmed: 9134233
Cardiovasc Res. 1982 Mar;16(3):163-72
pubmed: 6805956
Exp Physiol. 2009 Jan;94(1):11-7
pubmed: 18820004
Neurocrit Care. 2008;9(1):139-52
pubmed: 18058257
Clin Exp Pharmacol Physiol. 2001 Dec;28(12):986-9
pubmed: 11903299

Auteurs

Sydney Vari (S)

Cardiovascular Autonomic Research Cluster, Department of Physiology, The University of Auckland, Auckland, 1040, New Zealand.

Sarah-Jane Guild (SJ)

Cardiovascular Autonomic Research Cluster, Department of Physiology, The University of Auckland, Auckland, 1040, New Zealand.
Auckland Bioengineering Institute, Auckland, New Zealand.

Bindu George (B)

Cardiovascular Autonomic Research Cluster, Department of Physiology, The University of Auckland, Auckland, 1040, New Zealand.

Rohit Ramchandra (R)

Cardiovascular Autonomic Research Cluster, Department of Physiology, The University of Auckland, Auckland, 1040, New Zealand. r.ramchandra@auckland.ac.nz.

Articles similaires

Robotic Surgical Procedures Animals Humans Telemedicine Models, Animal

Odour generalisation and detection dog training.

Lyn Caldicott, Thomas W Pike, Helen E Zulch et al.
1.00
Animals Odorants Dogs Generalization, Psychological Smell
Animals TOR Serine-Threonine Kinases Colorectal Neoplasms Colitis Mice
Animals Tail Swine Behavior, Animal Animal Husbandry

Classifications MeSH