Literature DB >> 30413906

The renin-angiotensin system in cardiovascular autonomic control: recent developments and clinical implications.

Amanda J Miller1, Amy C Arnold2.   

Abstract

Complex and bidirectional interactions between the renin-angiotensin system (RAS) and autonomic nervous system have been well established for cardiovascular regulation under both physiological and pathophysiological conditions. Most research to date has focused on deleterious effects of components of the vasoconstrictor arm of the RAS on cardiovascular autonomic control, such as renin, angiotensin II, and aldosterone. The recent discovery of prorenin and the prorenin receptor have further increased our understanding of RAS interactions in autonomic brain regions. Therapies targeting these RAS components, such as angiotensin-converting enzyme (ACE) inhibitors and angiotensin receptor blockers, are commonly used for treatment of hypertension and cardiovascular diseases, with blood pressure-lowering effects attributed in part to sympathetic inhibition and parasympathetic facilitation. In addition, a vasodilatory arm of the RAS has emerged that includes angiotensin-(1-7), ACE2, and alamandine, and promotes beneficial effects on blood pressure in part by reducing sympathetic activity and improving arterial baroreceptor reflex function in animal models. The role of the vasodilatory arm of the RAS in cardiovascular autonomic regulation in clinical populations, however, has yet to be determined. This review will summarize recent developments in autonomic mechanisms involved in the effects of the RAS on cardiovascular regulation, with a focus on newly discovered pathways and therapeutic targets for this hormone system.

Entities:  

Keywords:  Autonomic nervous system; Baroreflex; Blood pressure; Renin–angiotensin system

Year:  2018        PMID: 30413906      PMCID: PMC6461499          DOI: 10.1007/s10286-018-0572-5

Source DB:  PubMed          Journal:  Clin Auton Res        ISSN: 0959-9851            Impact factor:   4.435


  107 in total

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Authors:  Julie L Lavoie; Curt D Sigmund
Journal:  Endocrinology       Date:  2003-06       Impact factor: 4.736

2.  Angiotensin II infusion model of hypertension: is there an important sympathetic component?

Authors:  Thomas E Lohmeier
Journal:  Hypertension       Date:  2012-01-23       Impact factor: 10.190

3.  Aliskiren reduces sympathetic nerve activity and blood pressure in chronic kidney disease patients.

Authors:  Laima Siddiqi; P Liam Oey; Peter J Blankestijn
Journal:  Nephrol Dial Transplant       Date:  2011-04-05       Impact factor: 5.992

Review 4.  Renin release: sites, mechanisms, and control.

Authors:  Armin Kurtz
Journal:  Annu Rev Physiol       Date:  2011       Impact factor: 19.318

Review 5.  Brain renin-angiotensin system in the pathophysiology of cardiovascular diseases.

Authors:  Gianna Huber; Franziska Schuster; Walter Raasch
Journal:  Pharmacol Res       Date:  2017-07-05       Impact factor: 7.658

6.  Angiotensin-(1-7) blockade attenuates captopril- or hydralazine-induced cardiovascular protection in spontaneously hypertensive rats treated with NG-nitro-L-arginine methyl ester.

Authors:  Ibrahim F Benter; Mariam H M Yousif; Fatemah M Al-Saleh; Raj Raghupathy; Mark C Chappell; Debra I Diz
Journal:  J Cardiovasc Pharmacol       Date:  2011-05       Impact factor: 3.105

7.  LCZ696, Angiotensin II Receptor-Neprilysin Inhibitor, Ameliorates High-Salt-Induced Hypertension and Cardiovascular Injury More Than Valsartan Alone.

Authors:  Hiroaki Kusaka; Daisuke Sueta; Nobutaka Koibuchi; Yu Hasegawa; Takashi Nakagawa; BoWen Lin; Hisao Ogawa; Shokei Kim-Mitsuyama
Journal:  Am J Hypertens       Date:  2015-03-10       Impact factor: 2.689

8.  Discovery and characterization of alamandine: a novel component of the renin-angiotensin system.

Authors:  Roberto Queiroga Lautner; Daniel C Villela; Rodrigo A Fraga-Silva; Neiva Silva; Thiago Verano-Braga; Fabiana Costa-Fraga; Joachim Jankowski; Vera Jankowski; Frederico Sousa; Andreia Alzamora; Everton Soares; Claudiane Barbosa; Frank Kjeldsen; Aline Oliveira; Janaina Braga; Silvia Savergnini; Gisele Maia; Antonio Bastos Peluso; Danielle Passos-Silva; Anderson Ferreira; Fabiana Alves; Almir Martins; Mohan Raizada; Renata Paula; Daisy Motta-Santos; Friederike Klempin; Friederike Kemplin; Adriano Pimenta; Natalia Alenina; Ruben Sinisterra; Michael Bader; Maria Jose Campagnole-Santos; Robson A S Santos
Journal:  Circ Res       Date:  2013-02-27       Impact factor: 17.367

9.  Modulation of cardiac autonomic control in humans by angiotensin II.

Authors:  J N Townend; M al-Ani; J N West; W A Littler; J H Coote
Journal:  Hypertension       Date:  1995-06       Impact factor: 10.190

10.  Neuron-specific (pro)renin receptor knockout prevents the development of salt-sensitive hypertension.

Authors:  Wencheng Li; Hua Peng; Eamonn P Mehaffey; Christie D Kimball; Justin L Grobe; Jeanette M G van Gool; Michelle N Sullivan; Scott Earley; A H Jan Danser; Atsuhiro Ichihara; Yumei Feng
Journal:  Hypertension       Date:  2013-11-18       Impact factor: 10.190

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  49 in total

1.  AT2 and MAS (but not AT1) angiotensinergic receptors in the medial amygdaloid nucleus modulate the baroreflex activity in rats.

Authors:  Willian Costa-Ferreira; Lucas Gomes-de-Souza; Carlos C Crestani
Journal:  Pflugers Arch       Date:  2019-08-08       Impact factor: 3.657

2.  Do astronauts get postural tachycardia syndrome? And other updates on recent autonomic research.

Authors:  Mitchell G Miglis; Srikanth Muppidi
Journal:  Clin Auton Res       Date:  2019-05-14       Impact factor: 4.435

Review 3.  The renin-angiotensin-aldosterone system: a crossroad from arterial hypertension to heart failure.

Authors:  Nicola Riccardo Pugliese; Stefano Masi; Stefano Taddei
Journal:  Heart Fail Rev       Date:  2020-01       Impact factor: 4.214

4.  Brain angiotensin type-1 and type-2 receptors: cellular locations under normal and hypertensive conditions.

Authors:  Colin Sumners; Amy Alleyne; Vermalí Rodríguez; David J Pioquinto; Jacob A Ludin; Shormista Kar; Zachary Winder; Yuma Ortiz; Meng Liu; Eric G Krause; Annette D de Kloet
Journal:  Hypertens Res       Date:  2019-12-18       Impact factor: 3.872

5.  Angiotensin-(1-7): Translational Avenues in Cardiovascular Control.

Authors:  Daniela Medina; Amy C Arnold
Journal:  Am J Hypertens       Date:  2019-11-15       Impact factor: 2.689

6.  Identifying roles for peptidergic signaling in mice.

Authors:  Kathryn G Powers; Xin-Ming Ma; Betty A Eipper; Richard E Mains
Journal:  Proc Natl Acad Sci U S A       Date:  2019-08-27       Impact factor: 11.205

Review 7.  Severe Acute Respiratory Syndrome Coronavirus 2, COVID-19, and the Renin-Angiotensin System: Pressing Needs and Best Research Practices.

Authors:  Matthew A Sparks; Andrew M South; Andrew D Badley; Carissa M Baker-Smith; Daniel Batlle; Biykem Bozkurt; Roberto Cattaneo; Steven D Crowley; Louis J Dell'Italia; Andria L Ford; Kathy Griendling; Susan B Gurley; Scott E Kasner; Joseph A Murray; Karl A Nath; Marc A Pfeffer; Janani Rangaswami; W Robert Taylor; Vesna D Garovic
Journal:  Hypertension       Date:  2020-09-28       Impact factor: 10.190

Review 8.  DNA Methylation of the Angiotensinogen Gene, AGT, and the Aldosterone Synthase Gene, CYP11B2 in Cardiovascular Diseases.

Authors:  Yoshimichi Takeda; Masashi Demura; Takashi Yoneda; Yoshiyu Takeda
Journal:  Int J Mol Sci       Date:  2021-04-27       Impact factor: 5.923

9.  Differential Effects of Angiotensin-II Compared to Phenylephrine on Arterial Stiffness and Hemodynamics: A Placebo-Controlled Study in Healthy Humans.

Authors:  Klaas F Franzen; Moritz Meusel; Julia Engel; Tamara Röcker; Daniel Drömann; Friedhelm Sayk
Journal:  Cells       Date:  2021-05-05       Impact factor: 6.600

Review 10.  Angiotensin-converting enzyme 2 receptors, chronic liver diseases, common medications, and clinical outcomes in coronavirus disease 2019 patients.

Authors:  Wattana Leowattana
Journal:  World J Virol       Date:  2021-05-25
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