Literature DB >> 25713217

Catheter-based renal denervation reduces atrial nerve sprouting and complexity of atrial fibrillation in goats.

Dominik Linz1, Arne van Hunnik1, Mathias Hohl1, Felix Mahfoud1, Milan Wolf1, Hans-Ruprecht Neuberger1, Barbara Casadei1, Svetlana N Reilly1, Sander Verheule1, Michael Böhm1, Ulrich Schotten2.   

Abstract

BACKGROUND: Atrial fibrillation (AF) leads to structural and neural remodeling in the atrium, which enhances AF complexity and perpetuation. Renal denervation (RDN) can reduce renal and whole-body sympathetic activity. Aim of this study was to determine the effect of sympathetic nervous system modulation by RDN on atrial arrhythmogenesis. METHODS AND RESULT: Eighteen goats were instrumented with an atrial endocardial pacemaker lead and a burst pacemaker. Percutaneous catheter-based RDN was performed in 8 goats (RDN-AF). Ten goats undergoing a sham procedure served as control (SHAM-AF). AF was induced and maintained by burst pacing for 6 weeks. High-resolution mapping was used to record epicardial conduction patterns of the right and left atrium. RDN reduced tyrosine hydroxylase-positive sympathetic nerve staining and resulted in lower transcardiac norepinephrine levels. This was associated with reduced expression of nerve growth factor-β, indicating less atrial nerve sprouting. Atrial endomysial fibrosis content was lower and myocyte diameter was smaller in RDN-AF. Median conduction velocity was higher (75 ± 9 versus 65 ± 10 cm/s, P = 0.02), and AF cycle length was shorter in RDN-AF compared with SHAM-AF. Left atrial AF complexity (4.8 ± 0.8 fibrillation waves/AF cycle length versus 8.5 ± 0.8 waves/AF cycle length, P = 0.001) and incidence of breakthroughs (2.0 ± 0.3 versus 4.3 ± 0.5 waves/AF cycle length, P = 0.059) were lower in RDN-AF compared with SHAM-AF. Blood pressure was normal and not significantly different between the groups.
CONCLUSIONS: RDN reduces atrial sympathetic nerve sprouting, structural alterations, and AF complexity in goats with persistent AF, independent of changes in blood pressure.
© 2015 American Heart Association, Inc.

Entities:  

Keywords:  atrial fibrillation; autonomic nervous system; complexity; mapping; nerve sprouting; remodeling; renal denervation

Mesh:

Substances:

Year:  2015        PMID: 25713217     DOI: 10.1161/CIRCEP.114.002453

Source DB:  PubMed          Journal:  Circ Arrhythm Electrophysiol        ISSN: 1941-3084


  24 in total

1.  Effects of catheter-based renal denervation on cardiac sympathetic activity and innervation in patients with resistant hypertension.

Authors:  Luca Donazzan; Felix Mahfoud; Sebastian Ewen; Christian Ukena; Bodo Cremers; Carl-Martin Kirsch; Dirk Hellwig; Tareq Eweiwi; Samer Ezziddin; Murray Esler; Michael Böhm
Journal:  Clin Res Cardiol       Date:  2015-10-22       Impact factor: 5.460

Review 2.  Modulation of renal sympathetic innervation: recent insights beyond blood pressure control.

Authors:  Dominik Linz; Mathias Hohl; Adrian D Elliott; Dennis H Lau; Felix Mahfoud; Murray D Esler; Prashanthan Sanders; Michael Böhm
Journal:  Clin Auton Res       Date:  2018-02-10       Impact factor: 4.435

Review 3.  The nervous heart.

Authors:  Crystal M Ripplinger; Sami F Noujaim; Dominik Linz
Journal:  Prog Biophys Mol Biol       Date:  2016-01-11       Impact factor: 3.667

4.  Renal denervation in male rats with heart failure improves ventricular sympathetic nerve innervation and function.

Authors:  Maximilian I Pinkham; Michael T Loftus; Satya Amirapu; Sarah-Jane Guild; Gina Quill; William R Woodward; Beth A Habecker; Carolyn J Barrett
Journal:  Am J Physiol Regul Integr Comp Physiol       Date:  2017-01-04       Impact factor: 3.619

5.  Effects of renal sympathetic denervation on the stellate ganglion and brain stem in dogs.

Authors:  Wei-Chung Tsai; Yi-Hsin Chan; Kroekkiat Chinda; Zhenhui Chen; Jheel Patel; Changyu Shen; Ye Zhao; Zhaolei Jiang; Yuan Yuan; Michael Ye; Lan S Chen; Amanda A Riley; Scott A Persohn; Paul R Territo; Thomas H Everett; Shien-Fong Lin; Harry V Vinters; Michael C Fishbein; Peng-Sheng Chen
Journal:  Heart Rhythm       Date:  2016-10-05       Impact factor: 6.343

Review 6.  Neural Mechanisms and Therapeutic Opportunities for Atrial Fibrillation.

Authors:  Takashi Kusayama; Juyi Wan; Yuan Yuan; Peng-Sheng Chen
Journal:  Methodist Debakey Cardiovasc J       Date:  2021-03-25

Review 7.  Looking back and thinking forwards - 15 years of cardiology and cardiovascular research.

Authors:  Jonathan M Kalman; Sergio Lavandero; Felix Mahfoud; Matthias Nahrendorf; Magdi H Yacoub; Dong Zhao
Journal:  Nat Rev Cardiol       Date:  2019-09-30       Impact factor: 32.419

Review 8.  Invited review: hypertension and atrial fibrillation: epidemiology, pathophysiology, and implications for management.

Authors:  Jakub Gumprecht; Magdalena Domek; Gregory Y H Lip; Alena Shantsila
Journal:  J Hum Hypertens       Date:  2019-11-05       Impact factor: 3.012

Review 9.  Neuroscientific therapies for atrial fibrillation.

Authors:  Peter Hanna; Eric Buch; Stavros Stavrakis; Christian Meyer; John D Tompkins; Jeffrey L Ardell; Kalyanam Shivkumar
Journal:  Cardiovasc Res       Date:  2021-06-16       Impact factor: 10.787

Review 10.  Autonomic Modulation of Cardiac Arrhythmias: Methods to Assess Treatment and Outcomes.

Authors:  Stavros Stavrakis; Kanchan Kulkarni; Jagmeet P Singh; Demosthenes G Katritsis; Antonis A Armoundas
Journal:  JACC Clin Electrophysiol       Date:  2020-05
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