Atrial fibrillation (AF) is the most common heart rhythm disorder and a major cause of stroke. Unfortunately, current therapies for AF are suboptimal, largely because the molecular mechanisms underlying AF are poorly understood. Since the autonomic nervous system is thought to increase vulnerability to AF, we used a rapid atrial pacing (RAP) canine model to investigate the anatomic and electrophysiological characteristics of autonomic remodeling in different regions of the left atrium. RAP led to marked hypertrophy of parent nerve bundles in the posterior left atrium (PLA), resulting in a global increase in parasympathetic and sympathetic innervation throughout the left atrium. Parasympathetic fibers were more heterogeneously distributed in the PLA when compared with other left atrial regions; this led to greater fractionation and disorganization of AF electrograms in the PLA. Computational modeling revealed that heterogeneously distributed parasympathetic activity exacerbates sympathetic substrate for wave break and reentry. We further discovered that levels of nerve growth factor (NGF) were greatest in the left atrial appendage (LAA), where AF was most organized. Preferential NGF release by the LAA — likely a direct function of frequency and regularity of atrial stimulation — may have important implications for creation of a vulnerable AF substrate.
Georg Gussak, Anna Pfenniger, Lisa Wren, Mehul Gilani, Wenwei Zhang, Shin Yoo, David A. Johnson, Amy Burrell, Brandon Benefield, Gabriel Knight, Bradley P. Knight, Rod Passman, Jeffrey J. Goldberger, Gary Aistrup, J. Andrew Wasserstrom, Yohannes Shiferaw, Rishi Arora
Title and authors | Publication | Year |
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Proteolytic degradation of atrial sarcomere proteins underlies contractile defects in atrial fibrillation
Hannah Cizauskas, Hope Burnham, Azaria Panni, Alexandra Pena, Alejandro Alvarez-Arce, M Therese Davis, Kelly Araujo, Christine Delligatti, Seby Edassery, Jonathan Kirk, Rishi Arora, David Barefield |
American journal of physiology. Heart and circulatory physiology | 2024 |
Use of Atrial Fibrillation Electrograms and T1/T2 Magnetic Resonance Imaging to Define the Progressive Nature of Molecular and Structural Remodeling: A New Paradigm Underlying the Emergence of Persistent Atrial Fibrillation.
Rottmann M, Yoo S, Pfenniger A, Mikhailov A, Benefield B, Johnson DA, Zhang W, Ghosh AK, Kim D, Passman R, Knight BP, Lee DC, Arora R |
Journal of the American Heart Association | 2024 |
Pathophysiology, molecular mechanisms, and genetics of atrial fibrillation.
Han P, Zhao X, Li X, Geng J, Ni S, Li Q |
Human cell | 2024 |
Neurocardiology: translational advancements and potential
Herring N, Ajijola OA, Foreman RD, Gourine AV, Green AL, Osborn J, Paterson DJ, Paton JF, Ripplinger CM, Smith C, Vrabec TL, Wang HJ, Zucker IH, Ardell JL |
The Journal of Physiology | 2024 |
Oxidative stress and atrial fibrillation
Pfenniger A, Yoo S, Arora R |
Journal of molecular and cellular cardiology | 2024 |