Atrial fibrillation and electrophysiology in transgenic mice with cardiac-restricted overexpression of FKBP12

Author:

Pan Zhenwei12ORCID,Ai Tomohiko2,Chang Po-Cheng23,Liu Ying4,Liu Jijia45,Maruyama Mitsunori2,Homsi Mohamed2,Fishbein Michael C.6,Rubart Michael4,Lin Shien-Fong2,Xiao Deyong7,Chen Hanying4,Chen Peng-Sheng2,Shou Weinian4,Li Bai-Yan14ORCID

Affiliation:

1. Department of Pharmacology, Harbin Medical University, Heilonjiang, China

2. Krannert Institute for Cardiology and the Division of Cardiology, Indiana University School of Medicine, Indianapolis, Indiana

3. The Second Section of Cardiology, Departments of Medicine, Chang Gung Memorial Hospital and Chang Gung University School of Medicine, Taoyuan, Taiwan

4. Wells Center for Pediatric Research, Indiana University School of Medicine, Indianapolis, Indiana

5. The Second Xiangya Hospital, South Central University School of Medicine, China

6. Department of Pathology and Laboratory Medicine, University of California, Los Angeles, California

7. Fountain Valley Biotechnology, Inc., Dalian Hi-Tech District, Dalian, China

Abstract

Cardiomyocyte-restricted overexpression of FK506-binding protein 12 transgenic (αMyHC-FKBP12) mice develop spontaneous atrial fibrillation (AF). The aim of the present study is to explore the mechanisms underlying the occurrence of AF in αMyHC-FKBP12 mice. Spontaneous AF was documented by telemetry in vivo and Langendorff-perfused hearts of αMyHC-FKBP12 and littermate control mice in vitro. Atrial conduction velocity was evaluated by optical mapping. The patch-clamp technique was applied to determine the potentially altered electrophysiology in atrial myocytes. Channel protein expression levels were evaluated by Western blot analyses. Spontaneous AF was recorded in four of seven αMyHC-FKBP12 mice but in none of eight nontransgenic (NTG) controls. Atrial conduction velocity was significantly reduced in αMyHC-FKBP12 hearts compared with NTG hearts. Interestingly, the mean action potential duration at 50% but not 90% was significantly prolonged in αMyHC-FKBP12 atrial myocytes compared with their NTG counterparts. Consistent with decreased conduction velocity, average peak Na+ current ( INa) density was dramatically reduced and the INa inactivation curve was shifted by approximately +7 mV in αMyHC-FKBP12 atrial myocytes, whereas the activation and recovery curves were unaltered. The Nav1.5 expression level was significantly reduced in αMyHC-FKBP12 atria. Furthermore, we found increases in atrial Cav1.2 protein levels and peak L-type Ca2+ current density and increased levels of fibrosis in αMyHC-FKBP12 atria. In summary, cardiomyocyte-restricted overexpression of FKBP12 reduces the atrial Nav1.5 expression level and mean peak INa, which is associated with increased peak L-type Ca2+ current and interstitial fibrosis in atria. The combined electrophysiological and structural changes facilitated the development of local conduction block and altered action potential duration and spontaneous AF. NEW & NOTEWORTHY This study addresses a long-standing riddle regarding the role of FK506-binding protein 12 in cardiac physiology. The work provides further evidence that FK506-binding protein 12 is a critical component for regulating voltage-gated sodium current and in so doing has an important role in arrhythmogenic physiology, such as atrial fibrillation.

Funder

NSFC

NIH

Publisher

American Physiological Society

Subject

Physiology (medical),Cardiology and Cardiovascular Medicine,Physiology

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