1. Academic Validation
  2. Transcriptional regulation of stress kinase JNK2 in pro-arrhythmic CaMKIIδ expression in the aged atrium

Transcriptional regulation of stress kinase JNK2 in pro-arrhythmic CaMKIIδ expression in the aged atrium

  • Cardiovasc Res. 2018 Apr 1;114(5):737-746. doi: 10.1093/cvr/cvy011.
Xianlong Gao 1 Xiaomin Wu 1 Jiajie Yan 1 2 Jingqun Zhang 3 Weiwei Zhao 1 2 Dominic DeMarco 1 2 Yongguo Zhang 4 Mamdouh Bakhos 5 Gregory Mignery 1 Jun Sun 4 Zhenyu Li 6 Michael Fill 2 Xun Ai 1 2
Affiliations

Affiliations

  • 1 Department of Cell and Molecular Physiology, Loyola University Chicago, Maywood, IL, USA.
  • 2 Department of Physiology and Biophysics, Rush University Medical Center, Chicago, IL, USA.
  • 3 Department of Cardiology, Tongji Hospital, Huazhong University of Science and Technology, Wuhan, PR China.
  • 4 Department of Medicine, University of Illinois at Chicago, Chicago, IL, USA.
  • 5 Department of Thoracic & Cardiovascular Surgery, Loyola University Chicago, Maywood, IL, USA.
  • 6 Division of Cardiovascular Medicine, University of Kentucky, KY, USA.
Abstract

Aims: c-jun N-terminal kinase (JNK) is a critical stress response kinase that activates in a wide range of physiological and pathological cellular processes. We recently discovered a pivotal role of JNK in the development of atrial arrhythmias in the aged heart, while cardiac CaMKIIδ, another pro-arrhythmic molecule, was also known to enhance atrial arrhythmogenicity. Here, we aimed to reveal a regulatory role of the stress kinase JNK2 isoform on CaMKIIδ expression.

Methods and results: Activated JNK2 leads to increased CaMKIIδ protein expression in aged human and mouse atria, evidenced from the reversal of CaMKIIδ up-regulation in JNK2 Inhibitor treated wild-type aged mice. This JNK2 action in CaMKIIδ expression was further confirmed in HL-1 myocytes co-infected with AdMKK7D-JNK2, but not when co-infected with AdMKK7D-JNK1. JNK2-specific inhibition (either by a JNK2 Inhibitor or overexpression of inactivated dominant-negative JNK2 (JNK2dn) completely attenuated JNK Activator anisomycin-induced CaMKIIδ up-regulation in HL-1 myocytes, whereas overexpression of JNK1dn did not. Moreover, up-regulated CaMKIIδ mRNA along with substantially increased phosphorylation of JNK downstream transcription factor c-jun [but not activating transcription factor2 (ATF2)] were exhibited in both aged atria (humans and mice) and transiently JNK activated HL-1 myocytes. Cross-linked chromatin-immunoprecipitation assays (XChIP) revealed that both c-jun and ATF2 were bound to the CaMKIIδ promoter, but significantly increased binding of c-jun only occurred in the presence of anisomycin and JNK inhibition alleviated this anisomycin-elevated c-jun binding. Mutated CaMKII consensus c-jun binding sites impaired its promoter activity. Enhanced transcriptional activity of CaMKIIδ by anisomycin was also completely reversed to the baseline by either JNK2 siRNA or c-jun siRNA knockdown.

Conclusion: JNK2 activation up-regulates CaMKIIδ expression in the aged atrium. This JNK2 regulation in CaMKIIδ expression occurs at the transcription level through the JNK downstream transcription factor c-jun. The discovery of this novel molecular mechanism of JNK2-regulated CaMKII expression sheds new LIGHT on possible anti-arrhythmia drug development.

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