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      NR4A1 aggravates the cardiac microvascular ischemia reperfusion injury through suppressing FUNDC1-mediated mitophagy and promoting Mff-required mitochondrial fission by CK2α.

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          Abstract

          Mitochondrial fission and mitophagy are considered key processes involved in the pathogenesis of cardiac microvascular ischemia reperfusion (IR) injury although the upstream regulatory mechanism for fission and mitophagy still remains unclear. Herein, we reported that NR4A1 was significantly upregulated following cardiac microvascular IR injury, and its level was positively correlated with microvascular collapse, endothelial cellular apoptosis and mitochondrial damage. However, NR4A1-knockout mice exhibited resistance against the acute microvascular injury and mitochondrial dysfunction compared with the wild-type mice. Functional studies illustrated that IR injury increased NR4A1 expression, which activated serine/threonine kinase casein kinase2 α (CK2α). CK2α promoted phosphorylation of mitochondrial fission factor (Mff) and FUN14 domain-containing 1 (FUNDC1). Phosphorylated activation of Mff enhanced the cytoplasmic translocation of Drp1 to the mitochondria, leading to fatal mitochondrial fission. Excessive fission disrupted mitochondrial function and structure, ultimately triggering mitochondrial apoptosis. In addition, phosphorylated inactivation of FUNDC1 failed to launch the protective mitophagy process, resulting in the accumulation of damaged mitochondria and endothelial apoptosis. By facilitating Mff-mediated mitochondrial fission and FUNDC1-required mitophagy, NR4A1 disturbed mitochondrial homeostasis, enhanced endothelial apoptosis and provoked microvascular dysfunction. In summary, our data illustrated that NR4A1 serves as a novel culprit factor in cardiac microvascular IR injury that operates through synchronous elevation of fission and suppression of mitophagy. Novel therapeutic strategies targeting the balance among NR4A1, fission and mitophagy might provide survival advantage to microvasculature following IR stress.

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          Author and article information

          Journal
          Basic Res. Cardiol.
          Basic research in cardiology
          Springer Nature America, Inc
          1435-1803
          0300-8428
          May 09 2018
          : 113
          : 4
          Affiliations
          [1 ] Department of Cardiology, PLA General Hospital, Beijing, China. zhouhao301@outlook.com.
          [2 ] Center for Cardiovascular Research and Alternative Medicine, University of Wyoming College of Health Sciences, Laramie, WY, 82071, USA. zhouhao301@outlook.com.
          [3 ] Department of Cardiology, PLA General Hospital, Beijing, China.
          [4 ] Center for Cardiovascular Research and Alternative Medicine, University of Wyoming College of Health Sciences, Laramie, WY, 82071, USA.
          [5 ] Department of Chemical and Environmental Engineering, University of California, Riverside, Riverside, CA, 92521, USA.
          [6 ] Center for Cardiovascular Research and Alternative Medicine, University of Wyoming College of Health Sciences, Laramie, WY, 82071, USA. jren@uwyo.edu.
          [7 ] Department of Cardiology, PLA General Hospital, Beijing, China. yundaic@163.com.
          Article
          10.1007/s00395-018-0682-1
          10.1007/s00395-018-0682-1
          29744594
          7a526d11-69b9-4900-a5ec-c1e1a3bb935a
          History

          Mitophagy,NR4A1,CK2α,Cardiac microvascular IR injury,FUNDC1,Mff,Mitochondrial fission

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