Wanichawan Pimthanya, Hafver Tandekile Lubelwana, Hodne Kjetil, Aronsen Jan Magnus, Lunde Ida Gjervold, Dalhus Bjørn, Lunde Marianne, Kvaløy Heidi, Louch William Edward, Tønnessen Theis, Sjaastad Ivar, Sejersted Ole Mathias, Carlson Cathrine Rein
From the Institute for Experimental Medical Research, Oslo University Hospital and University of Oslo, 0407 Oslo, Norway, the KG Jebsen Cardiac Research Center and Center for Heart Failure Research, University of Oslo, 0318 Oslo, Norway.
From the Institute for Experimental Medical Research, Oslo University Hospital and University of Oslo, 0407 Oslo, Norway, Bjorknes College, 0456 Oslo, Norway.
J Biol Chem. 2014 Dec 5;289(49):33984-98. doi: 10.1074/jbc.M114.602581. Epub 2014 Oct 21.
Cardiac sodium (Na(+))-calcium (Ca(2+)) exchanger 1 (NCX1) is central to the maintenance of normal Ca(2+) homeostasis and contraction. Studies indicate that the Ca(2+)-activated protease calpain cleaves NCX1. We hypothesized that calpain is an important regulator of NCX1 in response to pressure overload and aimed to identify molecular mechanisms and functional consequences of calpain binding and cleavage of NCX1 in the heart. NCX1 full-length protein and a 75-kDa NCX1 fragment along with calpain were up-regulated in aortic stenosis patients and rats with heart failure. Patients with coronary artery disease and sham-operated rats were used as controls. Calpain co-localized, co-fractionated, and co-immunoprecipitated with NCX1 in rat cardiomyocytes and left ventricle lysate. Immunoprecipitations, pull-down experiments, and extensive use of peptide arrays indicated that calpain domain III anchored to the first Ca(2+) binding domain in NCX1, whereas the calpain catalytic region bound to the catenin-like domain in NCX1. The use of bioinformatics, mutational analyses, a substrate competitor peptide, and a specific NCX1-Met(369) antibody identified a novel calpain cleavage site at Met(369). Engineering NCX1-Met(369) into a tobacco etch virus protease cleavage site revealed that specific cleavage at Met(369) inhibited NCX1 activity (both forward and reverse mode). Finally, a short peptide fragment containing the NCX1-Met(369) cleavage site was modeled into the narrow active cleft of human calpain. Inhibition of NCX1 activity, such as we have observed here following calpain-induced NCX1 cleavage, might be beneficial in pathophysiological conditions where increased NCX1 activity contributes to cardiac dysfunction.
心脏钠(Na⁺)-钙(Ca²⁺)交换体1(NCX1)对于维持正常的Ca²⁺稳态和收缩至关重要。研究表明,Ca²⁺激活的蛋白酶钙蛋白酶可切割NCX1。我们推测钙蛋白酶是压力过载时NCX1的重要调节因子,并旨在确定钙蛋白酶与NCX1结合及切割在心脏中的分子机制和功能后果。在主动脉瓣狭窄患者和心力衰竭大鼠中,NCX1全长蛋白、75 kDa的NCX1片段以及钙蛋白酶均上调。以冠心病患者和假手术大鼠作为对照。在大鼠心肌细胞和左心室裂解物中,钙蛋白酶与NCX1共定位、共分级分离且共免疫沉淀。免疫沉淀、下拉实验以及大量使用肽阵列表明,钙蛋白酶结构域III锚定在NCX1的第一个Ca²⁺结合结构域上,而钙蛋白酶催化区域与NCX1中的连环蛋白样结构域结合。通过生物信息学、突变分析、底物竞争肽和特异性NCX1-Met³⁶⁹抗体,确定了Met³⁶⁹处的一个新的钙蛋白酶切割位点。将NCX1-Met³⁶⁹改造为烟草蚀纹病毒蛋白酶切割位点后发现,Met³⁶⁹处的特异性切割抑制了NCX1活性(正向和反向模式均受抑制)。最后,将包含NCX1-Met³⁶⁹切割位点的短肽片段模拟到人钙蛋白酶的狭窄活性裂隙中。抑制NCX1活性,如我们在此观察到的钙蛋白酶诱导的NCX1切割后的情况,可能在NCX1活性增加导致心脏功能障碍的病理生理条件下有益。