Shanmughapriya Santhanam, Rajan Sudarsan, Hoffman Nicholas E, Zhang Xueqian, Guo Shuchi, Kolesar Jill E, Hines Kevin J, Ragheb Jonathan, Jog Neelakshi R, Caricchio Roberto, Baba Yoshihiro, Zhou Yandong, Kaufman Brett A, Cheung Joseph Y, Kurosaki Tomohiro, Gill Donald L, Madesh Muniswamy
Department of Biochemistry, Temple University, Philadelphia, PA 19140, USA. Center for Translational Medicine, Temple University, Philadelphia, PA 19140, USA.
Center for Translational Medicine, Temple University, Philadelphia, PA 19140, USA.
Sci Signal. 2015 Mar 3;8(366):ra23. doi: 10.1126/scisignal.2005673.
Cytosolic Ca2+ signals, generated through the coordinated translocation of Ca2+ across the plasma membrane (PM) and endoplasmic reticulum (ER) membrane, mediate diverse cellular responses. Mitochondrial Ca2+ is important for mitochondrial function, and when cytosolic Ca2+ concentration becomes too high, mitochondria function as cellular Ca2+ sinks. By measuring mitochondrial Ca2+ currents, we found that mitochondrial Ca2+ uptake was reduced in chicken DT40 B lymphocytes lacking either the ER-localized inositol trisphosphate receptor (IP3R), which releases Ca2+ from the ER, or Orai1 or STIM1, components of the PM-localized Ca2+ -permeable channel complex that mediates store-operated calcium entry (SOCE) in response to depletion of ER Ca2+ stores. The abundance of MCU, the pore-forming subunit of the mitochondrial Ca2+ uniporter, was reduced in cells deficient in IP3R, STIM1, or Orai1. Chromatin immunoprecipitation and promoter reporter analyses revealed that the Ca2+ -regulated transcription factor CREB (cyclic adenosine monophosphate response element-binding protein) directly bound the MCU promoter and stimulated expression. Lymphocytes deficient in IP3R, STIM1, or Orai1 exhibited altered mitochondrial metabolism, indicating that Ca2+ released from the ER and SOCE-mediated signals modulates mitochondrial function. Thus, our results showed that a transcriptional regulatory circuit involving Ca2+ -dependent activation of CREB controls the Ca2+ uptake capability of mitochondria and hence regulates mitochondrial metabolism.
通过钙离子(Ca2+)跨质膜(PM)和内质网(ER)膜的协同转运产生的胞质Ca2+信号介导多种细胞反应。线粒体Ca2+对线粒体功能很重要,当胞质Ca2+浓度过高时,线粒体充当细胞Ca2+汇。通过测量线粒体Ca2+电流,我们发现,在缺乏内质网定位的肌醇三磷酸受体(IP3R,可从内质网释放Ca2+)或Orai1或STIM1(质膜定位的Ca2+通透通道复合物的组分,介导内质网Ca2+储存耗竭时的储存操纵性钙内流(SOCE))的鸡DT40 B淋巴细胞中,线粒体Ca2+摄取减少。线粒体Ca2+单向转运体的成孔亚基MCU的丰度在IP3R、STIM1或Orai1缺陷的细胞中降低。染色质免疫沉淀和启动子报告基因分析显示,Ca2+调节的转录因子CREB(环磷酸腺苷反应元件结合蛋白)直接结合MCU启动子并刺激其表达。IP3R、STIM1或Orai1缺陷的淋巴细胞表现出线粒体代谢改变,表明从内质网释放的Ca2+和SOCE介导的信号调节线粒体功能。因此,我们的结果表明,涉及CREB的Ca2+依赖性激活的转录调节回路控制线粒体的Ca2+摄取能力,从而调节线粒体代谢。