From the Laboratory of Fundamental and Applied Bioenergetics and Federative Research Structure Environmental and Systems Biology, University Joseph Fourier, 38041 Grenoble Cedex 9, France.
J Biol Chem. 2013 Jan 4;288(1):111-21. doi: 10.1074/jbc.M112.408633. Epub 2012 Nov 13.
The nucleoside diphosphate kinase Nm23-H4/NDPK-D forms symmetrical hexameric complexes in the mitochondrial intermembrane space with phosphotransfer activity using mitochondrial ATP to regenerate nucleoside triphosphates. We demonstrate the complex formation between Nm23-H4 and mitochondrial GTPase OPA1 in rat liver, suggesting its involvement in local and direct GTP delivery. Similar to OPA1, Nm23-H4 is further known to strongly bind in vitro to anionic phospholipids, mainly cardiolipin, and in vivo to the inner mitochondrial membrane. We show here that such protein-lipid complexes inhibit nucleoside diphosphate kinase activity but are necessary for another function of Nm23-H4, selective intermembrane lipid transfer. Mitochondrial lipid distribution was analyzed by liquid chromatography-mass spectrometry using HeLa cells expressing either wild-type Nm23-H4 or a membrane binding-deficient mutant at a site predicted based on molecular modeling to be crucial for cardiolipin binding and transfer mechanism. We found that wild type, but not the mutant enzyme, selectively increased the content of cardiolipin in the outer mitochondrial membrane, but the distribution of other more abundant phospholipids (e.g. phosphatidylcholine) remained unchanged. HeLa cells expressing the wild-type enzyme showed increased accumulation of Bax in mitochondria and were sensitized to rotenone-induced apoptosis as revealed by stimulated release of cytochrome c into the cytosol, elevated caspase 3/7 activity, and increased annexin V binding. Based on these data and molecular modeling, we propose that Nm23-H4 acts as a lipid-dependent mitochondrial switch with dual function in phosphotransfer serving local GTP supply and cardiolipin transfer for apoptotic signaling and putative other functions.
核苷二磷酸激酶 Nm23-H4/NDPK-D 在跨膜间隙中形成具有磷酸转移活性的对称六聚体复合物,利用线粒体 ATP 再生核苷三磷酸。我们在大鼠肝中证明了 Nm23-H4 与线粒体 GTPase OPA1 之间的复合物形成,表明其参与局部和直接的 GTP 传递。与 OPA1 相似,Nm23-H4 还被进一步证实强烈结合体外阴离子磷脂,主要是心磷脂,以及体内与线粒体内膜。我们在这里表明,这种蛋白-脂复合物抑制核苷二磷酸激酶活性,但对于 Nm23-H4 的另一种功能(选择性膜间脂质转移)是必需的。使用 HeLa 细胞表达野生型 Nm23-H4 或基于分子建模预测在心磷脂结合和转移机制中至关重要的位点的膜结合缺陷突变体,通过液相色谱-质谱法分析线粒体脂质分布。我们发现,野生型,但不是突变酶,选择性地增加了外线粒体膜中心磷脂的含量,但其他更丰富的磷脂(例如磷脂酰胆碱)的分布保持不变。表达野生型酶的 HeLa 细胞显示 Bax 在线粒体中的积累增加,并且对鱼藤酮诱导的细胞色素 c 向细胞质中的刺激释放、升高的半胱天冬酶 3/7 活性和增加的 Annexin V 结合表明细胞凋亡敏感。基于这些数据和分子建模,我们提出 Nm23-H4 作为一种脂质依赖性线粒体开关,具有双重功能,在磷酸转移中提供局部 GTP 供应和心磷脂转移,用于凋亡信号转导和潜在的其他功能。