Vanderperre Benoît, Cermakova Kristina, Escoffier Jessica, Kaba Mayis, Bender Tom, Nef Serge, Martinou Jean-Claude
From the Department of Cell Biology.
the Swiss Centre for Applied Human Toxicology, and the Department of Genetic Medicine and Development, University of Geneva, 1211 Geneva 4, Switzerland.
J Biol Chem. 2016 Aug 5;291(32):16448-61. doi: 10.1074/jbc.M116.733840. Epub 2016 Jun 17.
Selective transport of pyruvate across the inner mitochondrial membrane by the mitochondrial pyruvate carrier (MPC) is a fundamental step that couples cytosolic and mitochondrial metabolism. The recent molecular identification of the MPC complex has revealed two interacting subunits, MPC1 and MPC2. Although in yeast, an additional subunit, MPC3, can functionally replace MPC2, no alternative MPC subunits have been described in higher eukaryotes. Here, we report for the first time the existence of a novel MPC subunit termed MPC1-like (MPC1L), which is present uniquely in placental mammals. MPC1L shares high sequence, structural, and topological homology with MPC1. In addition, we provide several lines of evidence to show that MPC1L is functionally equivalent to MPC1: 1) when co-expressed with MPC2, it rescues pyruvate import in a MPC-deleted yeast strain; 2) in mammalian cells, it can associate with MPC2 to form a functional carrier as assessed by bioluminescence resonance energy transfer; 3) in MPC1 depleted mouse embryonic fibroblasts, MPC1L rescues the loss of pyruvate-driven respiration and stabilizes MPC2 expression; and 4) MPC1- and MPC1L-mediated pyruvate imports show similar efficiency. However, we show that MPC1L has a highly specific expression pattern and is localized almost exclusively in testis and more specifically in postmeiotic spermatids and sperm cells. This is in marked contrast to MPC1/MPC2, which are ubiquitously expressed throughout the organism. To date, the biological importance of this alternative MPC complex during spermatogenesis in placental mammals remains unknown. Nevertheless, these findings open up new avenues for investigating the structure-function relationship within the MPC complex.
线粒体丙酮酸载体(MPC)介导丙酮酸选择性穿过线粒体内膜是连接胞质和线粒体代谢的关键步骤。近期对MPC复合物的分子鉴定揭示了两个相互作用的亚基,即MPC1和MPC2。虽然在酵母中,另一个亚基MPC3可在功能上替代MPC2,但在高等真核生物中尚未发现其他替代的MPC亚基。在此,我们首次报道了一种名为MPC1样(MPC1L)的新型MPC亚基的存在,它仅存在于胎盘哺乳动物中。MPC1L与MPC1在序列、结构和拓扑上具有高度同源性。此外,我们提供了多条证据表明MPC1L在功能上等同于MPC1:1)与MPC2共表达时,它能挽救MPC缺失酵母菌株中的丙酮酸导入;2)在哺乳动物细胞中,通过生物发光共振能量转移评估,它可与MPC2结合形成功能性载体;3)在MPC1缺失的小鼠胚胎成纤维细胞中,MPC1L可挽救丙酮酸驱动的呼吸损失并稳定MPC2表达;4)MPC1和MPC1L介导的丙酮酸导入效率相似。然而,我们发现MPC1L具有高度特异性的表达模式,几乎仅定位于睾丸,更具体地定位于减数分裂后的精子细胞和精子中。这与在整个生物体中普遍表达的MPC1/MPC2形成鲜明对比。迄今为止,这种替代的MPC复合物在胎盘哺乳动物精子发生过程中的生物学重要性仍不清楚。尽管如此,这些发现为研究MPC复合物的结构 - 功能关系开辟了新途径。