Lindhurst Marjorie J, Fiermonte Giuseppe, Song Shiwei, Struys Eduard, De Leonardis Francesco, Schwartzberg Pamela L, Chen Amy, Castegna Alessandra, Verhoeven Nanda, Mathews Christopher K, Palmieri Ferdinando, Biesecker Leslie G
National Human Genome Research Institute, National Institutes of Health, Bethesda, MD 20892, USA.
Proc Natl Acad Sci U S A. 2006 Oct 24;103(43):15927-32. doi: 10.1073/pnas.0607661103. Epub 2006 Oct 11.
SLC25A19 mutations cause Amish lethal microcephaly (MCPHA), which markedly retards brain development and leads to alpha-ketoglutaric aciduria. Previous data suggested that SLC25A19, also called DNC, is a mitochondrial deoxyribonucleotide transporter. We generated a knockout mouse model of Slc25a19. These animals had 100% prenatal lethality by embryonic day 12. Affected embryos at embryonic day 10.5 have a neural-tube closure defect with ruffling of the neural fold ridges, a yolk sac erythropoietic failure, and elevated alpha-ketoglutarate in the amniotic fluid. We found that these animals have normal mitochondrial ribo- and deoxyribonucleoside triphosphate levels, suggesting that transport of these molecules is not the primary role of SLC25A19. We identified thiamine pyrophosphate (ThPP) transport as a candidate function of SLC25A19 through homology searching and confirmed it by using transport assays of the recombinant reconstituted protein. The mitochondria of Slc25a19(-/-) and MCPHA cells have undetectable and markedly reduced ThPP content, respectively. The reduction of ThPP levels causes dysfunction of the alpha-ketoglutarate dehydrogenase complex, which explains the high levels of this organic acid in MCPHA and suggests that mitochondrial ThPP transport is important for CNS development.
SLC25A19基因突变导致阿米什致死性小头畸形(MCPHA),这会显著阻碍大脑发育并导致α-酮戊二酸尿症。先前的数据表明,SLC25A19,也称为DNC,是一种线粒体脱氧核糖核苷酸转运体。我们构建了Slc25a19基因敲除小鼠模型。这些动物在胚胎第12天时有100%的产前致死率。在胚胎第10.5天受影响的胚胎存在神经管闭合缺陷,神经褶嵴有褶皱,卵黄囊红细胞生成失败,且羊水中α-酮戊二酸水平升高。我们发现这些动物的线粒体核糖核苷三磷酸和脱氧核糖核苷三磷酸水平正常,这表明这些分子的转运不是SLC25A19的主要功能。我们通过同源性搜索将硫胺素焦磷酸(ThPP)转运确定为SLC25A19的一个候选功能,并通过重组重组蛋白的转运测定对其进行了证实。Slc25a19基因敲除小鼠和MCPHA细胞的线粒体中ThPP含量分别检测不到和显著降低。ThPP水平的降低导致α-酮戊二酸脱氢酶复合体功能障碍,这解释了MCPHA中这种有机酸的高水平,并表明线粒体ThPP转运对中枢神经系统发育很重要。