Division of Inborn Errors of Metabolism, Department of Biochemistry and Molecular Genetics, Hospital Clinic, Instituto de Investigación Biomédica Pi Sunyer, 08028 Barcelona, Spain.
Am J Hum Genet. 2011 Nov 11;89(5):656-67. doi: 10.1016/j.ajhg.2011.10.005.
We report on ten individuals with a fatal infantile encephalopathy and/or pulmonary hypertension, leading to death before the age of 15 months. Hyperglycinemia and lactic acidosis were common findings. Glycine cleavage system and pyruvate dehydrogenase complex (PDHC) activities were low. Homozygosity mapping revealed a perfectly overlapping homozygous region of 1.24 Mb corresponding to chromosome 2 and led to the identification of a homozygous missense mutation (c.622G > T) in NFU1, which encodes a conserved protein suggested to participate in Fe-S cluster biogenesis. Nine individuals were homozygous for this mutation, whereas one was compound heterozygous for this and a splice-site (c.545 + 5G > A) mutation. The biochemical phenotype suggested an impaired activity of the Fe-S enzyme lipoic acid synthase (LAS). Direct measurement of protein-bound lipoic acid in individual tissues indeed showed marked decreases. Upon depletion of NFU1 by RNA interference in human cell culture, LAS and, in turn, PDHC activities were largely diminished. In addition, the amount of succinate dehydrogenase, but no other Fe-S proteins, was decreased. In contrast, depletion of the general Fe-S scaffold protein ISCU severely affected assembly of all tested Fe-S proteins, suggesting that NFU1 performs a specific function in mitochondrial Fe-S cluster maturation. Similar biochemical effects were observed in Saccharomyces cerevisiae upon deletion of NFU1, resulting in lower lipoylation and SDH activity. Importantly, yeast Nfu1 protein carrying the individuals' missense mutation was functionally impaired. We conclude that NFU1 functions as a late-acting maturation factor for a subset of mitochondrial Fe-S proteins.
我们报告了 10 名患有致命婴儿期脑病和/或肺动脉高压的个体,这些患者在 15 个月之前死亡。高血糖症和乳酸酸中毒是常见的发现。甘氨酸裂解系统和丙酮酸脱氢酶复合物(PDHC)活性降低。纯合子定位显示出完全重叠的 1.24 Mb 纯合区域对应于染色体 2,并导致 NFU1 中的纯合错义突变(c.622G > T)的鉴定,该突变编码一种保守的蛋白质,据推测参与 Fe-S 簇生物发生。9 名个体为该突变纯合子,而 1 名个体为该突变和剪接位点(c.545 + 5G > A)突变的复合杂合子。生化表型提示 Fe-S 酶硫辛酸合酶(LAS)的活性受损。个体组织中蛋白结合硫辛酸的直接测量确实显示出明显的减少。在用人类细胞培养物中的 RNA 干扰耗尽 NFU1 后,LAS 继而 PDHC 活性大大降低。此外,琥珀酸脱氢酶的量减少,但其他 Fe-S 蛋白没有减少。相比之下,一般 Fe-S 支架蛋白 ISCU 的耗尽严重影响了所有测试的 Fe-S 蛋白的组装,这表明 NFU1 在线粒体 Fe-S 簇成熟中发挥特定功能。在 Saccharomyces cerevisiae 中,当 NFU1 缺失时,观察到类似的生化效应,导致硫辛酰化和 SDH 活性降低。重要的是,携带个体错义突变的酵母 Nfu1 蛋白功能受损。我们得出结论,NFU1 作为一组线粒体 Fe-S 蛋白的晚期成熟因子发挥作用。