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GRACILE Syndrome a Lethal Metabolic Disorder with Iron Overload Is Caused by a Point Mutation in BCS1L

机译:格列克氏综合症一种致命的代谢异常铁过量是由BCS1L中的点突变引起的

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摘要

GRACILE (growth retardation, aminoaciduria, cholestasis, iron overload, lactacidosis, and early death) syndrome is a recessively inherited lethal disease characterized by fetal growth retardation, lactic acidosis, aminoaciduria, cholestasis, and abnormalities in iron metabolism. We previously localized the causative gene to a 1.5-cM region on chromosome 2q33-37. In the present study, we report the molecular defect causing this metabolic disorder, by identifying a homozygous missense mutation that results in an S78G amino acid change in the BCS1L gene in Finnish patients with GRACILE syndrome, as well as five different mutations in three British infants. BCS1L, a mitochondrial inner-membrane protein, is a chaperone necessary for the assembly of mitochondrial respiratory chain complex III. Pulse-chase experiments performed in COS-1 cells indicated that the S78G amino acid change results in instability of the polypeptide, and yeast complementation studies revealed a functional defect in the mutated BCS1L protein. Four different mutations in the BCS1L gene have been reported elsewhere, in Turkish patients with a distinctly different phenotype. Interestingly, the British and Turkish patients had complex III deficiency, whereas in the Finnish patients with GRACILE syndrome complex III activity was within the normal range, implying that BCS1L has another cellular function that is uncharacterized but essential and is putatively involved in iron metabolism.
机译:颗粒症(生长迟缓,氨基酸尿,胆汁淤积,铁超负荷,乳酸中毒和早期死亡)综合征是一种隐性遗传的致命疾病,其特征在于胎儿发育迟缓,乳酸性酸中毒,氨基酸尿,胆汁淤积和铁代谢异常。我们先前将致病基因定位在染色体2q33-37上的1.5-cM区。在本研究中,我们通过鉴定导致芬兰GRACILE综合征患者BCS1L基因的S78G氨基酸改变的纯合错义突变,以及三个英国婴儿的五个不同突变,来报告引起这种代谢紊乱的分子缺陷。 。 BCS1L是一种线粒体内膜蛋白,是装配线粒体呼吸链复合物III所必需的分子伴侣。在COS-1细胞中进行的脉冲追踪实验表明,S78G氨基酸变化导致多肽不稳定,酵母互补研究表明突变的BCS1L蛋白存在功能缺陷。在其他地方,BCS1L基因有四个不同的突变,表型明显不同的土耳其患者。有趣的是,英国和土耳其患者患有复杂的III型缺乏症,而在患有GRACILE综合征的芬兰患者中,复杂的III型活性处于正常范围内,这表明BCS1L具有另一种未表征但必不可少的细胞功能,并可能参与铁代谢。

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