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中链酰基辅酶A脱氢酶(MCAD)缺乏症的分子特征:MCAD基因中赖氨酸329突变为谷氨酸的鉴定,以及无活性突变酶蛋白在大肠杆菌中的表达。

Molecular characterization of medium-chain acyl-CoA dehydrogenase (MCAD) deficiency: identification of a lys329 to glu mutation in the MCAD gene, and expression of inactive mutant enzyme protein in E. coli.

作者信息

Gregersen N, Andresen B S, Bross P, Winter V, Rüdiger N, Engst S, Christensen E, Kelly D, Strauss A W, Kølvraa S

机构信息

University Department of Clinical Chemistry, Aarhus Kommunehospital, Denmark.

出版信息

Hum Genet. 1991 Apr;86(6):545-51. doi: 10.1007/BF00201539.

DOI:10.1007/BF00201539
PMID:1902818
Abstract

A series of experiments has established the molecular defect in the medium-chain acyl-coenzyme A (CoA) dehydrogenase (MCAD) gene in a family with MCAD deficiency. Demonstration of intra-mitochondrial mature MCAD indistinguishable in size (42.5-kDa) from control MCAD, and of mRNA with the correct size of 2.4 kb, indicated a point-mutation in the coding region of the MCAD gene to be disease-causing. Consequently, cloning and DNA sequencing of polymerase chain reaction (PCR) amplified complementary DNA (cDNA) from messenger RNA of fibroblasts from the patient and family members were performed. All clones sequenced from the patient exhibited a single base substitution from adenine (A) to guanine (G) at position 985 in the MCAD cDNA as the only consistent base-variation compared with control cDNA. In contrast, the parents contained cDNA with the normal and the mutated sequence, revealing their obligate carrier status. Allelic homozygosity in the patient and heterozygosity for the mutation in the parents were established by a modified PCR reaction, introducing a cleavage site for the restriction endonuclease NcoI into amplified genomic DNA containing G985. The same assay consistently revealed A985 in genomic DNA from 26 control individuals. The A to G mutation was introduced into an E. coli expression vector producing mutant MCAD, which was demonstrated to be inactive, probably because of the inability to form active tetrameric MCAD. All the experiments are consistent with the contention that the G985 mutation, resulting in a lysine to glutamate shift at position 329 in the MCAD polypeptide chain, is the genetic cause of MCAD deficiency in this family. We found the same mutation in homozygous form in 11 out of 12 other patients with verified MCAD deficiency.

摘要

一系列实验确定了一个患有中链酰基辅酶A(CoA)脱氢酶(MCAD)缺乏症的家族中MCAD基因的分子缺陷。线粒体内部成熟的MCAD在大小上(42.5 kDa)与对照MCAD无法区分,并且mRNA大小正确,为2.4 kb,这表明MCAD基因编码区域的一个点突变是致病原因。因此,对患者和家庭成员成纤维细胞信使RNA进行聚合酶链反应(PCR)扩增互补DNA(cDNA),并进行克隆和DNA测序。与对照cDNA相比,从患者测序的所有克隆在MCAD cDNA的985位均表现出从腺嘌呤(A)到鸟嘌呤(G)的单碱基替换,这是唯一一致的碱基变异。相比之下,父母的cDNA包含正常和突变序列,揭示了他们必然的携带者状态。通过改良的PCR反应确定了患者的等位基因纯合性以及父母中突变的杂合性,该反应在含有G985的扩增基因组DNA中引入了限制性内切酶NcoI的切割位点。相同的检测方法始终在26名对照个体的基因组DNA中检测到A985。A到G的突变被引入产生突变MCAD的大肠杆菌表达载体中,该突变体被证明是无活性的,可能是因为无法形成活性四聚体MCAD。所有实验均与以下观点一致:G985突变导致MCAD多肽链329位的赖氨酸向谷氨酸转变,是该家族MCAD缺乏症的遗传原因。我们在其他12名经证实患有MCAD缺乏症的患者中的11名中发现了相同的纯合形式突变。

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Molecular characterization of medium-chain acyl-CoA dehydrogenase (MCAD) deficiency: identification of a lys329 to glu mutation in the MCAD gene, and expression of inactive mutant enzyme protein in E. coli.中链酰基辅酶A脱氢酶(MCAD)缺乏症的分子特征:MCAD基因中赖氨酸329突变为谷氨酸的鉴定,以及无活性突变酶蛋白在大肠杆菌中的表达。
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本文引用的文献

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In vitro fibroblast studies in a patient with C6-C10-dicarboxylic aciduria: evidence for a defect in general acyl-CoA dehydrogenase.对一名患有C6 - C10 - 二羧酸尿症患者的成纤维细胞进行的体外研究:一般酰基辅酶A脱氢酶缺陷的证据。
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Non-ketotic C6-C10-dicarboxylic aciduria: biochemical investigations of two cases.非酮症性C6 - C10 - 二羧酸尿症:两例病例的生化研究
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Dicarboxylic aciduria: deficient [1-14C]octanoate oxidation and medium-chain acyl-CoA dehydrogenase in fibroblasts.
Am J Hum Genet. 2020 Oct 1;107(4):596-611. doi: 10.1016/j.ajhg.2020.08.001. Epub 2020 Aug 26.
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Analysis of common mutations in the galactose-1-phosphate uridyl transferase gene: new assays to increase the sensitivity and specificity of newborn screening for galactosemia.1-磷酸半乳糖尿苷酰转移酶基因常见突变分析:提高半乳糖血症新生儿筛查敏感性和特异性的新检测方法
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Disorders of mitochondrial fatty acyl-CoA beta-oxidation.线粒体脂肪酰辅酶Aβ氧化紊乱
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Clear correlation of genotype with disease phenotype in very-long-chain acyl-CoA dehydrogenase deficiency.在极长链酰基辅酶A脱氢酶缺乏症中基因型与疾病表型的明确相关性。
Am J Hum Genet. 1999 Feb;64(2):479-94. doi: 10.1086/302261.
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Structural organization of the human short-chain acyl-CoA dehydrogenase gene.人类短链酰基辅酶A脱氢酶基因的结构组织
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Mammalian mitochondrial beta-oxidation.哺乳动物线粒体β-氧化
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The mutational spectrum in very long-chain acyl-CoA dehydrogenase deficiency.极长链酰基辅酶A脱氢酶缺乏症的突变谱
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二羧酸尿症:成纤维细胞中[1-14C]辛酸氧化及中链酰基辅酶A脱氢酶缺乏
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Medium-chain acyl-CoA dehydrogenase deficiency in children with non-ketotic hypoglycemia and low carnitine levels.非酮症低血糖和低肉碱水平儿童的中链酰基辅酶A脱氢酶缺乏症
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Anal Biochem. 1981 Apr;112(2):195-203. doi: 10.1016/0003-2697(81)90281-5.
7
The acyl-CoA dehydrogenation deficiencies. Recent advances in the enzymic characterization and understanding of the metabolic and pathophysiological disturbances in patients with acyl-CoA dehydrogenation deficiencies.酰基辅酶A脱氢酶缺乏症。酰基辅酶A脱氢酶缺乏症患者酶学特征及对代谢和病理生理紊乱理解的最新进展。
Scand J Clin Lab Invest Suppl. 1985;174:1-60.
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Biosynthesis of variant medium chain acyl-CoA dehydrogenase in cultured fibroblasts from patients with medium chain acyl-CoA dehydrogenase deficiency.中链酰基辅酶A脱氢酶缺乏症患者培养成纤维细胞中变异型中链酰基辅酶A脱氢酶的生物合成
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Mutations in the human adenosine deaminase gene that affect protein structure and RNA splicing.影响蛋白质结构和RNA剪接的人类腺苷脱氨酶基因突变。
Proc Natl Acad Sci U S A. 1987 Aug;84(16):5947-51. doi: 10.1073/pnas.84.16.5947.
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Molecular cloning of cDNAs encoding rat and human medium-chain acyl-CoA dehydrogenase and assignment of the gene to human chromosome 1.编码大鼠和人中等链长酰基辅酶A脱氢酶的cDNA的分子克隆及该基因在人染色体1上的定位。
Proc Natl Acad Sci U S A. 1986 Sep;83(17):6543-7. doi: 10.1073/pnas.83.17.6543.