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支链α-酮酸脱氢酶的调节及枫糖尿症分子基础的阐明。

Regulation of the branched-chain alpha-ketoacid dehydrogenase and elucidation of a molecular basis for maple syrup urine disease.

作者信息

Harris R A, Zhang B, Goodwin G W, Kuntz M J, Shimomura Y, Rougraff P, Dexter P, Zhao Y, Gibson R, Crabb D W

机构信息

Department of Biochemistry, Indiana University School of Medicine, Indianapolis 46202.

出版信息

Adv Enzyme Regul. 1990;30:245-63. doi: 10.1016/0065-2571(90)90021-s.

Abstract

The hepatic branched-chain alpha-ketoacid dehydrogenase complex plays an important role in regulating branched-chain amino acid levels. These compounds are essential for protein synthesis but toxic if present in excess. When dietary protein is deficient, the hepatic enzyme is converted to the inactive, phosphorylated state to conserve branched-chain amino acids for protein synthesis. When dietary protein is excessive, the enzyme is in the active, dephosphorylated state to commit the excess branched-chain amino acids to degradation. Inhibition of protein synthesis by cycloheximide, even when the animal is starving for dietary protein, results in activation of the hepatic branched-chain alpha-ketoacid dehydrogenase complex to prevent accumulation of branched-chain amino acids. Likewise, the increase in branched-chain amino acids caused by body wasting during starvation and uncontrolled diabetes is blunted by activation of the hepatic branched-chain alpha-ketoacid dehydrogenase complex. The activity state of the complex is regulated in the short term by the concentration of branched-chain alpha-ketoacids (inhibitors of branched-chain alpha-ketoacid dehydrogenase kinase) and in the long term by alteration in total branched-chain alpha-ketoacid dehydrogenase kinase activity. cDNAs have been cloned and the primary structure of the mature proteins deduced for the E1 alpha subunit of the human and rat liver branched-chain alpha-ketoacid dehydrogenase complex. The cDNA and protein sequences are highly conserved for the two species. Considerable sequence similarity is also apparent between the E1 alpha subunits of the human branched-chain alpha-ketoacid dehydrogenase complex and the pyruvate dehydrogenase complex. Maple syrup urine disease is caused by an inherited deficiency in the branched-chain alpha-ketoacid dehydrogenase complex. The molecular basis of one maple syrup urine disease family has been determined for the first time. The patient was found to be a compound heterozygote, inheriting an allele encoding an abnormal E1 alpha from the father, and an allele which is not expressed from the mother. The only known animal model for the disease (Polled Hereford cattle) has also been characterized. The mutation in these animals introduces a stop codon in the leader peptide of the E1 alpha subunit, resulting in premature termination of translation. Two thiamine responsive patients have been studied. The deduced amino acid sequences of the mature E1 alpha subunit and its leader sequence were normal, suggesting that the defect in these patients must exist in some other subunit of the complex. 3-Hydroxyisobutyrate dehydrogenase and methylmalonate-semialdehyde dehydrogenase, two enzymes of the valine catabolic pathway, were purified from liver tissue and characterized.(ABSTRACT TRUNCATED AT 400 WORDS)

摘要

肝脏支链α-酮酸脱氢酶复合体在调节支链氨基酸水平方面发挥着重要作用。这些化合物对蛋白质合成至关重要,但过量存在时有毒性。当膳食蛋白质缺乏时,肝脏中的这种酶会转变为无活性的磷酸化状态,以保存支链氨基酸用于蛋白质合成。当膳食蛋白质过量时,该酶处于有活性的去磷酸化状态,使多余的支链氨基酸进行降解。即使动物处于膳食蛋白质饥饿状态,用环己酰亚胺抑制蛋白质合成也会导致肝脏支链α-酮酸脱氢酶复合体激活,以防止支链氨基酸积累。同样,饥饿和未控制的糖尿病期间身体消瘦导致的支链氨基酸增加,会因肝脏支链α-酮酸脱氢酶复合体的激活而减弱。该复合体的活性状态在短期内受支链α-酮酸浓度(支链α-酮酸脱氢酶激酶的抑制剂)调节,在长期内受支链α-酮酸脱氢酶激酶总活性变化调节。已克隆出人类和大鼠肝脏支链α-酮酸脱氢酶复合体E1α亚基的cDNA,并推导了成熟蛋白的一级结构。这两个物种的cDNA和蛋白质序列高度保守。人类支链α-酮酸脱氢酶复合体的E1α亚基与丙酮酸脱氢酶复合体之间也存在明显的序列相似性。枫糖尿症是由支链α-酮酸脱氢酶复合体的遗传性缺陷引起的。首次确定了一个枫糖尿症家族的分子基础。该患者被发现是复合杂合子,从父亲那里继承了一个编码异常E1α的等位基因,从母亲那里继承了一个不表达的等位基因。该疾病唯一已知的动物模型(无角海福特牛)也已得到表征。这些动物的突变在E1α亚基的前导肽中引入了一个终止密码子,导致翻译提前终止。对两名硫胺素反应性患者进行了研究。推导的成熟E1α亚基及其前导序列的氨基酸序列正常,这表明这些患者的缺陷一定存在于该复合体的其他某个亚基中。从肝脏组织中纯化并表征了缬氨酸分解代谢途径中的两种酶,3-羟基异丁酸脱氢酶和甲基丙二酸半醛脱氢酶。(摘要截取自400字)

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