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人鸟氨酸-δ-氨基转移酶在酿酒酵母中的表达与加工

Expression and processing of human ornithine-delta-aminotransferase in Saccharomyces cerevisiae.

作者信息

Dougherty K M, Swanson D A, Brody L C, Valle D

机构信息

Predoctoral Training Program in Human Genetics, Johns Hopkins University School of Medicine, Baltimore, MD 21205.

出版信息

Hum Mol Genet. 1993 Nov;2(11):1835-40. doi: 10.1093/hmg/2.11.1835.

Abstract

Ornithine-delta-aminotransferase catalyzes the conversion of ornithine to glutamate-gamma-semialdehyde. In humans, deficiency of this mitochondrial matrix enzyme results in the progressive blinding disorder, gyrate atrophy of the choroid and retina. To explore yeast as an expression system, we introduced a cDNA encoding human ornithine-delta-aminotransferase into an ornithine aminotransferase-deficient strain of Saccharomyces cerevisiae. The human enzyme was expressed at high levels, with activity 20-fold greater than that of wild-type yeast and 10-fold higher than in human fibroblasts. Although the normal location of ornithine-delta-aminotransferase in S. cerevisiae is cytosolic, human ornithine-delta-aminotransferase expressed in S. cerevisiae was localized to the mitochondrial matrix with correct proteolytic processing of its mitochondrial leader sequence. Despite this anomalous location in yeast, human ornithine-delta-aminotransferase complemented the phenotype of the mutant strain, restoring its ability to utilize ornithine as a sole nitrogen source. We also expressed a vitamin B6-responsive missense allele of ornithine-delta-aminotransferase (V332M) and showed that the biochemical phenotype of this allele is easily demonstrated confirming the usefulness of this system for examining mutations causing gyrate atrophy.

摘要

鸟氨酸-δ-氨基转移酶催化鸟氨酸转化为谷氨酸-γ-半醛。在人类中,这种线粒体基质酶的缺乏会导致进行性失明疾病——脉络膜和视网膜回旋状萎缩。为了探索酵母作为一种表达系统,我们将编码人鸟氨酸-δ-氨基转移酶的cDNA导入酿酒酵母的鸟氨酸氨基转移酶缺陷菌株中。人源酶高水平表达,其活性比野生型酵母高20倍,比人成纤维细胞高10倍。尽管鸟氨酸-δ-氨基转移酶在酿酒酵母中的正常位置是胞质,但在酿酒酵母中表达的人鸟氨酸-δ-氨基转移酶定位于线粒体基质,其线粒体前导序列经过正确的蛋白水解加工。尽管在酵母中位置异常,但人鸟氨酸-δ-氨基转移酶弥补了突变菌株的表型,恢复了其将鸟氨酸作为唯一氮源利用的能力。我们还表达了鸟氨酸-δ-氨基转移酶的维生素B6反应性错义等位基因(V332M),并表明该等位基因的生化表型很容易得到证实,这证实了该系统在检测导致回旋状萎缩的突变方面的有用性。

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