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由I-SceI(一种在线粒体I类内含子编码且在酵母细胞核中表达的内切核酸酶)决定的位点特异性重组。

Site-specific recombination determined by I-SceI, a mitochondrial group I intron-encoded endonuclease expressed in the yeast nucleus.

作者信息

Plessis A, Perrin A, Haber J E, Dujon B

机构信息

Unité de génétique moléculaire des levures, URA1149 du CNRS, Département de Biologie moléculaire, Institut Pasteur, Paris, France.

出版信息

Genetics. 1992 Mar;130(3):451-60. doi: 10.1093/genetics/130.3.451.

Abstract

The Saccharomyces cerevisiae mitochondrial endonuclease I-SceI creates a double-strand break as the initiating step in the gene conversional transfer of the omega+ intron to omega- DNA. We have expressed a galactose-inducible synthetic I-SceI gene in the nucleus of yeast that also carries the I-SceI recognition site on a plasmid substrate. We find that the galactose-induced I-SceI protein can be active in the nucleus and efficiently catalyze recombination. With a target plasmid containing direct repeats of the Escherichia coli lacZ gene, one copy of which is interrupted by a 24-bp cutting site, galactose induction produces both deletions and gene conversions. Both the kinetics and the proportion of deletions and gene conversions are very similar to analogous events initiated by a galactose-inducible HO endonuclease gene. We also find that, in a rad52 mutant strain, the repair of double-strand breaks initiated by I-SceI and by HO are similarly affected: the formation of deletions is reduced, but not eliminated. Altogether, these results suggest either that the two endonucleases act in the same way after double-strand break formation or that the two endonucleases are not involved in subsequent steps.

摘要

酿酒酵母线粒体核酸内切酶I-SceI产生双链断裂,作为ω⁺内含子向ω⁻DNA进行基因转换转移的起始步骤。我们在酵母细胞核中表达了一个半乳糖诱导型合成I-SceI基因,该酵母在质粒底物上也携带I-SceI识别位点。我们发现,半乳糖诱导的I-SceI蛋白在细胞核中具有活性,并能有效地催化重组。对于含有大肠杆菌lacZ基因直接重复序列的靶质粒,其中一个拷贝被一个24bp的切割位点中断,半乳糖诱导会产生缺失和基因转换。缺失和基因转换的动力学及比例与由半乳糖诱导型HO核酸内切酶基因引发的类似事件非常相似。我们还发现,在rad52突变株中,由I-SceI和HO引发的双链断裂的修复受到类似影响:缺失的形成减少,但未消除。总之,这些结果表明,要么这两种核酸内切酶在双链断裂形成后以相同方式起作用,要么这两种核酸内切酶不参与后续步骤。

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