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The Drosophila melanogaster DmRAD54 gene plays a crucial role in double-strand break repair after P-element excision and acts synergistically with Ku70 in the repair of X-ray damage.果蝇的DmRAD54基因在P因子切除后的双链断裂修复中起关键作用,并在X射线损伤修复中与Ku70协同发挥作用。
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2
The Drosophila melanogaster RAD54 homolog, DmRAD54, is involved in the repair of radiation damage and recombination.果蝇黑腹种的RAD54同源物DmRAD54参与辐射损伤修复和重组过程。
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Drosophila IRBP/Ku p70 corresponds to the mutagen-sensitive mus309 gene and is involved in P-element excision in vivo.果蝇IRBP/Ku p70对应于诱变敏感的mus309基因,并在体内参与P因子切除。
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Homologous recombination and non-homologous end-joining pathways of DNA double-strand break repair have overlapping roles in the maintenance of chromosomal integrity in vertebrate cells.DNA双链断裂修复的同源重组和非同源末端连接途径在维持脊椎动物细胞染色体完整性方面具有重叠作用。
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Binding of double-strand breaks in DNA by human Rad52 protein.人源Rad52蛋白与DNA双链断裂的结合
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Identification of a Saccharomyces cerevisiae Ku80 homologue: roles in DNA double strand break rejoining and in telomeric maintenance.酿酒酵母Ku80同源物的鉴定:在DNA双链断裂修复和端粒维持中的作用。
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本文引用的文献

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Characterization of the roles of the Saccharomyces cerevisiae RAD54 gene and a homologue of RAD54, RDH54/TID1, in mitosis and meiosis.酿酒酵母RAD54基因及RAD54同源物RDH54/TID1在有丝分裂和减数分裂中的作用表征。
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RDH54, a RAD54 homologue in Saccharomyces cerevisiae, is required for mitotic diploid-specific recombination and repair and for meiosis.RDH54是酿酒酵母中的一种RAD54同源物,是有丝分裂二倍体特异性重组与修复以及减数分裂所必需的。
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果蝇的DmRAD54基因在P因子切除后的双链断裂修复中起关键作用,并在X射线损伤修复中与Ku70协同发挥作用。

The Drosophila melanogaster DmRAD54 gene plays a crucial role in double-strand break repair after P-element excision and acts synergistically with Ku70 in the repair of X-ray damage.

作者信息

Kooistra R, Pastink A, Zonneveld J B, Lohman P H, Eeken J C

机构信息

Department of Radiation Genetics and Chemical Mutagenesis, MGC, Leiden University Medical Center, Leiden, The Netherlands.

出版信息

Mol Cell Biol. 1999 Sep;19(9):6269-75. doi: 10.1128/MCB.19.9.6269.

DOI:10.1128/MCB.19.9.6269
PMID:10454573
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC84586/
Abstract

The RAD54 gene has an essential role in the repair of double-strand breaks (DSBs) via homologous recombination in yeast as well as in higher eukaryotes. A Drosophila melanogaster strain deficient in the RAD54 homolog DmRAD54 is characterized by increased X-ray and methyl methanesulfonate (MMS) sensitivity. In addition, DmRAD54 is involved in the repair of DNA interstrand cross-links, as is shown here. However, whereas X-ray-induced loss-of-heterozygosity (LOH) events were completely absent in DmRAD54(-/-) flies, treatment with cross-linking agents or MMS resulted in only a slight reduction in LOH events in comparison with those in wild-type flies. To investigate the relative contributions of recombinational repair and nonhomologous end joining in DSB repair, a DmRad54(-/-)/DmKu70(-/-) double mutant was generated. Compared with both single mutants, a strong synergistic increase in X-ray sensitivity was observed in the double mutant. No similar increase in sensitivity was seen after treatment with MMS. Apparently, the two DSB repair pathways overlap much less in the repair of MMS-induced lesions than in that of X-ray-induced lesions. Excision of P transposable elements in Drosophila involves the formation of site-specific DSBs. In the absence of the DmRAD54 gene product, no male flies could be recovered after the excision of a single P element and the survival of females was reduced to 10% compared to that of wild-type flies. P-element excision involves the formation of two DSBs which have identical 3' overhangs of 17 nucleotides. The crucial role of homologous recombination in the repair of these DSBs may be related to the very specific nature of the breaks.

摘要

RAD54基因在酵母以及高等真核生物中通过同源重组修复双链断裂(DSB)过程中发挥着重要作用。缺乏RAD54同源物DmRAD54的黑腹果蝇品系表现出对X射线和甲磺酸甲酯(MMS)的敏感性增加。此外,本文表明DmRAD54参与DNA链间交联的修复。然而,虽然在DmRAD54(-/-)果蝇中完全不存在X射线诱导的杂合性缺失(LOH)事件,但与野生型果蝇相比,用交联剂或MMS处理后,LOH事件仅略有减少。为了研究重组修复和非同源末端连接在DSB修复中的相对贡献,构建了DmRad54(-/-)/DmKu70(-/-)双突变体。与两个单突变体相比,在双突变体中观察到X射线敏感性有强烈的协同增加。用MMS处理后未观察到类似的敏感性增加。显然,在修复MMS诱导的损伤时,这两种DSB修复途径的重叠程度远低于修复X射线诱导的损伤时。果蝇中P转座元件的切除涉及位点特异性DSB的形成。在缺乏DmRAD54基因产物的情况下,切除单个P元件后无法获得雄性果蝇,与野生型果蝇相比,雌性果蝇的存活率降至10%。P元件切除涉及形成两个DSB,它们具有相同的17个核苷酸的3'突出端。同源重组在这些DSB修复中的关键作用可能与断裂的非常特殊的性质有关。