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The uvsC gene of Aspergillus nidulans is a homolog of the RAD51 gene of Saccharomyces cerevisiae. However, with respect to its effects on UV mutagenesis, it differs from the yeast gene, since it seems to be required for UV mutagenesis; however, this conclusion is based only on data from resting conidia. To further clarify the functional role of the uvsC gene, we tested the UV mutability of strains bearing a uvsC mutation in resting as well as in germinating conidia, by the p-fluoro-phenyl-alanine resistance test. We also evaluated the mutability of the uvsE mutant which belongs to the same epistatic group. Our results show that the uvsC and uvsE genes do not have a significant role in the mutagenic UV-repair pathway. Received: 20 January 1998 / Accepted: 22 April 1998  相似文献   

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Mutator activity in uvs mutants of Aspergillus nidulans   总被引:1,自引:0,他引:1  
Summary The frequency of selenate-resistant spontaneous mutants was determined among the conidia of two uvs +, two allelic uvsB, one uvsD, three allelic uvsC and three allelic uvsE strains of Aspergillus nidulans. In the uvsB, uvsD, uvsC and uvsE mutants the median frequencies of mutation were respectively 1.7, 1.8, 8.7 and 4.0 times as high as in the uvs + strains. The selenate resistance resulted from mutation at the chromosomal loci sB or sC. It is concluded that the uvs alleles enhance spontaneous mutation in chromosomal genes.  相似文献   

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The uvsC gene of Aspergillus nidulans is a homolog of the RAD51 gene of Saccharomyces cerevisiae. However, with respect to its effects on UV mutagenesis, it differs from the yeast gene, since it seems to be required for UV mutagenesis; however, this conclusion is based only on data from resting conidia. To further clarify the functional role of the uvsC gene, we tested the UV mutability of strains bearing a uvsC mutation in resting as well as in germinating conidia, by the p-fluoro-phenyl-alanine resistance test. We also evaluated the mutability of the uvsE mutant which belongs to the same epistatic group. Our results show that the uvsC and uvsE genes do not have a significant role in the mutagenic UV-repair pathway.  相似文献   

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Two genes of Aspergillus nidulans are known to function in UV mutagenesis, but have been assigned to different epistasis groups: uvsC, which is also required for meiosis and mitotic recombination, and uvsI, which may have no other function. To clarify their role in error-prone repair and to investigate their interaction, uvsI and uvsC single and uvsI;uvsC double mutant strains were further tested for mutagen sensitivities and characterized for effects on mutation. Spontaneous and induced frequencies were compared in forward and reverse mutation assays. All results confirmed that uvsI and uvsC are members of different epistasis groups, and demonstrated that these uvs mutants have very different defects in UV mutagenesis. The uvsI strains showed wild-type frequencies in all forward mutation tests, but greatly reduced spontaneous and UV-induced reversion of some, but not other, point mutations. In contrast, uvsC had similar effects in all assay systems: namely pronounced mutator effects and greatly reduced UV mutagenesis. Interestingly, the uvsI;uvsC double mutant strains differed from both single mutants; they clearly showed synergism for all types of reversion tested: none were ever obtained spontaneously, nor after induction by UV or EMS (ethylmethane sulfonate). Based on these results, we conclude that uvsI is active in a mutation-specific, specialized error-prone repair process in Aspergillus. In contrast, uvsC, which is now known to show sequence homology to recA, has a basic function in mutagenic UV repair in addition to recombinational repair, similar to recA of Escherichia coli. Received: 23 September 1996 / Accepted: 2 December 1996  相似文献   

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【背景】嗜热Ⅱ型内含子是一类由内含子RNA和内含子编码蛋白(intron encoded protein,IEP)组成且在高温条件下能够在染色体上高频移动的反转录转座子,目前已被开发为高效基因打靶工具Thermotargetron,阐明其活性催化位点,对深入研究其“归巢”机制及开发新型遗传工具具有重要意义。【目的】筛选嗜热Ⅱ型内含子Tel3c/4c-RT结构域关键活性位点,并获得失活反转录功能的内含子编码蛋白突变体。【方法】先利用生物信息学技术分析并筛选可能影响Tel3c/4c-RT反转录功能的关键氨基酸位点;然后对筛选到的关键氨基酸位点进行定点突变,并以Thermotargetron质粒为基础构建失活反转录功能的突变型嗜热Ⅱ型内含子打靶系统;最后以大肠杆菌lacZ基因为例,通过蓝白斑计数分析突变型Thermotargetron系统的打靶效率,体内验证Tel3c/4c-RT结构域关键活性位点突变对嗜热Ⅱ型内含子打靶效率的影响。【结果】共筛选到15个可能影响反转录活性的氨基酸位点,包括D194、I195、S196、G197、C198、F199、Q241、G242、R274、Y275、A2...  相似文献   

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To determine if DNA configuration, gene locus, and flanking sequences will affect homologous recombination in the phytopathogenic fungus Cercospora nicotianae, we evaluated and compared disruption efficiency targeting four cercosporin toxin biosynthetic genes encoding a polyketide synthase (CTB1), a monooxygenase/O-methyltransferase (CTB3), a NADPH-dependent oxidoreductase (CTB5), and a FAD/FMN-dependent oxidoreductase (CTB7). Transformation of C. nicotianae using a circular plasmid resulted in low disruption frequency. The use of endonucleases or a selectable marker DNA fragment flanked by homologous sequence either at one end or at both ends in the transformation procedures, increased disruption efficiency in some but not all CTB genes. A split-marker approach, using two DNA fragments overlapping within the selectable marker, increased the frequency of targeted gene disruption and homologous integration as high as 50%, depending on the target gene and on the length of homologous DNA sequence flanking the selectable marker. The results indicate that the split-marker approach favorably decreased ectopic integration and thus, greatly facilitated targeted gene disruption in this important fungal pathogen. The GenBank/EMBL/DDBJ accession numbers for the sequence data reported in this article are: CTB1, AY649543, CTB3, DQ355149, CTB5, DQ991507, and CTB7, DQ991509.  相似文献   

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