• Title/Summary/Keyword: Fission Yeast

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Identification of a Regulatory Element Required for 3’-End Formation in Transcripts of rhp51$^+$, a recA Homolog of the Fission Yeast Schizosaccharomyces pombe

  • Yeun Kyu Jang
    • Animal cells and systems
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    • v.3 no.4
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    • pp.413-415
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    • 1999
  • Our previous report demonstrated that the rhp51$^+$, a recA and RAD51 homolog of the fission yeast, encodes three transcripts of 1.9, 1.6 and 1.3 kb which have at least six polyadenylation sites. The 3'-end of the gene alone can direct the formation of multiple, discrete 3'ends of the transcripts. To identify the regulatory element required for the 3'-end formation of -rhp51$^+$ deletion mapping analysis was performed. Northern blot analysis revealed that the 254-bp DNA fragment including 4 distinct poly (A) sites downstream from the Hindlll site, is crucial for normal 3'-end formation. Deletion of the 3'-terminal AU rich region caused appearance of read-through RNA, leading to enhancement of survival rate of the rhp51 deletion mutant in response to DNA damaging agent, methylmethane sulfonate (MMS). The results imply that the rhp51$^+$ system may be useful for molecular analysis of the 3'-end formation of RNA in the fission yeast.

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Genome-Wide Identification of Haploinsufficiency in Fission Yeast

  • Baek, Seung-Tae;Han, Sang-Jo;Nam, Mi-Young;Kim, Young-Dae;Kim, Li-La;Lee, Hyun-Jee;Heo, Kyung-Sun;Lee, Hye-Mi;Lee, Min-Ho;Park, Song-Kyu;Maeng, Pil-Jae;Park, Young-Woo;Lee, Sung-Hou
    • Journal of Microbiology and Biotechnology
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    • v.18 no.6
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    • pp.1059-1063
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    • 2008
  • Abnormal phenotypes resulting from haploinsufficiency (HI) are due to the loss of one allele. Recent studies in budding yeast have shown that HI originates from insufficient protein levels or from a stoichiometric imbalance between subunits of protein complexes. In humans, however, HI often involves transcription factors. Therefore, the species differences in HI and the molecular mechanisms of species-specific HI remain under investigation. In this study, HI in fission yeast was systematically surveyed. HI in fission yeast affected genes related to signaling and to basic cellular processes, as observed in budding yeast. These results suggest that there are species differences in HI and that the HI that occurs in fission yeast is intermediate to HI in budding yeast and humans.

Fission yeast Pci2 has function in mRNA export as a component of TREX-2 (분열효모 Pci2가 TREX-2 구성요소로서 mRNA 방출에 미치는 영향)

  • Park, Jin Hee;Yoon, Jin Ho
    • Korean Journal of Microbiology
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    • v.54 no.4
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    • pp.325-329
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    • 2018
  • Thp1/PCID2, PCI domain-containing protein, is a component of the evolutionally conserved TREX-2 complex linking mRNA transcription and export. In fission yeast, Schizosaccharomyces pombe, the pci2 (SPBC1105.07c) gene encodes a PCI domain-containing protein that is predicted as a fission yeast orthologue of Thp1 (in budding yeast)/PCID2 (in human). Repression of pci2 expression inhibited both growth and mRNA export. And over-expression of pci2 also exhibited growth retardation with slight accumulation of $poly(A)^+$ RNA in the nucleus. Moreover, yeast two-hybrid and co-immunoprecipitation analysis showed that the Pci2 protein physically interacted with Sac3 and Dss1, which are members of TREX-2 complex. These observations support that the S. pombe Pci2 protein, as a component of TREX-2 complex, is implicated in mRNA export.

Heterologous Expression of Fission Yeast Heavy Metal Transporter, SpHMT-1, Confer Tolerance to Cadmium in Cytosolic Phytochelatin-Deficient Saccharomyces cerevisiae (분열효모 SpHMT1을 세포질 파이토킬레이트를 생성하지 않는 효모에서 발현으로 인한 카드뮴에 대한 저항성 증가)

  • Lee, Sang-Man
    • Journal of Life Science
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    • v.19 no.12
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    • pp.1685-1689
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    • 2009
  • Phytochelatins (PCs) are small polypeptides synthesized by PC synthase (PCS). They are present in various living organisms including plants, fission yeast, and some animals. The presumed function of PCs is the sequestration of cytosolic toxic heavy metals like cadmium (Cd) into the vacuoles via vacuolar membrane localized heavy metal tolerance factor 1 (HMT-1). HMT-1 was first identified in fission yeast (SpHMT-1), and later in Caenorhabdtis (CeHMT-1). Recently, its homolog has also been found in PC-deficient Drosophila (DmHMT-1), and this homolog has been shown to be involved in Cd detoxification, as confirmed by the heterologous expression of DmHMT-1 in fission yeast. Therefore, the dependence of HMT-1 on PC in Cd detoxification should be re-evaluated. I heterologously expressed SpHMT-1 in cytosolic PC-deficient yeast, Saccharomycea cerevisiae, to understand the dependence of HMT-1 on PC. Yeast cells expressing SpHMT-1 showed increased tolerance to Cd compared with control cells. This result indicates that SpHMT-1 is not strictly correlated with PC production on its function. Moreover, yeast cells expressing SpHMT-1 showed increased tolerance to exogenously applied glutathione (GSH) compared with control cells, and the tolerance to Cd was further increased by exogenously applied GSH, while tolerance in control cells was not. These results indicate that the function of SpHMT-1 in Cd detoxification does not depend on PCs only, and suggest that SpHMT-1 may sequester cytosolic GSH-Cd complexes into the vacuole.

Transcriptional Regulation of the Schizosaccharomyces pombe Gene Encoding Glutathione S-Transferase I by a Transcription Factor Pap1

  • Kim Hong-Gyum;Kim Byung-Chul;Kim Kyunghoon;Park Eun-Hee;Lim Chang-Jin
    • Journal of Microbiology
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    • v.42 no.4
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    • pp.353-356
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    • 2004
  • In a previous study, a gst gene was isolated from the fission yeast Schizosaccharomyces pombe. This gene was dubbed gstI, and was characterized using the gstI -lacZ fusion plasmid pYSH2000. In this work, four additional fusion plasmids, pYSHSDl, pYSHSD2, pYSHSD3 and pYSHSD4, were constructed, in order to carry (respectively) 770, 551, 358 and 151 bp upstream regions from the translational initiation point. The sequence responsible for induction by aluminum, mercury and hydrogen peroxide was located in the range between -1,088 and -770 bp upstream of the S. pombe gstI gene. The same region was identified to contain the nucleotide sequence responsible for regulation by Papl, and has one puta­tive Papl binding site, TTACGTAT, located in the range between $-954\~-947$ bp upstream of the gstI gene. Negatively acting sequences are located between -1,088 and -151 bp. These findings imply that the Papl protein is involved in basal and inducible transcription of the gstI gene in the fission yeast S. pombe.

Distinct functional roles of peroxiredoxin isozymes and glutathione peroxidase from fission yeast, Schizosaccharomyces pombe

  • Kim, Ji-Sun;Bang, Mi-Ae;Lee, Song-Mi;Chae, Ho-Zoon;Kim, Kang-Hwa
    • BMB Reports
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    • v.43 no.3
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    • pp.170-175
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    • 2010
  • Chaperone;Glutathione peroxidase;Peroxiredoxin;Schizosaccharomyces pombe;Thioredoxin peroxidase;To investigate the differences in the functional roles of peroxiredoxins (Prxs) and glutathione peroxidase (GPx) of Schizosaccharomyces pombe, we examined the peroxidase and molecular chaperone properties of the recombinant proteins. TPx (thioredoxin peroxidase) exhibited a capacity for peroxide reduction with the thioredoxin system. GPx also showed thioreoxin-dependent peroxidase activity rather than GPx activity. The peroxidase activity of BCP (bacterioferritin comigratory protein) was similar to that of TPx. However, peroxidase activity was not observed for PMP20 (peroxisomal membrane protein 20). TPx, PMP20, and GPx inhibited thermal aggregation of citrate synthase at 43$^{\circ}C$, but BCP failed to inhibit the aggregation. The chaperone activities of PMP20 and GPx were weaker than that of TPx. The peroxidase and chaperone properties of TPx, BCP, and GPx of the fission yeast are similar to those of Saccharomyces cerevisiae. The fission yeast PMP20 without thioredoxin-dependent peroxidase activity may act as a molecular chaperone.

Effects of Cdc31, a component of TREX-2 complex, on growth and mRNA export in fission yeast (분열효모에서 TREX-2 복합체의 구성요소인 Cdc31이 생장과 mRNA export에 미치는 영향)

  • Koh, Eun-Jin;Yoon, Jin Ho
    • Korean Journal of Microbiology
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    • v.52 no.3
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    • pp.383-387
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    • 2016
  • In fission yeast, Schizosaccharomyces pombe, the cdc31 gene encodes a member of the conserved $Ca^{2+}$-binding centrin/CDC31 family, which is a component of spindle pole body. Here, we demonstrate that the S. pombe cdc31p is also a component of TREX-2 complex, which influences mRNA export from the nucleus to the cytoplasm. Repression of the cdc31 gene expression caused growth defect with accumulation of $poly(A)^+$ RNA in the nucleus. On the other hand, over-expression of cdc31 exhibited no defects of both growth and bulk mRNA export, but showed somewhat longer cell morphology. Yeast two-hybrid analysis showed that Cdc31 interacted with Sac3 and Pci2, the subunits of TREX-2 complex. These results suggest that S. pombe Cdc31 is also involved in mRNA export as a component of TREX-2 complex.

Effects of Sus1, a component of TREX-2 complex, on growth and mRNA export in fission yeast (분열효모에서 TREX-2 복합체의 구성요소인 Sus1이 생장 및 mRNA 방출에 미치는 영향)

  • Bae, Soo Jeong;Yoon, Jin Ho
    • Korean Journal of Microbiology
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    • v.53 no.1
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    • pp.49-54
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    • 2017
  • Sus1 / ENY2 is a tiny conserved protein that is involved in chromatin remodeling and mRNA biogenesis. Sus1 is associated to two nuclear complexes, the transcriptional coactivator SAGA and the nuclear pore associated TREX2. In fission yeast, Schizosaccharomyces pombe, ortholog of Sus1 / ENY2 was identified from the genome database. Tetrad analysis showed that the S. pombe sus1 is not essential for growth. However, deletion of the sus1 gene caused cold-sensitive growth retardation with slight accumulation of $poly(A)^+$ RNA in the nucleus. And the Sus1-GFP protein is localized mainly in the nucleus. Yeast two-hybrid analysis and co-immunoprecipitation experiment showed that Sus1 interacts with Sac3, another subunit of TREX2 complex. These results suggest that S. pombe Sus1 is also involved in mRNA export from the nucleus as a component of TREX-2 complex.

Mutation Analysis of Synthetic DNA Barcodes in a Fission Yeast Gene Deletion Library by Sanger Sequencing

  • Lee, Minho;Choi, Shin-Jung;Han, Sangjo;Nam, Miyoung;Kim, Dongsup;Kim, Dong-Uk;Hoe, Kwang-Lae
    • Genomics & Informatics
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    • v.16 no.2
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    • pp.22-29
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    • 2018
  • Incorporation of unique barcodes into fission yeast gene deletion collections has enabled the identification of gene functions by growth fitness analysis. For fine tuning, it is important to examine barcode sequences, because mutations arise during strain construction. Out of 8,708 barcodes (4,354 strains) covering 88.5% of all 4,919 open reading frames, 7,734 barcodes (88.8%) were validated as high-fidelity to be inserted at the correct positions by Sanger sequencing. Sequence examination of the 7,734 high-fidelity barcodes revealed that 1,039 barcodes (13.4%) deviated from the original design. In total, 1,284 mutations (mutation rate of 16.6%) exist within the 1,039 mutated barcodes, which is comparable to budding yeast (18%). When the type of mutation was considered, substitutions accounted for 845 mutations (10.9%), deletions accounted for 319 mutations (4.1%), and insertions accounted for 121 mutations (1.6%). Peculiarly, the frequency of substitutions (67.6%) was unexpectedly higher than in budding yeast (~28%) and well above the predicted error of Sanger sequencing (~2%), which might have arisen during the solid-phase oligonucleotide synthesis and PCR amplification of the barcodes during strain construction. When the mutation rate was analyzed by position within 20-mer barcodes using the 1,284 mutations from the 7,734 sequenced barcodes, there was no significant difference between up-tags and down-tags at a given position. The mutation frequency at a given position was similar at most positions, ranging from 0.4% (32/7,734) to 1.1% (82/7,734), except at position 1, which was highest (3.1%), as in budding yeast. Together, well-defined barcode sequences, combined with the next-generation sequencing platform, promise to make the fission yeast gene deletion library a powerful tool for understanding gene function.