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Biomedical subjects

Sakura Sakajiri

Publications and source records attributed to Sakura Sakajiri.

7 recordsLinked to original sources

Histone deacetylase inhibitors profoundly decrease proliferation of human lymphoid cancer cell lines.

Methylation of tumor suppressor genes is frequently observed in human cancers. These genes are silenced by histone deacetylase (HDAC) recruited by methylated DNA in their promoter regions. HDAC removes acetyl groups from histones and prevents the basic transcriptional machinary access to the target gene, leading to transcriptional repression. HDAC inhibitors (HDACIs) can restore the expression of the tumor suppressor and/or cell cycle regulatory genes in cancer cells and block the cellular proliferation of these cells. In this study, we investigated the in vitro antiproliferative activities of the HDACIs, suberoylanilide hydroxamic acid (SAHA), and valproic acid against 14 human lymphoid cancer cell lines. All of these cell lines were sensitive to the antiproliferative effects of the HDACI. SAHA induced either G1 or G2-M arrest as well as apoptosis. SAHA downregulated cyclin D1 and D2, and upregulated p53, p21, and p27. Chromatin immunoprecipitation analysis revealed a remarkable increase in the level of acetylated histones associated with the p21 promoter after SAHA treatment. In nude mice, SAHA significantly inhibited growth of a mantle cell lymphoma without major toxic side effects. In summary, HDACIs are promising therapeutic agents for human lymphoid cancers.

Animals↗

Methylation status analysis of cell cycle regulatory genes (p16INK4A, p15INK4B, p21Waf1/Cip1, p27Kip1 and p73) in natural killer cell disorders.

Natural killer (NK) cell disorders are rare diseases. Genetic abnormalities of the several tumor suppressor genes, including p15INK4B, p16INK4A/p14ARF, p53, p73, and Rb genes have been reported. Deletions and point mutations of these genes are frequently detected in these diseases. It has been reported that tumor suppressor genes are inactivated by DNA methylation of the promoter region and/or first exon of the genes in a variety of human cancers. In this study we analyze the methylation status of the genes associated with cell cycle regulation, including p16INK4A, p15INK4B, p21/Waf1/Cip1, p27/Kip1, p73, and p14ARF, by methylation specific (MS) PCR and/or bisulfite sequencing. We examined 29 cases of NK cell disorders (five aggressive NK cell leukemia/lymphoma, three blastic NK cell lymphoma/leukemia, five nasal NK cell lymphoma, three myeloid/NK cell precursor acute leukemia, 13 chronic NK lymphocytosis). We found methylation of the first exon of the p16INK4A gene in two cases (one aggressive, one blastic), and methylation of the p14ARF gene in one aggressive NK cell leukemia. Bisulfite sequencing revealed that methylation of the p15 and p27 genes was rare in these disorders. MS-PCR suggested that the p73 and p21 genes were methylated in seven cases, respectively (p73: one blastic, one nasal, five chronic; p21: one myeloid/NK, one aggressive, one nasal, and four chronic); bisulfite sequencing confirmed that methylated alleles of these genes were dominant in the samples except three cases (one myeloid/NK, one aggressive, and one chronic) in which methylated alleles of the p21 genes were less than 34% of all alleles. These results suggested that inactivation of the cell cycle regulatory genes by DNA methylation could be associated with tumorigenesis in NK cell disorders, not only aggressive subtypes but also chronic subtype.

Base Sequence↗

Mxi1 isoforms are expressed in hematological cell lines and normal bone marrow.

Mxi1 protein is a basic helix-loop-helix, leucine zipper (bHLHZIP) transcriptional factor, which dimerizes with the Max protein. This heterodimer binds a specific DNA sequence (E-box) and suppresses transcription of target genes. On the other hand, c-Myc protein is also a bHLHZIP protein that dimerizes with Max, binds the identical E-box sequence but activates transcription of the target genes. We report that hematopoietic cells have three novel Mxi1 transcripts: Mxi-D lacks exon 3, which encodes the basic region; Mxi-ND lacks the N-terminal mSin3 binding region and the DNA binding region; and Mxi-NF lacks the N-terminal mSin3 binding region. In normal bone marrow and hematological cell lines, the dominantly expressed isoforms are Mxi-D and full-length Mxi1 (Mxi-F). In GST-pull down assays, the Mxi-D protein binds the Max protein and the PHA2 regions of mSin3 proteins. Whereas the Mxi-F/Max heterodimer binds the E-box sequence, Mxi-D/Max heterodimer can not bind this sequence in electrophoretic mobility shift assays. In reporter gene assay, Mxi-D suppresses transcription as strongly as Mxi-F. In colony formation assay using Rat1 fibroblast cells, Mxi-D cannot suppress clonal growth stimulated by c-Myc as strongly as Mxi-F. In summary, Mxi-D may play an important role in the c-Myc family protein network acting as a dominant negative isoform of Mxi-F since: i) Mxi-D can dimerize with Max in vitro; ii) Mxi-D/Max heterodimers cannot bind E-box in vitro, iii) Mxi-D cannot suppress clonal growth stimulated by c-Myc.

Basic Helix-Loop-Helix Proteins↗

B-cell marker negative (CD7+, CD19-) Epstein-Barr virus-related pyothorax-associated lymphoma with rearrangement in the JH gene.

Pyothorax-associated lymphoma (PAL) develops decades after receiving artificial pneumothorax for pulmonary tuberculosis. The lymphomas, develop in tissue affected by long-standing severe inflammatory process. Most cases demonstrate diffuse large B-cell lymphoma. We present a patient with T-cell phenotype-positive and B-cell phenotype-negative (CD7+, CD43+, CD19-, and CD20-) PAL. Southern blot hybridization using immunglobulin heavy chain J region (IgH) gene probe revealed a monoclonal rearrangement, and hybridization using T-cell receptor beta chain (TCR) gene probe revealed a germline configuration. This indicates that the tumor origin was of B-lymphocytes. Chromosomal abnormality of the lymphoma was complicated. It suggested that many transformations occurred. In the transformation process, probably B-cell antigens were lost, and T-cell antigens were aberrantly expressed.

Aged↗

A novel chromosomal translocation t(1;14)(q25;q32) in pre-B acute lymphoblastic leukemia involves the LIM homeodomain protein gene, Lhx4.

Chromosome 1q21-25 is one of the hotspots of chromosomal abnormalities including translocations and duplications in hematological malignancies. This would suggest that oncogene(s) reside in this region. We have cloned the junctional sequence of t(1;14)(q25;q32) in pre-B acute lymphoblastic leukemia cells by an inverse PCR method. A novel sequence was fused to the joining region of the immunoglobulin heavy chain gene. We confirmed this rearrangement by Southern blot analysis, genomic PCR and fluorescence in situ hybridization. We found a coding sequence which is homologous to the mouse Lhx4 cDNA sequence 17 kb from the breakpoint. The human Lhx4 gene encodes 390 amino-acids, including one tandem pair of LIM domains and one homeodomain. The human Lhx4 gene consists of six exons. Lhx4 protein is very homologous to human Lhx3 protein except in the N-terminal region. The transcripts of the Lhx4 gene were not detected in adult multiple tissues analysed by Northern blotting, but were detected in the leukemic cells carrying t(1;14)(q25;q32) by reverse-transcription PCR. The protein expression of Lhx4 in these leukemic cells was confirmed by Western blot analysis. Lhx4 activated the reporter gene carrying the mouse alpha-glycoprotein subunit promoter region, which is regulated by Lhx3. LIM protein and homeodomain protein genes are frequently involved in translocations of hematological malignancies. The Lhx4 gene is deregulated in the leukemic cells and Lhx4 protein may play an important role, possibly as an activator, in leukemogenesis.

Acute Disease↗

Epstein-Barr virus-associated T-cell acute lymphoblastic leukaemia.

Epstein-Barr virus (EBV) is frequently detected in haematological malignancies, including Burkitt's lymphomas/leukaemias, Hodgkin's diseases and non-Hodgkin's lymphomas. However, immature T-cell malignancies associated with EBV have not been reported previously. We report a patient with T-cell acute lymphoblastic leukaemia (T-ALL), whose leukaemic cells had EBV, confirmed by Southern blotting and in situ hybridization. The EBV existed in episomal form and was detected in most leukaemic cells, but not in bystander normal B-cells. The leukaemic cells, massively infiltrated into the liver and spleen, were resistant to chemotherapy. EBV might be associated with tumorigenesis of T-ALL, and characteristic clinical features of the patient.

Adult↗

Molecular analysis of oncogenes, ras family genes (N-ras, K-ras, H-ras), myc family genes (c-myc, N-myc) and mdm2 in natural killer cell neoplasms.

Natural killer (NK) cell neoplasms are rare diseases. Frequent abnormalities of the tumor suppressor genes Rb, p53, p15INK4B, p16INK4A and p14ARF have been reported. However, no oncogenes associated with tumorigenesis of NK cell neoplasms have been reported so far. We analyzed the status of oncogenes including N-ras, K-ras, H-ras, c-myc, N-myc and mdm2 by Southern blot, PCR-SSCP, western blot analysis and immunohistochemical staining. We analyzed four cell lines derived from NK cell neoplasms and 31 clinical samples with five subclasses of NK cell neoplasms. We found no point mutations of the ras family genes. We detected no mutations in the c-myc and N-myc genes. No overexpression of c-Myc protein was detected by western blot analysis. Although we found neither amplification nor rearrangement of the mdm2 gene, we found high expression of MDM2 protein in some cases by western blot analysis. Immunohistochemical staining confirmed the overexpression of MDM2 protein. We found 14 cases with overexpression of MDM2 protein out of 15 cases (93%) with four subclasses of NK cell neoplasms except chronic NK lymphocytosis. Our previous and these results suggested that the expression level of MDM2 protein is independent of the status of the p14ARF, p53, Rb genes. MDM2 protein might independently contribute to carcinogenesis of NK cell neoplasms. Although the number of the cases we analyzed was not large, alterations of ras and myc family genes may rarely contribute to tumorigenesis in NK cell neoplasms. In contrast, overexpression of MDM2 might be associated with tumorigenesis of NK cell neoplasms, especially aggressive subclasses.

Blotting, Southern↗