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E Soeda

Publications and source records attributed to E Soeda.

81 records · Page 5Linked to original sources

Similarity of nucleotide sequences around the origin of DNA replication in mouse polyoma virus and simian virus 40.

The nucleotide sequence around the origin of replication in DNA of mouse polyoma virus was determined by 32P labeling of the 3' terminus of the Hap II-5/Alu I-1 DNA fragment, with the use of DNA polymerase. The result coincided with our previous report on the 32P labeling, with the use of polynucleotide kinase, of the 5' terminus of the Hap II-5/Hha I-1 DNA fragment, which corresponds to the large part of the present fragment, Hap II-5/Alu I-1. A symmetrical (A+T)-rich region containing a five-A stretch (or a five-T stretch) was flanked by two small regions with a 2-fold rotational axis of symmetry. On comparison of the sequence near the replication origin of polyoma DNA with that in the corresponding region of simian virus 40 DNA, which was included in the EcoRI-G fragment sequenced by Weissman's group (Subramanian K.N., Dahr, R. & Weissman, S. M. (1977) J. Biol. Chem. 252, 355--367), a considerable similarity was detected. Several possible common sequences for important biological activities such as the starting of DNA replication and RNA synthesis were suggested.

Base Sequence↗

Nucleotide sequence of the simian virus 40 Hind-K restriction fragment.

The restriction fragment Hind-K represents 4.2% of the genome of Simian virus 40 (SV40) and is located near the middle of the late region. Its nucleotide sequence is reported here. It was mainly established by analysis of transcription products, synthesized by means of Escherichia coli RNA polymerase and nucleoside triphosphates, one of which was (alpha-32P)-labeled. Strand assignment was possible by hybridization of asymmetric, labeled transcripts of total SV40 DNA to filter-bound Hind-K fragment. Further information and unambiguous confirmation of the sequence was obtained by the use of direct DNA-sequencing methods. For this purpose the fragment was labeled at the 5' ends by means of polynucleotide kinase and [gamma-32P]ATP and redigested with a suitable restriction enzyme. The separated products were then either partially digested with snake venom diesterase for analysis by the 'wandering spot' method or partially degraded with the base-specific reagents dimethylsulphate or hydrazine for direct sequence analysis on gel. The Hind-K sequence is 219 base pairs long. The message strand is particularly rich in adenosine (39%) and purines. The nucleotide sequence cna unambiguously be translated into an amino acid sequence and the N-terminal codon of the viral protein VP1 gene could be identified. The amino-terminal part of VP1 is rich in proline and lysine. The nucleotide sequence of Hind-K codes also for the carboxyl-terminal part of the viral protein VP2 and VP3 genes, which partly overlap the VP1 gene.

Base Sequence↗

DNA fragmentation factor 45 (DFF45) gene at 1p36.2 is homozygously deleted and encodes variant transcripts in neuroblastoma cell line.

Recently, loss of heterozygosity (LOH) studies suggest that more than two tumor suppressor genes lie on the short arm of chromosome 1 (1p) in neuroblastoma (NB). To identify candidate tumor suppressor genes in NB, we searched for homozygous deletions in 20 NB cell lines using a high-density STS map spanning chromosome 1p36, a common LOH region in NB. We found that the 45-kDa subunit of the DNA fragmentation factor (DFF45) gene was homozygously deleted in an NB cell line, NB-1. DFF45 is the chaperon of DFF40, and both molecules are necessary for caspase 3 to induce apoptosis. DFF35, a splicing variant of DFF45, is an inhibitor of DFF40. We examined 20 NB cell lines for expression and mutation of DFF45 gene by reverse transcription (RT)-polymerase chain reaction (PCR) and RT-PCR-single-strand conformation polymorphism. Some novel variant transcripts of the DFF45 gene were found in NB cell lines, but not in normal adrenal gland and peripheral blood. These variants may not serve as chaperons of DFF40, but as inhibitors like DFF35, thus disrupting the balance between DFF45 and DFF40. No mutations of the DFF45 gene were found in any NB cell line, suggesting that the DFF45 is not a tumor suppressor gene for NB. However, homozygous deletion of the DFF45 gene in the NB-1 cell line may imply the presence of unknown tumor suppressor genes in this region.

Alternative Splicing↗