Intermittent medication of sulfadimethoxine and sulfamonomethoxine for the treatment of coccidiosis in domestic rabbits.
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Biomedical subjects
Publications and source records attributed to S Inouye.
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A fairly rapid and improved method for producing large amounts of highly pure apoaequorin, the apoprotein of aequorin which emits light on binding Ca2+, is described. The method consists of fusing the gene of the outer membrane protein A (ompA) secretion signal peptide of Escherichia coli to the apoaequorin gene and expressing the fused gene in the bacterium. The expressed protein is correctly cleaved in the process of being secreted across the cell membrane into the culture medium. The apoaequorin is subsequently purified by acid precipitation and DEAE-cellulose chromatography, yielding a product of greater than 95% purity. The availability of pure apoaequorin makes possible detailed studies of the physical-chemical properties of this Ca2(+)-binding protein and allows for the preparation of pure aequorin for use in highly specific and sensitive assays for Ca2+.
As in the case of retrovirus proviruses, most of the Drosophila copia-like transposable elements so far examined are bounded by 5'TG...CA3' and inserted into the chromosome without obvious site-specificity. In the other copia-like elements, 297, HMS Beagle and 17.6 (refs 5-7), terminal dinucleotides (5'TG...CA3') are completely absent and, instead, 5'(A)GT is present at least at one of the termini. One important feature of these three elements may be frequent insertion into 'TATA' boxes, since the three of four insertion sites so far examined were TATA boxes, two for H3 histone genes and one for a cuticle gene. Because of the importance of this type of insertion, we extensively analysed site-specificity using 17.6 as a model. Our results, described here, suggest that insertion of 17.6 takes place in a site-specific fashion, using a target 5'ATAT corresponding to the major portion of the consensus TATA box, TATAATAAT.
The largest group of transposable elements in Drosophila melanogaster, copia-like elements, share some important structural features with and are intimately related in evolution to vertebrate retroviruses. To further clarify the relationship between retroviruses and copia-like transposable elements, we set out to determine the complete nucleotide sequence of the genome of 17.6, which has long terminal repeats homologous in nucleotide sequence to those of avian leukaemia-sarcoma virus. We report here that 17.6 contains three long open reading frames comparable with gag, pol and env genes in retrovirus. At the level of amino acid sequence, the longest open reading frame of 17.6 includes a coding sequence similar to that for reverse transcriptase, suggesting a role for this enzyme in the life cycle of some Drosophila copia-like elements, analogous to the situation in retrovirus.
We have shown previously that Drosophila cells contain virus-like particles (VLPs) containing 5-kilobase (kb) RNA that hybridizes to a transposable element, termed copia. We have suggested that VLPs and copia are derivatives of viral particles and proviral forms, respectively, of 'copia' retrovirus, a putative Drosophila retrovirus. To further clarify the relationship between copia and copia-related RNA in VLPs (VLP H-RNA), we determined and compared their nucleotide sequences. VLP H-RNA was found to be an unspliced, genome-sized transcript of copia, and, like retroviral genome RNA, VLP H-RNA is terminally redundant with termini localized in the long terminal repeats (LTRs) of copia. VLP H-RNA contains two long open reading frames (ORFs), one of which includes the coding sequence for a predominant VLP protein of relative molecular mass (Mr) 31,000 (31K). Here we show that, in contrast to 17.6 ORF2, ORFs of copia have no extensive amino-acid sequence homology to the RT region of the reverse transcriptase of retrovirus in vertebrates. Because of a one-base insertion/deletion, the two ORFs in VLP H-RNA are fused and become a single, longer ORF in a genomic copia.
We have developed a sandwich enzyme-linked immunosorbent assay for serotyping dengue viruses. In this assay, we used antibody from dengue hemorrhagic fever patients for detection of flavivirus common antigens to confirm virus isolation in C6/36 cells and that from hyperimmune mouse ascitic fluids for serotyping. The anti-dengue antibody was immobilized on microplate wells for capturing of dengue antigens, which were then sandwiched with the same biotinylated antibody. Then the biotin in the solid phase was detected with peroxidase-conjugated streptavidin. We found that all the dengue strains tested were unequivocally identified by this method.
We devised a simple procedure for titration of varicella-zoster virus (VZV) DNA in throat swabs from varicella patients. DNA which was extracted from throat swabs, together with known copy numbers of a cloned VZV DNA fragment, were 10-fold serially diluted and used as template in PCR. The PCR products, after heat denaturation, again serially diluted in 1.5 M NaCl and adsorbed to microplate wells. Then, biotin-labeled DNA probes were hybridized with the immobilized DNA. The hybridization signal was produced by streptavidin-conjugated beta-galactosidase and a fluorogenic enzyme substrate. By comparing the titration curves of a clinical specimen with those of the cloned fragment, of which detection limit was about 10 copies, we estimated the copy numbers of VZV DNA in the specimen. With this technique, we evaluated the degree of potential contagiousness of the patient along the course of infection: we found that varicella patients possessed highest quantity of VZV DNA in the throat on the first day of illness.
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