[Insect allergy. The role of various insects].
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1. Atrazine (3 daily i.p. doses of 0.20 mg/kg or 10 ppb in the water for 14 days) did not change the xenobiotic metabolizing enzyme activities (XME) towards the substrates aldrin epoxidase (AE), NADPH-cytochrome c reductase (NCCR), 7-ethoxyresorufin O-deethylase (EROD), 1-chloro-2,4-dinitro-benzene (CDNB) and 1,2-dichloro-4-nitrobenzene (DCNB) in trout liver (Oncorhynchus mykiss) compared to the controls. 2. Various treatment regimens of atrazine in a semisynthetic diet changed the XME activities towards AE, NCCR, CDNB and DCNB in the cabbage moth (Mamestra brassica L.) soft tissues and midgut compared to the controls. 3. A life-long cabbage diet induced the XME activity towards CDNB in the cabbage moth soft tissues and midgut, whereas no differences in the activities towards AE, NCCR and DCNB were observed compared to controls on a semi-synthetic diet. 4. The cabbage moth GSTs bound poorly to a glutathione (GSH)-linked epoxy-activated Sepharose 6-B; however, based on the CDNB activity recovered by a GSH elution, there were no differences in the molecular weights of the partly purified subunits (27, 26 and 25 kDa) or the pIs (5.4, 4.8, and 4.1) of the molecules in the soft tissues or midguts from respectively atrazine treated and control cabbage moth.(ABSTRACT TRUNCATED AT 250 WORDS)
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Sf9 cells infected with a recombinant baculovirus containing the gene for human prorenin were cultured in the presence of [3H]mannose. In vivo labeled prorenin was isolated by immunoprecipitation from the culture medium and digested with Pronase. The oligosaccharide structures on the resulting glycopeptides were analyzed by a combination of lectin, ion-exchange, paper, and high-pressure liquid chromatography. Of the N-linked oligosaccharides isolated from the Sf9-produced prorenin, 98% were of a truncated (trimannosyl) high-mannose type, approximately two-thirds of which contained a fucose residue linked to the reducing N-acetylglucosamine. The remaining 2% constituted a mixture of high-mannose-type structures containing six, seven, or eight mannose residues; none of these structures were core-fucosylated. None of the oligosaccharide structures recovered from recombinant prorenin synthesized by Sf9 cells were phosphorylated or contained any other form of charge. Furthermore, assays for UDP-GlcNAc-lysosomal-enzyme N-acetylglucosamine phosphotransferase demonstrated no activity above background in lysates prepared from Sf9 cells. Blotting of Sf9 cell lysates with an 125I-labeled, soluble form of the cation-independent mannose 6-phosphate receptor failed to detect any proteins carrying the mannose 6-phosphate recognition signal. Taken together, the data suggest that Sf9 cells do not synthesize high-mannose-type oligosaccharides containing mannose 6-phosphate, and consequently it appears unlikely that these cells utilize the mannose 6-phosphate receptor mediated pathway for targeting of lysosomal enzymes.
The indirect flight muscles (IFMs) of Lethocerus (giant water bug) and Drosophila (fruitfly) are asynchronous: oscillatory contractions are produced by periodic stretches in the presence of a Ca(2+) concentration that does not fully activate the muscle. The troponin complex on thin filaments regulates contraction in striated muscle. The complex in IFM has subunits that are specific to this muscle type, and stretch activation may act through troponin. Lethocerus and Drosophila have an unusual isoform of the Ca(2+)-binding subunit of troponin, troponin C (TnC), with a single Ca(2+)-binding site near the C-terminus (domain IV); this isoform is only in IFMs, together with a minor isoform with an additional Ca(2+)-binding site in the N-terminal region (domain II). Lethocerus has another TnC isoform in leg muscle which also has two Ca(2+)-binding sites. Ca(2+) binds more strongly to domain IV than to domain II in two-site isoforms. There are four isoforms in Drosophila and Anopheles (malarial mosquito), three of which are also in adult Lethocerus. A larval isoform has not been identified in Lethocerus. Different TnC isoforms are expressed in the embryonic, larval, pupal and adult stages of Drosophila; the expression of the two IFM isoforms is increased in the pupal stage. Immunoelectron microscopy shows the distribution of the major IFM isoform with one Ca(2+)-binding site is uniform along Lethocerus thin filaments. We suggest that initial activation of IFM is by Ca(2+) binding to troponin with the two-site TnC, and full activation is through the action of stretch on the complex with the one-site isoform.
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