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Kawasaki disease: a novel feline virus transmitted by fleas?
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Is behavioural thermoregulation a factor in flea-to-human transmission of Yersinia pestis?
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The influence of feeding, photoperiod and selected solvents on the reproductive strategies of the water flea, Daphnia magna.
The influence of different feeding rates, reduced photoperiod and ethanol and acetone exposure on male production in Daphnia magna was investigated. Male production was observed under reduced photoperiod (8-h light:16-h dark) in all food levels. However, the sex ratio of daphnids fed 1x10(6) algae cells increased significantly from that of daphnids fed 15x10(6) algae cells (0.486+/-0.059 and 0.271+/-0.027, respectively). Under normal photoperiod (16-h light:8-h dark) and low food conditions (3.75x10(6) algae cells), a statistically significant increase in the sex ratio was observed in daphnids exposed to acetone at EPA acceptable solvent limits (0.1 ml/l). A shift back to parthenogenetic reproduction was observed in acetone-exposed daphnids at high food levels (15x10(6) algae cells). The results indicate that the reproductive strategies of females are influenced by phenological (i.e. reduced photoperiod), dietary and exogenous chemical cues.
Two-domain hemoglobin gene of the water flea Moina macrocopa: duplication in the ancestral Cladocera, diversification, and loss of a bridge intron.
Two cDNAs encoding the two-domain hemoglobin (Hb) chains of a crustacean Cladocera, Moina macrocopa, were cloned and their nucleotide (nt) sequences were determined. The amino acid (aa) sequences of both the gene products deduced from the nt sequences consisted of 348 residues and showed 98% identity with each other. These sequences together with the NH(2)-terminal aa sequences of the Hb chains determined after separation by two-dimensional gel electrophoresis showed that the Hb chains are synthesized as a secretory precursor with a signal peptide of 17 aa residues. The aa sequences of M. macrocopa Hb chains shared the following features with those of Daphnia Hb chains. Firstly, the signal peptide is followed by an NH(2)-terminal extension containing a threonine-rich sequence that might play a role in the multimerization of subunit chains. Secondly, the identity between the aa sequences of the first and second domains is exceptionally low. These facts suggest that duplication of the cladoceran Hb gene occurred before the divergence of families Moinidae and Daphniidae. Analysis of genomic DNA showed that the M. macrocopa Hb genes consist of two large repeated regions, encoding the first and second domains of Hb chains, respectively. The intron-exon organization of the first region of the M. macrocopa Hb genes was similar to that found in the Daphnia Hb genes, having the three-exon, two-intron structure characteristic of animal Hb genes. However, the intron bridging the two regions and the most downstream intron in the second region were missing in the Moina genes, providing a new example of intron loss. The following elements in the 5' flanking region were conserved in the Moina and Daphnia genes: (1) TATAAA, a typical TATA box sequence accompanied by a downstream sequence, GAAXAGCATCAGTT (the fourth residue X was G or A in Daphnia and absent in Moina); (2) CCAAT boxes, located upstream of the TATA box; (3) the binding sites for HIF-1 and GATA-1, also located upstream of the TATA box, that may be responsible for up-regulation of the cladoceran Hb genes under hypoxia.
Cloning and analysis of a cDNA encoding a two-domain hemoglobin chain from the water flea Daphnia magna.
A cDNA encoding a two-domain hemoglobin (Hb) chain of Daphnia magna was cloned and its nucleotide (nt) sequence of 1261 bp was determined. The nt sequence contained 74 bp of the leader sequence, 1047 bp of an open reading frame (ORF), and 119 bp of the 3'-untranslated region (UTR), excluding the polyadenylation tail. A sequence, AATACA, located 24 bp upstream from the polyA sequence was considered to be a polyadenylation signal. cDNA-derived amino acid (aa) sequence revealed that D. magna Hb chain is synthesized as a secretory precursor with a signal peptide of 18 aa. Mature D. magna Hb chain consists of 330-aa residues with a calculated molecular weight of 36227, which is composed of two large repeated domains, domain 1 and 2. Several key aa that are invariant in all or most of other Hb and required for functional heme-binding are conserved in each of the two domains. The N-terminal extension (pre-A segment) of domain 1 was unusually long and contained an unusual threonine-rich sequence. The homology between the aa sequences of the two domains (24% identity) was much lower than that observed in other two-domain Hb chains from clams or nematode. Hb mRNA level in D. magna reared under low oxygen concentration was more than 12 times higher than that in D. magna reared with sufficient aeration, indicating that the expression of Hb gene is regulated by mRNA level.
Cuticular hydrocarbons of the flea beetles, Aphthona lacertosa and Aphthona nigriscutis, biocontrol agents for leafy spurge (Euphorbia esula).
The adult beetles Aphthona lacertosa and Aphthona nigriscutis, used as biocontrol agents for leafy spurge, had a complex mixture of hydrocarbons on their cuticular surface consisting of alkanes, methylalkanes, alkenes and alkadienes as determined by gas chromatography-mass spectrometry. A trace amount of wax esters were present. In both species, the hydrocarbons were the major cuticular lipid class and the gas chromatographic profiles of the total hydrocarbons were similar. However, the profiles for the saturated hydrocarbon fraction were distinct for each species. Alkanes (n-alkanes and methyl-branched alkanes), alkenes and alkadienes comprised 26, 44 and 30%, respectively, for A. lacertosa, and 48, 26 and 26%, respectively, for A. nigriscutis, of the total hydrocarbons. The major methyl-branched hydrocarbons were 2-methylalkanes: 2-methyloctacosane and 2-methyltriacontane. The major monoene was hentriacontene and the major diene was tritriacontadiene. The species were unique in that a number of di- and trimethyl-branched alkanes were present in minor quantities in which the first methyl branch was on carbon 2 or 3. Examples of structures were 2,10-, 2,12-, 2,6-, 2,4- and 3,7-dimethylalkanes. 2,10,12-Trimethylalkanes and a 2,10,12,24-tetramethylalkane with one methylene between adjacent methyl branch points also were identified. The adjacent methyl branch points of the 2,4- and 2,10,12- and 2,10,12,24-methyl-branched alkanes appeared to cause additional fragmentations in the mass spectra. Dimethylalkanes with an odd number of carbons in the backbone of the molecule were identified as 2,23-dimethylnonacosane and 2,25-dimethylhentriacontane; their mass spectra also corresponded to mass spectra expected for a 2,6 branching sequence. However, a 2,6 branching sequence is not biosynthetically feasible because such a structure has a straight-chain tail with an odd number of carbon atoms beyond the last methyl branch point. The 2,23 and 2,25 branching sequences could be synthesized starting with a primer derived from the amino acid leucine which would account for both the even number of carbons between the branch points and an even number of carbons beyond the last methyl branch point.
On Dipetalonema manson-bahri n.sp., from the spring-hare, Pedetes surdaster larvalis, with a note on its development in fleas.
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The fine-structure of the epimastigote forms of Trypanosoma lewisi in the rectum of the flea, Nosopsyllus fasciatus.
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The hygroreaction of the larvae of the Oriental rat flea Xenopsylla cheopis Rothsch. (Siphonaptera: Pulicidae).
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The cat flea, Ctenocephalides felis felis (Bouché, 1835) as an intermediate host for cestodes.
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Behavioural aspects of the ecology of the sand martin flea Ceratophyllus styx jordani Smit (Siphonaptera).
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Control of turnip flea beetle by benzene hexachloride drilled with the seed.
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Myxomatosis and the rabbit flea.
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Myxomatosis and the rabbit flea.
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Hormones of the vertebrate host controlling ovarian regression and copulation of the rabbit flea.
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Does a pheromone-like factor from the nestling rabbit stimulate impregnation and maturation in the rabbit flea?
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