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Evaluation of the CatanDog's tag to prevent flea infestations, inhibit flea reproduction or repel existing flea infestations on cats.

To evaluate the ability of the CatanDog's tag to eliminate fleas, inhibit egg production and prevent flea infestations, six domestic shorthaired cats were randomly allocated to two treatment groups and housed individually in stainless steel metabolic cages. Three cats were each fitted with a CatanDog's tag; the other three cats were not fitted with tags and served as controls. Following a 42-day acclimation period, each of the six cats was infested with 100, 1-3 day post-emergence, adult Ctenocephalides felis felis (Bouché) on days 0, 7, 14, 21, and 27. Flea egg production was determined by collecting and enumerating eggs 2, 4 and 6 days after each infestation. Viability of eggs was determined by placing 100 eggs recovered from each cat in rearing media in an insect rearing chamber and determining adult emergence at 28 days. Adult fleas were recovered from cats 6 days post-infestation by thoroughly combing each cat to remove fleas. To determine if the tags provided protection from infestation, the six cats were placed into a 8.53mx4.36 m room with 400 cat fleas for 3h. Cats were then combed to remove and enumerate fleas. The CatanDog's tags had no significant effect upon egg production, egg viability, or adult fleas infesting cats. In addition there was no difference in the numbers of fleas recovered from the cats placed in the flea-infested room.

Animals↗

Effect of 0.29% w/w fipronil spray on adult flea mortality and egg production of three different cat flea, Ctenocephalides felis (Bouché), strains infesting cats.

To evaluate the effect of fipronil spray on adult flea mortality and flea egg production of three different cat flea, Ctenocephalides felis (Bouché) strains, 30 domestic short hair cats were randomly allocated into six groups of five cats each. On day 0, cats in groups 2, 4 and 6 were treated with fipronil at 5-6ml/kg. Cats in groups 1, 3 and 5 served as untreated controls. On days -2, 7, 14, 21, and 28 each cat was infested with 50 adult cat fleas. Groups 1 and 2 were infested with fleas from the Kansas1 Colony (KS1) strain. Groups 3 and 4 were infested with a recently colonized cat flea strain from Florida (R6). Groups 5 and 6 were infested with fleas from the ARC strain. The adulticidal activity of fipronil was determined by flea comb counts 48h after treatment and then 48h after each reinfestation. Any flea eggs produced during the infestations were collected and counted prior to the 48h comb counts. Fipronil spray was > or = 99.5% effective against adults of all three cat flea strains when applied during an active infestation. Fipronil spray provided > or = 98.2 and > or = 99.5% control of adult fleas and egg production, respectively, for all strains through week 2. On days 23 and 30 control of R6 adults and egg production was significantly lower than either the ARC or the KS1 strain. On day 30, control of R6 adults and egg production was 77.3 and 87.3%, respectively. Control of KS1 adults and egg production on day 30 was significantly lower than the ARC strain. Fipronil provided > or = 99.5 and > or = 99.9% control of ARC fleas and egg production, respectively, throughout the entire study. The susceptibility to fipronil for the three strains was also evaluated on filter paper pesticide bioassays. The R6 strain was found to be less susceptible than the KS1 and ARC strains. The LC(95) estimates for the strains were 10.13, 4.77 and 2.62mg/m(2) for the R6, ARC and KS1 strains, respectively.

Animals↗

Pilot study to assess the effects of early flea exposure on the development of flea hypersensitivity in cats.

This pilot study was to determine if early oral flea exposure reduces the incidence of flea allergy dermatitis (FAD) in cats. Eighteen kittens, assigned to three groups, received no flea exposure, oral flea exposure or flea infestation for 12 weeks. Then all the kittens were exposed continually to fleas for 31 weeks. Sensitization was monitored using intradermal testing (IDT), in vitro measurement of anti-flea saliva immunoglobulin E (IgE) and development of FAD. There was no statistically significant difference between groups in IDT reactions, in vitro data or clinical scores. The development of FAD was not associated with the presence of anti-flea saliva IgE. However, the development of a delayed reaction to flea bite was associated with symptoms after flea exposure. Although not statistically significant, the FAD scores in the oral group were lower than in the controls. Further studies are required to determine the role of oral flea exposure in the development of FAD in cats.

Animals↗

Consumption of flea faeces and eggs by larvae of the cat flea, Ctenocephalides felis.

The effects of the consumption of flea faeces and non-viable eggs on larval development in the cat flea Ctenocephalides felis (Bouché) (Siphonaptera: Pulicidae) were investigated. Only 13.3% of larvae developed into adults when fed a diet of male or female flea faeces alone; however, 90% of larvae developed into adults when fed on flea faeces supplemented with non-viable flea eggs. When fed with non-viable eggs alone, larvae did not develop into adults. Nevertheless, non-viable eggs may provide critical supplemental nutrients, lacking in flea faeces and required for larval development. None of the larvae fed on flea faeces or non-viable eggs alone formed a cocoon. A diet of flea faeces alone significantly extended the second as well as third larval stadia compared to larvae fed on diets containing non-viable eggs. It is suggested that the cannibalism of fertile eggs may limit population growth in the cat flea.

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Efficacy of selamectin in the treatment and control of clinical signs of flea allergy dermatitis in dogs and cats experimentally infested with fleas.

OBJECTIVE: To determine whether treatment with selamectin would reduce clinical signs of flea allergy dermatitis (FAD) in dogs and cats housed in flea-infested environments. DESIGN: Randomized controlled trial. ANIMALS: 22 dogs and 17 cats confirmed to have FAD. PROCEDURE: Animals were housed in carpeted pens capable of supporting the flea life cycle and infested with 100 fleas (Ctenocephalides felis) on days -13 and -2 and on alternate weeks with 10 to 20 fleas. On day 0, 11 dogs and 8 cats were treated with selamectin (6 mg/kg [2.7 mg/lb]). Dogs were retreated on day 30; cats were retreated on days 30 and 60. All animals were examined periodically for clinical signs of FAD. Flea counts were conducted at weekly intervals. RESULTS: Throughout the study, geometric mean flea counts exceeded 100 for control animals and were < or = 11 for selamectin-treated animals. Selamectin-treated cats had significant improvements in the severity of miliary lesions and scaling or crusting on days 42 and 84, compared with conditions on day -8, and in severity of excoriation on day 42. In contrast, control cats did not have any significant improvements in any of the clinical signs of FAD. Selamectin-treated dogs had significant improvements in all clinical signs on days 28 and 61, but in control dogs, severity of clinical signs of FAD was not significantly different from baseline severity at any time. CONCLUSIONS AND CLINICAL RELEVANCE: Results suggest that topical administration of selamectin, even without the use of supplementary environmental control measures and with minimal therapeutic intervention, can reduce the severity of clinical signs of FAD in dogs and cats.

Administration, Topical↗

Species of flea found on cats and dogs in south west England: further evidence of their polyxenous state and implications for flea control.

Fleas were collected from 60 dogs and 32 cats living in south west England. Ctenocephalides felis felis and Ctenocephalides canis were found on both dogs and cats, with a marked preponderance of C felis felis on both species. More female fleas than males were found. There was no apparent tendency for C canis to be found more often in rural areas than in suburban areas. The survey confirmed the polyxenous nature of both species of flea. The significance of this state is discussed in relation to flea control, and the author concludes that it is unlikely that all significant flea species could be completely eliminated from the environment of pet animals.

Animals↗

The effects of flea egg consumption on larval cat flea (Siphonaptera: Pulicidae) development.

Cat flea larvae feeding on the feces of adult fleas that were maintained on cats and were provided with frozen flea eggs ad libitum each consumed an average of 21.7 +/- 3.9 eggs and developed rapidly with 100% adult emergence. In contrast, 93.4% of larvae held individually and provided with only flea feces did not survive to the adult stage. Developing larvae consumed eggs in the presence of yeast and rearing diet. In a second experiment, larvae provided with flea feces and eggs and maintained at 55% RH consumed 26.9 +/- 2.7 eggs per larva, compared to larvae maintained at 75% RH that consumed 20.4 +/- 1.9 eggs per larva.

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Techniques for rearing and handling body lice, Oriental rat fleas, and cat fleas.

The authors describe techniques for handling and rearing large numbers of body lice (Pediculus humanus humanus L.), oriental rat fleas (Xenopsylla cheopis (Rothschild)), and cat fleas (Ctenocephalides felis felis (Bouché)).Body lice may be fed on man or on domestic rabbits. In the latter case, the lice are kept on woollen patches in glass dishes at 30 degrees C and 60% relative humidity. The patches are placed on the clipped belly of a rabbit once a day and the lice allowed to feed. Eggs are deposited on the patches, and the adult lice are transferred to new patches every two or three days.The adults of oriental rat fleas are fed on white rats, and the larvae are reared in a medium of dry sand and powdered beef-blood. Cocoons are placed in emergence funnels from which pure cultures drop into collecting jars. Cat fleas are raised in a very similar manner, but the adults are fed on dogs.

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Cat flea (Siphonaptera: Pulicidae) cocoon formation and development of naked flea pupae.

The rate of cat flea, Ctenocephalides felis (Bouché), pupal development and the stimuli responsible for successful cocoon formation were investigated by rearing flea pupae without an enclosing cocoon. Female larvae pupated an average 12.1 h earlier than males, and female pupae developed to the adult stage an average 1.6 d earlier than males. When larvae were not allowed to orient against a perpendicular structure, only 2.2% of these larvae were able to spin an enclosing cocoon. Although these naked flea pupae had no enveloping cocoon, 96.5% survived to become adults. Gentle sifting of the larval medium 0-12 and 12-24 h after cocoons were formed resulted in 13.7 and 3.5% of the larvae emerging, respectively. Over 40% of those larvae did not spin a second cocoon, but developed as naked flea pupae.

Animals↗

[Flea bites caused by Archaeopsylla erinacei, the hedgehog flea].

A hedgehog flea was the cause of multiple flea bites in a 48-year-old patient. The main host of the hedgehog flea is the European hedgehog, but the flea was also found in different furry mammals, such as polecats, brown rats and foxes. It was not previously known that Archaeopsylla erinacei attacks man.

Animals↗

Studies on the host-flea relationship. III Nutritional efficacy of blood meal of rat fleas Xenopsylla cheopis (Rothschild) and Xenopsylla astia (Rothschild).

Rat fleas, Xenopsylla cheopis (Rothschild) and X. astia (Rothschild) were fed artificially on whole blood, milk and blood fractions in an attempt to identify the factor(s) which trigger ovarian maturation. Blood from the white rat, house rat, white mouse, frog, chick and man fed artificially induced vitellogenesis in over 50% of fleas of all combinations except in X. cheopis fed on chick blood. Gut distension alone had no influence on initiation of vitellogenesis as judged by feeding milk. Washed white rat blood cells resuspended in saline initiated vitellogenesis, but plasma did not. Addition to plasma of ATP, glutathione and serotonin did not initiate yolk deposition. However, raising the protein concentration of the rat plasma had a decided influence on vitellogenesis. The protein concentration of the diet appeared to be a decisive factor in initiating yolk deposition in these fleas. A change from whole blood to plasma diet caused all the mature oocytes to resorb in both the species of fleas.

Animals↗

Studies on host-flea relationship. IV. Progesterone and cortisone do not influence the reproductive potentials of rat fleas Xenopsylla cheopis (Rothschild) and X. astia (Rothschild).

Experiments carried out to study the influence of progesterone and cortisone on the initiation of ovarian maturation, fecundity rate and fertility of the two species of rat fleas Xenopsylla cheopis (Rothschild) and X. astia (Rothschild) indicated that these hormones do not exert any influence on their reproductive potentials. This along with earlier observations show that the factors which regulate ovarian maturation and fecundity in these rat fleas are different from those of the rabbit flea Spilopsyllus cuniculi (Dale).

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A comparison of jump performances of the dog flea, Ctenocephalides canis (Curtis, 1826) and the cat flea, Ctenocephalides felis felis (Bouché, 1835).

Jump performances of Ctenocephalides canis and Ctenocephalides felis felis have been measured and compared on unfed young imagos. The mean length of the C. felis felis jump was 19.9+/-9.1cm; minimum jump was 2cm, and the maximum was one 48cm. The C. canis jump was significantly longer (30.4+/-9.1cm; from 3 to 50cm). For height jump evaluation, grey plastic cylindric tubes measuring 9cm in diameter were used. Their height was increasing from 1 to 30cm by 1cm. Groups of 10 fleas of the same species were deposited on the base of the tube. The number of fleas which succeeded in jumping above the tube was recorded. The mean height jump carried out by 50% of fleas was calculated after linearisation of the curves: it was 15.5 and 13.2cm for C. canis and C. felis, respectively. The highest jump was 25 for C. canis and 17cm for C. felis.

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