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Questing height of nymphs of the bush tick, Haemaphysalis longicornis, and its closely related species, H. mageshimaensis: correlation with body size of the host

Published online by Cambridge University Press:  06 May 2004

T. TSUNODA
Affiliation:
Public Health Laboratory of Chiba Prefecture, 666-2 Nitona-cho, Chuo-ku, Chiba City 260-8715, Japan
S. TATSUZAWA
Affiliation:
Department of Zoology, Faculty of Science, Kyoto University, Kyoto 606-8502, Japan

Abstract

The questing height (i.e. ambush height) of ticks on a plant plays an important role in host selection. To test the hypothesis that the questing height of ticks in a locality had adapted to the body size of the host in that locality, we examined the questing height of nymphs of the ticks, Haemaphysalis longicornis and H. mageshimaensis, at 7 locations in Japan. Sika deer, Cervus nippon, is the primary host of these ticks and there is considerable geographical variation in the body size of sika deer. Multiple regression analysis revealed that the questing height in the field was influenced by the height of the plants and by the body size of deer at a location. However, the questing height of ticks at some locations may have been constrained by the height of the plants and might not be the same as their intrinsic questing height. When ticks were placed in vertical glass tubes in the laboratory, the questing height of ticks from a locality was correlated with the mean body size of deer at that locality. Therefore, the prominent cue determining the questing height of H. longicornis and H. mageshimaensis seems to be the body size of the host deer.

Type
Research Article
Copyright
2004 Cambridge University Press

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References

REFERENCES

CARROLL, J. F., KLUN, J. A. & SCHMIDTMANN, E. T. (1995). Evidence for kairomonal influence on selection of host-ambushing sites by adult Ixodes scapularis (Acari: Ixodidae). Journal of Medical Entomology 32, 119125.CrossRefGoogle Scholar
COMBES, C., FOURNIER, A., MONÉ, H. & THÉRON, A. (1994). Behaviours in trematode cercariae that enhance parasite transmission: patterns and processes. Parasitology 109 (Suppl.), S3S13.CrossRefGoogle Scholar
FOSTER, S. A. & ENDLER, J. A. (1999). Geographic Variation in Behavior. Oxford University Press, New York/Oxford.
FUJIMOTO, K. (1988). Ecological studies on ixodid ticks. 5. The effect of humidity on the oviposition and development of Haemaphysalis longicornis and H. flava (Acarina: Ixodidae). Japanese Journal of Sanitary Zoology 39, 2733.Google Scholar
GALLIVAN, G. J., CULVERWELL, J., GIRDWOOD, R. & SURGEONER, G. A. (1995). Ixodid ticks of impala (Aepyceros melampus) in Swaziland: effect of age class, sex, body condition and management. South African Journal of Zoology 30, 178186.CrossRefGoogle Scholar
HAYAMA, S., FURUBAYASHI, K., MITANI, N. & YAMANE, M. (1994). Regression of bamboo grass in the Tanzawa Mountains and the status of sika deer. WWF Japan Science Report 2, 2147. (In Japanese with English summary.)Google Scholar
HOOGSTRAAL, H., ROBERTS, H. S., KOHLS, G. M. & TIPTON, V. J. (1968). Review of Haemaphysalis (Kaiseriana) longicornis Neumann (resurrected) of Australia, New Zealand, New Caledonia, Fiji, Japan, Korea, and northeastern China and USSR, and its parthenogenetic and bisexual populations (Ixodoidea, Ixodidae). Journal of Parasitolgy 54, 11971213.CrossRefGoogle Scholar
HOOGSTRAAL, H. & SANTANA, F. J. (1974). Haemaphysalis (Kaiseriana) mageshimaensis (Ixodoidea: Ixodidae): human and wild and domestic mammal hosts, and distribution in Japan, Taiwan, and China. Journal of Parasitology 60, 866869.CrossRefGoogle Scholar
JAPAN METEOROLOGICAL AGENCY (2000). Climatic Atlas of Japan. Tokyo, The Japan Meteorological Agency.
KALTZ, O. & SHYKOFF, J. A. (1998). Local adaptation in host–parasite systems. Heredity 81, 361370.CrossRefGoogle Scholar
KAKUDA, H., SHIRAISHI, S. & UCHIDA, T. (1990). Seasonal fluctuations of populations and effects of temperatures on development and growth in the tick, Haemaphysalis flava. Journal of the Faculty of Agriculture, Kyushu University 35, 1726.Google Scholar
KAJI, K. (2001). Population dynamics and population characteristics of sika deer on Nakanoshima Island, Lake Toya. 1

We arbitrarily applied English titles to these references.

In Researches on Conservation and Management of Ezo sika deer in Hokkaido, 1996–2000(ed. Hokkaido Government), pp. 917. Hokkaido Government, Sapporo. (in Japanese.)
KAJI, K., KOIZUMI, T. & OHTAISHI, N. (1988). Effects of resource limitation on the physical and reproductive condition of Sika deer on Nakanoshima Island, Hokkaido. Acta Theriologica 33, 187208.CrossRefGoogle Scholar
KITAOKA, S. (1961). Physiological and ecological studies on some ticks. VII. Parthenogenetic and bisexual races of Haemaphysalis bispinosa in Japan and experimental crossing between them. The National Institute of Animal Health Quaterly 1, 142149.Google Scholar
KOGANEZAWA, M., INUI, T. & KITAHARA, M. (1986). Body weight and external carcass measurements of sika deer (Cervus nippon Temminck) in Nikko-Ashio Mountains, Tochigi Prefecture, Japan. Memoirs of Tochigi Prefectural Museum 4, 2953. (In Japanese with English summary.)Google Scholar
LANE, R. S., KLEINJAN, J. E. & SCHOELER, G. B. (1995). Diel activity of nymphal Dermacentor occidentalis and Ixodes pacificus (Acari: Ixodidae) in relation to meteorological factors and host activity periods. Journal of Medical Entomology 32, 290299.CrossRefGoogle Scholar
LEES, A. D. (1948). The sensory physiology of the sheep tick, Ixodes ricinus L. The Journal of Experimental Biology 25, 145207.Google Scholar
LOYE, J. E. & LANE, R. S. (1988). Questing behavior of Ixodes pacificus (Acari: Ixodidae) in relation to meteorological and seasonal factors. Journal of Medical Entomology 25, 391398.CrossRefGoogle Scholar
McMAHON, C. & GUERIN, P. M. (2002). Attraction of the tropical bont tick, Amblyomma variegatum, to human breath and to the breath components acetone, NO and CO2. Naturwissenschaften 89, 311315.Google Scholar
MITCHELL, B., McCOWAN, D. & NICHOLSON, I. A. (1976). Annual cycles of body weight and condition in Scottish Red deer, Cervus elaphus. Journal of Zoology 180, 107127.CrossRefGoogle Scholar
MOORING, M. S., McKENZIE, A. A. & HART, B. L. (1996). Role of sex and breeding status in grooming and total tick load of impala. Behavioral Ecology and Sociobiology 39, 259266.CrossRefGoogle Scholar
NAMBA, N. (1958). Ecological studies on Haemaphysalis bispinosa, a harmful tick in the pasture of northern Japan. Research Bulletin of the Hokkaido National Agricultural Experiment Station 50, 199. (In Japanese with English summary.)Google Scholar
OCHIAI, K. & ASADA, M. (1995). Growth in the body size of sika deer (Cervus nippon) on the Boso Peninsula, central Japan. Journal of the Natural History Museum and Institute, Chiba 3, 223232. (In Japanese with English summary.)Google Scholar
OHTAISHI, N. (1986). Preliminary memorandum of classification, distribution and geographic variation on Sika deer. Mammal Science 53, 1317. (In Japanese.)Google Scholar
OLIVER Jr., J. H., TANAKA, K. & SAWADA, M. (1973). Cytogenetics of ticks (Acari: Ixodoidea). 12. Chromosome and hybridization studies of bisexual and parthenogenetic Haemaphysalis longicornis races from Japan and Korea. Chromosoma 42, 269288.Google Scholar
PIANKA, E. R. (1978). Evolutionary Ecology, 2nd Edn. Harper and Row, New York.
REA, J. G. & IRWIN, S. W. (1994). The ecology of host-finding behavior and parasite transmission: past and future perspectives. Parasitology 109 (Suppl.), S31S39.Google Scholar
RECHAV, Y., NORVAL, R. A. I., TANNOCK, J. & COLBORNE, J. (1978). Attraction of the tick Ixodes neitzi to twigs marked by the klipspringer antelope. Nature, London 275, 310311.CrossRefGoogle Scholar
SAITO, Y. & HOOGSTRAAL, H. (1973). Haemaphysalis (Kaiseriana) mageshimaensis sp.n. (Ixodoidea: Ixodidae), a Japanese deer parasite with bisexual and parthenogenetic reproduction. Journal of Parasitology 59, 569578.Google Scholar
SONENSHINE, D. E. (1993). Biology of Ticks, vol. 2. Oxford University Press, Oxford/New York.
STEWART, A. J. A. (2001). The impact of deer on lowland woodland invertebrates: a review of the evidence and priorities for future research. Forestry 74, 259270.CrossRefGoogle Scholar
TAKATSUKI, S. (1980). The effects of sika deer (Cervus nippon) on the growth of Pleioblastus chino. Japanese Journal of Ecology 30, 18.Google Scholar
1TAKATSUKI, S. (1998). Individual analysis of sika deer. In Research Reports on Sika Deer on Mt. Goyo, Northern Honshu (ed. Takatsuki, S. ), pp. 3139. Iwate Government, Morioka. (In Japanese.)
1TAKATSUKI, S., MINAMI, M. & OHNISHI, N. (1992). External measurement of sika deer on Kinkazan Island. In Research Reports on Live Capturing of Sika Deer on Kinkazan Island, Northern Japan (ed. Takatsuki, S.), pp. 1624. Faculty of Science, Tohoku University, Sendai. (In Japanese.)
TSUNODA, T. & MORI, K. (2000). No distributional association between the tick Haemaphysalis longicornis (Acari: Ixodidae) and plant surface area. Ecological Research 15, 357359.CrossRefGoogle Scholar
YANO, Y., SHIRAISHI, S. & UCHIDA, T. A. (1988). Effects of humidity on development and growth in the tick, Haemaphysalis longicornis. Journal of the Faculty of Agriculture, Kyushu University 32, 141146.Google Scholar