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324<br />

S. SIMONI & M. CASTAGNOLI<br />

Luh, H. K., & Croft, B. A., (2001). Quantitative classification of life-style types in predaceous phytoseiid<br />

mites. Experimental <strong>and</strong> Applied Acarology, 25, 403–424.<br />

McCann, K. Hastings, A., & Huxel, G. R. (1998). Weak trophic interactions <strong>and</strong> the balance of nature.<br />

Nature, 395, 794–798.<br />

McMurtry, J. A. (1992). Dynamics <strong>and</strong> potential impact of ‘generalist’ phytoseiids in agroecosystems <strong>and</strong><br />

possibilities for establishment of exotic species. Experimental <strong>and</strong> Applied Acarology, 14, 371–382.<br />

McMurtry, J. A., & Croft, B. A. (1997). Life-styles of phytoseiid mites <strong>and</strong> their roles in biological<br />

control. Annual Revue of Entomology, 42, 291–321.<br />

McMurtry J. A., & Rodriguez, J. G. (1987). Nutritional ecology of phytoseiid mites. In F. Slansky & J. G.<br />

Rodriguez (Eds.), Nutritional ecology of insects, mites, spiders, <strong>and</strong> related invertebrates (pp. 609–<br />

644). New York: John Wiley <strong>and</strong> Sons.<br />

Messelink, G. J., Van Steenpaal, S. E. F., & Ramakers, P. M. J. (2006). Evaluation of phytoseiid<br />

predators for control of western flower thrips on greenhouse cucumber. Biocontrol, 51, 753–768.<br />

Messelink, G. J., Maanen, R. V., Van Steenpaal, S. E. F., & Janssen, A. (2008). Biological control of<br />

thrips <strong>and</strong> whiteflies <strong>by</strong> a shared predator: Two pests are better than one. Biological Control, 44,<br />

372–379.<br />

Nachman, G. (1981). Temporal <strong>and</strong> spatial dynamics of an acarine predator-prey system. Journal of<br />

Animal Ecology, 50, 435–451.<br />

Nagelkerke, C. J., & Sabelis, M. W. (1996). Hierarchical levels of spatial structure <strong>and</strong> their<br />

consequences for the evolution of sex allocation in mites <strong>and</strong> other arthropods. American Naturalist,<br />

148, 16–39.<br />

Nagelkerke, C. J., & Sabelis, M. W. (1998). Precise control of sex allocation in pseudo-arrhenotokous<br />

phytoseiid mites. Journal of Evolutionary Biology, 11, 649–684.<br />

Nomikou, M., Janssen, A., Schraag, R., & Sabelis, M. W. (2001). Phytoseiid predators as potential<br />

biological control agents for Bemisia tabaci. Experimental <strong>and</strong> Applied Acarology, 25, 271–291.<br />

Palevsky, E. P., Weintraub, P., Zchori-Fein, E., Argov, A., Castagnoli, M., Liguori, M., et al. (2006).<br />

Development of an economic rearing <strong>and</strong> transport system for an arid adapted strain of the<br />

predatory mite Neoseiulus, californicus for spider mite control. XII International Congress of<br />

Acarology, session “Biological control”, 21st–26th August 2006, Amsterdam (The Netherl<strong>and</strong>s) (in<br />

press, abstract book: 154–155).<br />

Pilkington, L. J., Messelink, G., Van Lenteren, J. C., & Le Mottee, K. (2009). Protected biological control<br />

– biological pest management in the greenhouse industry. Biological Control,<br />

doi:10.1016/j.biocontrol.2009.05.022<br />

Riechert, S. E., & Lawrence, K. (1997). Test for predation effects of single versus multiple species of<br />

generalist predators: Spider <strong>and</strong> their insect prey. Entomologia Experimentalis Applicata, 84,<br />

147–155.<br />

Rudolf, V. H. W. (2008). The impact of cannibalism in the prey on predator-prey dynamics. Ecology, 89,<br />

3116–3127<br />

Sabelis, M. W., (1986). The functional response of predatory mites to the density of two spotted spider<br />

mites. In J. A. J. Metz, & O. Diekman (Eds.), Lecture notes in biomathematics 68: The dynamics of<br />

physiologically structured populations (pp. 298–321). Berlin: Springer-Verlag.<br />

Sabelis, M. W., & Bakker, F. M. (1992). How predatory mites cope with the web of their tetranychid<br />

prey: A functional view on dorsal chaetotaxy in the Phytoseiidae. Experimental <strong>and</strong> Applied<br />

Acarology, 16, 203–225.<br />

Sabelis, M. W., & Janssen, A. (1994). Evolution of life-history patterns in the Phytoseiidae. In M. A.<br />

Houck (Ed.), Mites: Ecological <strong>and</strong> evolutionary analyses of life history patterns (pp. 70–98).<br />

London, UK: Chapman <strong>and</strong> Hall.<br />

Sabelis, M. W., & Van der Baan, H. E. (1983). Location of distant spider mite colonies <strong>by</strong> phytoseiid<br />

predators: Demonstration of specific kairomones emitted <strong>by</strong> Tetranychus urticae <strong>and</strong> Panonychus<br />

ulmi. Entomologia Experimentalis et Applicata, 33, 303–314.<br />

Schausberger, P., & Croft, B. A. (1999). Activity, feeding, <strong>and</strong> development among larvae of specialist <strong>and</strong><br />

generalist phytoseiid mite species (Acari: Phytoseiidae). Environmental Entomology, 28, 322–329.<br />

Schausberger, P., & Croft, B. A. (2000). Nutritional benefits of intraguild predation <strong>and</strong> cannibalism<br />

among generalist <strong>and</strong> specialist predaceous mites. Ecological Entomology, 25, 473–480.<br />

Schausberger, P., & Croft, B. A. (2001). Kin recognition <strong>and</strong> larval cannibalism <strong>by</strong> adult females of<br />

specialist predaceous mites. Animal Behaviour, 61, 459–464.

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