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Attraction to Carbon Dioxide from Feeding Resources and Conspecific Neighbours in Larvae of the Rhinoceros Beetle Trypoxylus Dichotomus

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Journal PLoS One
Date 2015 Nov 5
PMID 26536591
Citations 6
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Abstract

Saprophagous (feeding on decaying matter) insects often use carbon dioxide (CO2) as a cue for finding food. Humus-feeding larvae of the giant rhinoceros beetle Trypoxylus dichotomus exhibit a clumped distribution in natural microhabitats, but the mechanisms driving the distribution were unknown. Herein, I examined whether larvae use CO2 as a cue for fermented humus and aggregate in the vicinity of the food. I found that (i) larvae of T. dichotomus are strongly attracted to CO2, (ii) larvae orient toward highly fermented humus when given a choice between highly and poorly fermented humus, (iii) the highly fermented humus emits more CO2 than the poorly fermented humus, and (iv) larvae grow larger when fed highly fermented humus rather than poorly fermented humus. The clumped distribution of larvae is probably formed along the concentration gradient of CO2 induced by heterogeneity of fermented organic materials in soil. My laboratory experiments also revealed that larvae are chemically attracted to each other. Moreover, CO2 concentrations in soil were increased by the larval respiration, and small amounts of CO2 (much less than emitted during respiration by a single larva) were sufficient for larval attraction. These results suggest that not only response to fermented food resources, but also respiratory CO2 from conspecifics may lead to aggregation. Enhanced densities resulted in reduced weight gain under experimental conditions. However, exploiting a high-value resource at enhanced densities still led to greater body weight compared to individually exploiting a low-value resource. This demonstrates the adaptive value of the response to CO2 sources in this species.

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References
1.
Rogers C, Evans K, Parker J, Pappa V . Behavioural response of wheat bulb fly (Delia coarctata, Diptera: Anthomyiidae) larvae to the primary plant metabolite carbon dioxide. Bull Entomol Res. 2013; 103(6):675-82. DOI: 10.1017/S0007485313000382. View

2.
Wertheim B, van Baalen E, Dicke M, Vet L . Pheromone-mediated aggregation in nonsocial arthropods: an evolutionary ecological perspective. Annu Rev Entomol. 2004; 50:321-46. DOI: 10.1146/annurev.ento.49.061802.123329. View

3.
Johnson S, Nielsen U . Foraging in the dark - chemically mediated host plant location by belowground insect herbivores. J Chem Ecol. 2012; 38(6):604-14. DOI: 10.1007/s10886-012-0106-x. View

4.
Wang C, Gibb T, Bennett G, McKnight S . Bed bug (Heteroptera: Cimicidae) attraction to pitfall traps baited with carbon dioxide, heat, and chemical lure. J Econ Entomol. 2009; 102(4):1580-5. DOI: 10.1603/029.102.0423. View

5.
Grant A, Wigton B, Aghajanian J, OConnell R . Electrophysiological responses of receptor neurons in mosquito maxillary palp sensilla to carbon dioxide. J Comp Physiol A. 1995; 177(4):389-96. DOI: 10.1007/BF00187475. View