Chapin, F. S. & Díaz, S. Interactions between changing climate and biodiversity: Shaping humanity’s future. PNAS 2117, 6295–6296 (2020).
Google Scholar
Thackeray, S. J. et al. Phenological sensitivity to climate across taxa and trophic levels. Nature 535, 241–245 (2016).
Google Scholar
Scranton, K. & Amarasekare, P. Predicting phenological shifts in a changing climate. PNAS 114, 13212–13217 (2017).
Google Scholar
Madrigal-González, J. et al. Disentangling the relative role of climate change on tree growth in an extreme Mediterranean environment. Sci. Total Environ. 642, 619–628 (2018).
Google Scholar
Angilletta, M. J. Thermal adaptation: A Theoretical And Empirical Synthesis (Oxford University Press, 2009).
Google Scholar
Andresen, E. Effects of season and vegetation type on community organization of Dung beetles in a tropical dry forest. Biotropica 37, 291–300 (2005).
Google Scholar
Liberal, C. N., Farias, A. M. I. & Meiado, M. V. How habitat change and rainfall affect dung beetle diversity in Caatinga, a Brazilian semi-arid ecosystem. J. Insect Sci. 11, 114 (2011).
Google Scholar
Nunes, C. A., Braga, R. F., Figueira, J. E. C., Neves, F. D. S. & Fernandes, G. W. Dung beetles along a tropical altitudinal gradient: Environmental filtering on taxonomic and functional diversity. PLoS One 11, e0157442 (2016).
Google Scholar
da Silva, P. G. & Cassenote, S. Environmental drivers of species composition and functional diversity of dung beetles along the Atlantic Forest-Pampa transition zone. Austral Ecol. 44, 786–799 (2019).
Google Scholar
Alvarado, F., Salomão, R. P., Hernandez-Rivera, Á. & de Araujo Lira, A. F. Different responses of dung beetle diversity and feeding guilds from natural and disturbed habitats across a subtropical elevational gradient. Acta Oecol. 104, 103533 (2020).
Google Scholar
Barragán, F., Moreno, C. E., Escobar, F., Halffter, G. & Navarrete, D. Negative impacts of human land use on dung beetle functional diversity. PLoS One 6, e17976 (2011).
Google Scholar
Costa, C. et al. Variegated tropical landscapes conserve diverse dung beetle communities. PeerJ 5, e3125 (2017).
Google Scholar
Gómez-Cifuentes, A., Gómez, V. C. G., Moreno, C. E. & Zurita, G. A. Tree retention in cattle ranching systems partially preserves dung beetle diversity and functional groups in the semideciduous Atlantic forest: The role of microclimate and soil conditions. Basic Appl. Ecol. 34, 64–74 (2019).
Google Scholar
Salomão, R. P. et al. Urbanization effects on dung beetle assemblages in a tropical city. Ecol. Indic. 103, 665–675 (2019).
Google Scholar
Correa, C. M., Lara, M. A., Puker, A., Noriega, J. A. & Korasaki, V. Quantifying responses of dung beetle assemblages to cattle grazing removal over a short-term in introduced Brazilian pastures. Acta Oecol. 110, 103681 (2021).
Google Scholar
Romero-Alcaraz, E. & Avila, J. M. Effect of elevation and type of habitat on the abundance and diversity of scarabaeoid dung beetles (Scarabaeoidea) assemblages in a Mediterranean area from Southern Iberian Peninsula. Zool. Stud. 39, 351–359 (2000).
Halffter, G. & Arellano, L. Response of dung beetle diversity to human-induced changes in a tropical landscape. Biotropica 34, 144–154 (2002).
Google Scholar
Rios-Diaz, C. L. et al. Sheep herding in small grasslands promotes dung beetle diversity in a mountain forest landscape. J. Insect Conserv. 25, 13–26 (2021).
Google Scholar
Krell, F. T., Krell-Westerwalbesloh, S., Weiß, I., Eggleton, P. & Linsenmair, K. E. Spatial separation of Afrotropical dung beetle guilds: A trade-off between competitive superiority and energetic constraints (Coleoptera: Scarabaeidae). Ecography 26, 210–222 (2003).
Google Scholar
Verdú, J. R., Díaz, A. & Galante, E. Thermoregulatory strategies in two closely related sympatric Scarabaeus species (Coleoptera: Scarabaeinae). Physiol. Entomol. 29, 32–38 (2004).
Google Scholar
Verdú, J. R., Arellano, L. & Numa, C. Thermoregulation in endotermic dung beetles (Coleoptera: Scarabaeidae): Effect of body size and ecophysiological constraints in flight. J. Insect Physiol. 52, 854–860 (2006).
Google Scholar
Verdú, J. R., Arellano, L., Numa, C. & Micó, E. Roles of endothermy in niche differentiation for ball-rolling dung beetles (Coleoptera: Scarabaeidae) along an altitudinal gradient. Ecol. Entomol. 32, 544–551 (2007).
Google Scholar
Verdú, J. R., Alba-Tercedor, J. & Jiménez-Manrique, M. Evidence of different thermoregulatory mechanisms between two sympatric Scarabaeus species using infrared thermography and microcomputer tomography. PLoS One 7, e33914 (2012).
Google Scholar
Giménez-Gómez, V. C., Lomáscolo, S. B., Zurita, G. A. & Ocampo, F. Daily activity patterns and thermal tolerance of three sympatric dung beetle species (Scarabaeidae: Scarabaeinae: Eucraniini) from the Monte Desert, Argentina. Neotrop. Entomol. 47, 821–827 (2018).
Google Scholar
Gómez, V. C. G., Verdú, J. R. & Zurita, G. A. Thermal niche helps to explain the ability of dung beetles to exploit disturbed habitats. Sci. Rep. 10, 1–14 (2020).
Google Scholar
Gotcha, N., Machekano, H., Cuthbert, R. N. & Nyamukondiwa, C. Heat tolerance may determine activity time in coprophagic beetle species (Coleoptera: Scarabaeidae). Insect Sci. 28, 1076–2086 (2020).
Google Scholar
Gallego, B., Verdú, J. R. & Lobo, J. M. Comparative thermoregulation between different species of dung beetles (Coleoptera: Geotrupinae). J. Therm. Biol. 74, 84–91 (2018).
Google Scholar
Feer, F. Effects of dung beetles (Scarabaeidae) on seeds dispersed by howler monkeys (Alouatta seniculus) in the French Guianan rainforest. J. Trop. Ecol. 15, 1–14 (1999).
Google Scholar
Feer, F. & Pincebourne, S. Diel flight activity and ecological segregation within an assemblage of tropical forest dung and carrion beetles. J. Trop. Ecol. 21, 21–30 (2005).
Google Scholar
Niino, M. et al. Diel flight activity and habitat preference of dung beetles (Coleoptera: Scarabaeidae) in Peninsular Malaysia. Raffles Bull. Zool. 62, 795–804 (2014).
da Silva, P. G., Lobo, J. M. & Hernandez, M. I. M. The role of habitat and daily activity patterns in explaining the diversity of mountain Neotropical dung beetle assemblages. Austral Ecol. 44, 300–312 (2019).
Google Scholar
Cambefort, Y. Dung beetles in tropical savannas in Africa. In Dung Beetle Ecology (eds Hanski, I. & Camberfort, Y.) 156–178 (Princeton University Press, 1991).
Google Scholar
Hernández, M. I. M. The night and day of dung beetles (Coleoptera, Scarabaeidae) in the Serra do Japi, Brazil: Elytra colour related to daily activity. Rev. Bras. Entomol. 46, 597–600 (2002).
Google Scholar
Krell-Westerwalbesloh, S., Krell, F. T. & Eduard Linsenmair, K. Diel separation of Afrotropical dung beetle guilds—avoiding competition and neglecting resources (Coleoptera: Scarabaeoidea). J. Nat. Hist. 38, 2225–2249 (2004).
Google Scholar
Rajesh, T. P., Prashanth Ballullaya, U., Unni, A. P., Parvathy, S. & Sinu, P. A. Interactive effects of urbanization and year on invasive and native ant diversity of sacred groves of south India. Urban Ecosyst. 23, 1335–1348 (2020).
Google Scholar
Prashanth Ballullaya, U. et al. Stakeholder motivation for the conservation of sacred groves in south India: An analysis of environmental perceptions of rural and urban neighbourhood communities. Land Use Policy 89, 104–213 (2019).
Google Scholar
Manoj, K. et al. Diversity of platygastridae in leaf litter and understory layers of tropical rainforests of the Western Ghats biodiversity hotspot, India. Environ. Entomol. 46, 685–692 (2017).
Google Scholar
Rajesh, T., Unni, A., Prashanth Ballullaya, U., Manoj, K. & Sinu, P. A. An insight into the quality of sacred groves—an island habitat—using leaf-litter ants as an indicator in a context of urbanization. J. Trop. Ecol. 37, 82–90. https://doi.org/10.1017/S0266467421000134 (2021).
Google Scholar
Asha, G., Navya, K. K., Rajesh, T. P. & Sinu, P. A. Roller dung beetles of dung piles suggest habitats are alike, but that of guarding pitfall traps suggest habitat are different. J. Trop. Ecol. https://doi.org/10.1017/S0266467421000225 (2021) (Accepted).
Google Scholar
Krell, F. T. Dung beetle sampling protocols. Denver Museum of Nature and Science Technical Report 6, 1–11 (2007).
Arrow, G. J. The Fauna of British India including Ceylon and Burma, Coleoptera: Lamellicornia (Coprinae) (Taylor and Francis, 1931).
Sabu, T. K., Vinod, K. V. & Vineesh, P. J. Guild structure, diversity and succession of dung beetles associated with Indian elephant dung in South Western Ghats forests. J. Insect Sci. 6, 6–17 (2006).
Google Scholar
Beiroz, W. et al. Dung beetle community dynamics in undisturbed tropical forests: Implications for ecological evaluations of land-use change. Insect Conserv. Divers. 10, 94–106 (2017).
Google Scholar
De Caceres, M. & Legendre, P. Associations between species and groups of sites: Indices and statistical inference. Ecology 90, 3566–3574 (2009).
Google Scholar
McGeoch, M. A., van Rensburg, B. J. & Botes, A. The verification and application of bioindicators: A case of study of dung beetles in a savanna ecosystem. J. Appl. Ecol. 39, 661–672 (2002).
Google Scholar
Hsieh, T. C., Ma, K. H. & Chao, A. iNEXT: Interpolation and extrapolation for species diversity. R package version 2.0.12 (2016).
Oksanen, J. et al. vegan: Community Ecology Package. R package, version 2.5‐3 (2018).
Caveney, S., Scholtz, C. H. & McIntyre, P. Patterns of daily flight activity in Onitine dung beetles (Scarabaeinae: Onitini). Oecologia 103, 444–452 (1995).
Google Scholar
Spector, S. & Ayzama, S. Rapid turnover and edge effects in dung beetle assemblages (Scarabaeidae) at a Bolivian Neotropical forest-savanna ecotone. Biotropica 35, 394–404 (2003).
Escobar, F. S. Diversity and composition of dung beetle (Scarabaeinae) assemblages in a heterogeneous Andean landscape. Trop. Zool. 17, 123–136 (2004).
Google Scholar
Lobo, J. M., Lumaret, J. P. & Jay-Robert, P. Sampling dung beetles in French Mediterranean area: Effects of abiotic factors and farm practices. Pedobiologia 42, 252–266 (1998).
Zamora, J., Verdu, J. R. & Galante, E. Species richness in Mediterranean agroecosystems: Spatial and temporal analysis for biodiversity conservation. Biol. Conserv. 134, 113–121 (2007).
Google Scholar
Calatayud, J. et al. Multidimensionality in the thermal niches of dung beetles could limit species’ responses to temperature changes. BioRxiv. https://doi.org/10.1101/2020.11.15.383612(2021) (2020).
Google Scholar
Iannuzzi, L., Salomão, R. P., Costa, F. C. & Liberal, C. N. Environmental patterns and daily activity of dung beetles (Coleoptera: Scarabaeidae) in the Atlantic Rainforest of Brazil. Entomotropica 31, 196–207 (2016).
Venugopal, K. S., Thomas, S. K. & Flemming, A. T. Diversity and community structure of dung beetles (Coleoptera: Scarabaeinae) associated with semi-urban fragmented agricultural land in the Malabar coast in southern India. JoTT 4, 2685–2692 (2012).
Price, P. W. Insect Ecology (Wiley, 1984).
Hanski, I. & Cambefort, Y. Dung Beetle Ecology (Princeton University Press, 1991).
Google Scholar
Finn, J. A. & Gittings, T. A review of competition in north temperate dung beetle communities. Ecol. Entomol. 28, 1–13 (2003).
Google Scholar
Doube, B. Dung beetles of southern Africa. In Dung Beetle Ecology (eds Hanski, I. & Cambefort, Y.) 133–155 (Princeton University Press, 1991).
Google Scholar
Gómez-Cifuentes, A., Munevar, A., Gimenez, V. C., Gatti, M. G. & Zurita, G. A. Influence of land use on the taxonomic and functional diversity of dung beetles (Coleoptera: Scarabaeinae) in the southern Atlantic forest of Argentina. J. Insect Conserv. 21, 147–156 (2017).
Google Scholar
Estrada, A. & Coates-Estrada, R. Howler monkeys (Alouatta palliate), dung beetles (Scarabaeidae) and seed dispersal-ecological interactions in the tropical rain-forest of Los-Tuxtlas, Mexico. J. Trop. Ecol. 7, 459–474 (1991).
Google Scholar
Slade, E. M., Mann, D. J., Villanueva, J. F. & Lewis, O. T. Experimental evidence for the effects of dung beetle functional group richness and composition on ecosystem function in a tropical forest. J. Anim. Ecol. 76, 1084–1104 (2007).
Google Scholar
Vinod, K. V. & Sabu, T. K. Species composition and community structure of dung beetles attracted to dung of gaur and elephant in the moist forests of South Western Ghats. J. Insect Sci. 7, 1–14 (2007).
Google Scholar
Chao, A., Simon-Freeman, R. & Grether, G. Patterns of Niche partitioning and alternative reproductive strategies in an east African dung beetle assemblage. J. Insect Behav. 26, 525–539 (2013).
Google Scholar
Sowig, P. Habitat selection and offspring survival rate in three paracoprid dung beetles: The influence of soil type and soil moisture. Ecography 18, 147–154 (1995).
Google Scholar
Sowig, P. Brood care in the dung beetle Onthophagus vacca (Coleoptera: Scarabaeidae): The effect of soil moisture on time budget, nest structure, and reproductive success. Ecography 19, 254–258 (1996).
Nichols, E. et al. Ecological functions and ecosystem services provided by Scarabaeinae dung beetles. Biol. Conserv. 141, 1461–1474 (2008).
Google Scholar
Latha, T. & Thomas, S. K. Edge effect on roller dung beetles (Coleoptera: Scarabaeidae: Scarabaeinae) in the moist South Western Ghats. J. Entomol. 8, 1044–1047 (2020).
Bartholomew, G. A. & Heinrich, B. Endothermy in African dung beetles during flight, ball making, and ball rolling. J. Exp. Biol. 73, 65–83 (1978).
Google Scholar
Boonrotpong, S., Sotthibandhu, S. & Pholpunthin, C. Species composition of dung beetles in the primary and secondary forests at Ton Nga Chang Wildlife Sanctuary. Sci. Asia 30, 59–65 (2004).
Google Scholar
Davis, A. J. Does reduced-impact logging help preserve biodiversity in tropical rainforest? A case study from Borneo using dung beetles (Coleoptera: Scarabaeoidea) as indicators. Environ. Entomol. 29, 467–475 (2000).
Google Scholar
Davis, A. J. et al. Dung beetles as indicators of change in the forests of northern Borneo. J. Appl. Ecol. 38, 593–616 (2001).
Google Scholar
Jayaprakash, S. B. Taxonomy guild structure and dung specificity of dung beetles in a coffee plantation belt in south Wayanad. Ph.D. thesis, University of Calicut. http://hdl.handle.net/10603/222605 (2018).
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