Ambient and substrate energy influence decomposer diversity differentially across trophic levels.
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C. Bouget | M. Kotowska | H. Hartmann | B. Schuldt | O. Mitesser | W. Borken | A. Brin | W. Weisser | M. Gossner | E. Obermaier | P. Baldrian | A. Macagno | S. Hardersen | J. Hjältén | A. Sverdrup‐Thygeson | S. Thorn | T. Lachat | S. Seibold | L. Larrieu | Sebastian Vogel | J. Müller | H. Bussler | F. Parisi | Stefan Pelz | Jonas Hagge | Elisa Stengel | C. Cocciufa | Elena Haeler | B. Feldmann | Peter Kriegel | Romain Angeleri | A. B. Leverkus | Jörg Müller
[1] J. Müller,et al. Beetle diversity is higher in sunny forests due to higher microclimatic heterogeneity in deadwood , 2022, Oecologia.
[2] L. Poorter,et al. Stem traits, compartments and tree species affect fungal communities on decaying wood , 2022, Environmental microbiology.
[3] T. Ranius,et al. Microclimatic conditions mediate the effect of deadwood and forest characteristics on a threatened beetle species, Tragosoma depsarium , 2021, Oecologia.
[4] T. Hothorn,et al. The contribution of insects to global forest deadwood decomposition , 2021, Nature.
[5] M. Heurich,et al. Carcasses at Fixed Locations Host a Higher Diversity of Necrophilous Beetles , 2021, Insects.
[6] J. Müller,et al. Abundance, not diversity, of host beetle communities determines abundance and diversity of parasitoids in deadwood , 2021, Ecology and evolution.
[7] C. Ginzler,et al. Saproxylic species are linked to the amount and isolation of dead wood across spatial scales in a beech forest , 2020 .
[8] J. Müller,et al. Diversity and conservation of saproxylic beetles in 42 European tree species: an experimental approach using early successional stages of branches , 2020, Insect Conservation and Diversity.
[9] P. Gasparini,et al. Forest management, canopy cover and geographical distance affect saproxylic beetle communities of small-diameter beech deadwood , 2020 .
[10] J. Müller,et al. Optimizing enrichment of deadwood for biodiversity by varying sun exposure and tree species: An experimental approach , 2020, Journal of Applied Ecology.
[11] M. Ayasse,et al. Forest habitat parameters influence abundance and diversity of cadaver-visiting dung beetles in Central Europe , 2020, Royal Society Open Science.
[12] R. Tognetti,et al. Diversity patterns of Coleoptera and saproxylic communities in unmanaged forests of Mediterranean mountains , 2020 .
[13] M. Westoby,et al. Parenchyma Abundance in Wood of Evergreen Trees Varies Independently of Nutrients , 2020, Frontiers in Plant Science.
[14] R. Holmes,et al. Decline in beetle abundance and diversity in an intact temperate forest linked to climate warming , 2019, Biological Conservation.
[15] A. Howe,et al. A meta-analysis of global fungal distribution reveals climate-driven patterns , 2019, Nature Communications.
[16] D. Six,et al. Extreme ecological stoichiometry of a bark beetle–fungus mutualism , 2019, Ecological Entomology.
[17] M. Schroeder,et al. The evolutionary species pool concept does not explain occurrence patterns of dead-wood-dependent organisms: implications for logging residue extraction , 2019, Oecologia.
[18] M. Cadotte,et al. Fungi associated with beetles dispersing from dead wood – Let's take the beetle bus! , 2019, Fungal Ecology.
[19] Nerea Abrego,et al. Congruent patterns of functional diversity in saproxylic beetles and fungi across European beech forests , 2019, Journal of Biogeography.
[20] J. Müller,et al. Reconciling pest control, nature conservation, and recreation in coniferous forests , 2018, Conservation Letters.
[21] F. Buscot,et al. Bacteria inhabiting deadwood of 13 tree species are heterogeneously distributed between sapwood and heartwood , 2018, Environmental microbiology.
[22] J. Beasley,et al. Necrobiome Framework for Bridging Decomposition Ecology of Autotrophically and Heterotrophically Derived Organic Matter , 2018, The Bulletin of the Ecological Society of America.
[23] N. Blüthgen,et al. Global dung webs: high trophic generalism of dung beetles along the latitudinal diversity gradient. , 2018, Ecology letters.
[24] J. Okie,et al. The more-individuals hypothesis revisited: the role of community abundance in species richness regulation and the productivity-diversity relationship. , 2018, Ecology letters.
[25] J. Müller,et al. Dispersal ecology of deadwood organisms and connectivity conservation , 2018, Conservation biology : the journal of the Society for Conservation Biology.
[26] M. Ayasse,et al. Effects of abiotic environmental factors and land use on the diversity of carrion-visiting silphid beetles (Coleoptera: Silphidae): A large scale carrion study , 2018, PloS one.
[27] M. Ulyshen. Saproxylic Insects , 2018, Zoological Monographs.
[28] Stephen E. Fick,et al. WorldClim 2: new 1‐km spatial resolution climate surfaces for global land areas , 2017 .
[29] N. Blüthgen,et al. Nutrient quality of vertebrate dung as a diet for dung beetles , 2017, Scientific Reports.
[30] J. Beasley,et al. Abiotic and biotic factors modulate carrion fate and vertebrate scavenging communities. , 2017, Ecology.
[31] N. Blüthgen,et al. Land use affects dung beetle communities and their ecosystem service in forests and grasslands , 2017 .
[32] Marco Heurich,et al. An experimental test of the habitat-amount hypothesis for saproxylic beetles in a forested region. , 2017, Ecology.
[33] J. Müller,et al. Canopy closure determines arthropod assemblages in microhabitats created by windstorms and salvage logging , 2016 .
[34] J. Müller,et al. Dead-wood addition promotes non-saproxylic epigeal arthropods but effects are mediated by canopy openness , 2016 .
[35] S. Levick,et al. Deadwood enrichment in European forests – Which tree species should be used to promote saproxylic beetle diversity? , 2016 .
[36] J. Müller,et al. Microclimate and habitat heterogeneity as the major drivers of beetle diversity in dead wood , 2016 .
[37] D. Lindenmayer,et al. Bark-scratching of storm-felled trees preserves biodiversity at lower economic costs compared to debarking , 2016 .
[38] M. Ulyshen. Wood decomposition as influenced by invertebrates , 2016, Biological reviews of the Cambridge Philosophical Society.
[39] S. Wood,et al. Smoothing Parameter and Model Selection for General Smooth Models , 2015, 1511.03864.
[40] F. Mason,et al. Measuring saproxylic beetle diversity in small and medium diameter dead wood: the "grab-and-go" method , 2015 .
[41] C. Bouget,et al. Increasing temperature may compensate for lower amounts of dead wood in driving richness of saproxylic beetles , 2015 .
[42] W. de Boer,et al. Neglected role of fungal community composition in explaining variation in wood decay rates. , 2015, Ecology.
[43] Michał Filipiak,et al. How to Make a Beetle Out of Wood: Multi-Elemental Stoichiometry of Wood Decay, Xylophagy and Fungivory , 2014, PloS one.
[44] K. Larsson,et al. Do conservation measures in forest work? A comparison of three area-based conservation tools for wood-living species in boreal forests , 2014 .
[45] J. David. The role of litter-feeding macroarthropods in decomposition processes: A reappraisal of common views , 2014 .
[46] A. Salamov,et al. Extensive sampling of basidiomycete genomes demonstrates inadequacy of the white-rot/brown-rot paradigm for wood decay fungi , 2014, Proceedings of the National Academy of Sciences.
[47] J. Müller,et al. Decomposition rate of carrion is dependent on composition not abundance of the assemblages of insect scavengers , 2014, Oecologia.
[48] L. Gustafsson,et al. Spatial and temporal scales relevant for conservation of dead-wood associated species: current status and perspectives , 2014, Biodiversity and Conservation.
[49] Andrew K. Skidmore,et al. Where is positional uncertainty a problem for species distribution modelling , 2014 .
[50] Elizabeth L. Sander,et al. Rarefaction and extrapolation with Hill numbers: a framework for sampling and estimation in species diversity studies , 2014 .
[51] L. Luiselli,et al. Survey of saproxylic beetle assemblages at different forest plots in central Italy , 2014 .
[52] Ian J. Wright,et al. Fibre wall and lumen fractions drive wood density variation across 24 Australian angiosperms , 2013, AoB Plants.
[53] P. Halme,et al. High within‐ and between‐trunk variation in the nematoceran (Diptera) community and its physical environment in decaying aspen trunks , 2013 .
[54] Jonathan M. Chase,et al. Scale-dependent effect sizes of ecological drivers on biodiversity: why standardised sampling is not enough. , 2013, Ecology letters.
[55] F. Berendse,et al. Leaf litter quality drives litter mixing effects through complementary resource use among detritivores , 2013, Oecologia.
[56] S. Hamburg,et al. Long-Term Integrated Studies Show Complex and Surprising Effects of Climate Change in the Northern Hardwood Forest , 2012 .
[57] W. Durka,et al. Daphne: a dated phylogeny of a large European flora for phylogenetically informed ecological analyses , 2012 .
[58] Therese Johansson,et al. Micro and Macro-Habitat Associations in Saproxylic Beetles: Implications for Biodiversity Management , 2012, PloS one.
[59] Aurore Lassauce,et al. Woodfuel harvesting and biodiversity conservation in temperate forests: effects of logging residue characteristics on saproxylic beetle assemblages. , 2012 .
[60] F. Götmark,et al. How we improved a landscape study of species richness of beetles in woodland key habitats, and how m , 2011 .
[61] R. Mäkipää,et al. RNA reveals a succession of active fungi during the decay of Norway spruce logs , 2011 .
[62] C. Bouget,et al. Exploring the last biotic frontier : Are temperate forest canopies special for saproxylic beetles? , 2011 .
[63] Hervé Jactel,et al. Diameter of downed woody debris does matter for saproxylic beetle assemblages in temperate oak and pine forests , 2011, Journal of Insect Conservation.
[64] W. Bossert,et al. Seasonality, the latitudinal gradient of diversity, and Eocene insects , 2010, Paleobiology.
[65] S. Hättenschwiler,et al. Carbon quality rather than stoichiometry controls litter decomposition in a tropical rain forest , 2010 .
[66] M. Gessner,et al. Diversity meets decomposition. , 2010, Trends in ecology & evolution.
[67] Christian Wirth,et al. Global meta-analysis of wood decomposition rates: a role for trait variation among tree species? , 2009, Ecology letters.
[68] M. Jonsell,et al. Forest fuel piles as ecological traps for saproxylic beetles in oak , 2008 .
[69] J. Louzada,et al. Ecological functions and ecosystem services provided by Scarabaeinae dung beetles , 2008 .
[70] P. Drapeau,et al. Host-use patterns of saproxylic phloeophagous and xylophagous Coleoptera adults and larvae along the decay gradient in standing dead black spruce and aspen , 2007 .
[71] A. P. Allen,et al. Linking global patterns in biodiversity to evolutionary dynamics using metabolic theory. , 2007, Ecology.
[72] T. Kneib,et al. Saproxylic beetle assemblages related to silvicultural management intensity and stand structures in a beech forest in Southern Germany , 2008, Journal of Insect Conservation.
[73] Kevin J Gaston,et al. Climate, energy and diversity , 2006, Proceedings of the Royal Society B: Biological Sciences.
[74] Lenore Fahrig,et al. Targets for maintenance of dead wood for biodiversity conservation based on extinction thresholds , 2006 .
[75] Therese Johansson,et al. Effects of landscape composition and substrate availability on saproxylic beetles in boreal forests: a study using experimental logs for monitoring assemblages , 2006 .
[76] J. Lobo,et al. Regional and local influence of grazing activity on the diversity of a semi‐arid dung beetle community , 2006 .
[77] G. Amdam,et al. Bivoltinism as an Antecedent to Eusociality in the Paper Wasp Genus Polistes , 2005, Science.
[78] Bengt Gunnar Jonsson,et al. Ecology of Species Living on Dead Wood - Lessons for Dead Wood Management , 2005 .
[79] Richard Field,et al. Predictions and tests of climate‐based hypotheses of broad‐scale variation in taxonomic richness , 2004 .
[80] J. Turner. Explaining the global biodiversity gradient: energy, area, history and natural selection , 2004 .
[81] H. Muller‐Landau. Interspecific and Inter‐site Variation in Wood Specific Gravity of Tropical Trees , 2004 .
[82] D. Langor,et al. Saproxylic beetles (Coleoptera) using Populus in boreal aspen stands of western Canada: spatiotemporal variation and conservation of assemblages , 2004 .
[83] Richard Field,et al. ENERGY, WATER, AND BROAD‐SCALE GEOGRAPHIC PATTERNS OF SPECIES RICHNESS , 2003 .
[84] P. Meerts,et al. Mineral nutrient concentrations in sapwood and heartwood: a literature review , 2002 .
[85] Robert K. Colwell,et al. Quantifying biodiversity: procedures and pitfalls in the measurement and comparison of species richness , 2001 .
[86] S. Wilkinson,et al. Effects of fungal inocula on the decomposition of lignin and structural polysaccharides in Pinus sylvestris litter , 2001, Biology and Fertility of Soils.
[87] Juha Siitonen,et al. Forest management, coarse woody debris and saproxylic organisms: Fennoscandian boreal forests as an example , 2001 .
[88] K. Gaston. Global patterns in biodiversity , 2000, Nature.
[89] M. Willig,et al. The Relationship Between Productivity and Species Richness , 1999 .
[90] P. Giller,et al. Resource quality and the colonisation and succession of coprophagous dung beetles , 1998 .
[91] Kohji Yamamura,et al. A simple method to estimate the potential increase in the number of generations under global warming in temperate zones , 1998 .
[92] M. Fukada,et al. Feeding Response of the Chinese Rose Beetle (Coleoptera: Scarabaeidae) to Nonstructural Carbohydrates in Plants , 1993 .
[93] M. Lynch. METHODS FOR THE ANALYSIS OF COMPARATIVE DATA IN EVOLUTIONARY BIOLOGY , 1991, Evolution; international journal of organic evolution.
[94] D. Currie. Energy and Large-Scale Patterns of Animal- and Plant-Species Richness , 1991, The American Naturalist.
[95] J. Turner,et al. Does Solar Energy Control Organic Diversity? Butterflies, Moths and the British Climate , 1987 .
[96] T. Singh,et al. Calorific value variations in components of 10 Canadian tree species , 1986 .
[97] J. Felsenstein. Phylogenies and the Comparative Method , 1985, The American Naturalist.
[98] David H. Wright,et al. Species-energy theory: an extension of species-area theory , 1983 .
[99] J. Seger. Partial bivoltinism may cause alternating sex-ratio biases that favour eusociality , 1983, Nature.
[100] Professor Dr. Hans-Ulrich Thiele. Carabid Beetles in Their Environments , 1977, Zoophysiology and Ecology.
[101] M. Hulme,et al. Biological Control of Decay Fungi in Wood by Competition for Non-structural Carbohydrates , 1970, Nature.
[102] R. Macarthur,et al. Niche Size and Faunal Diversity , 1960, The American Naturalist.