Life on a tropical planet: niche conservatism and the global diversity gradient
Editor: Solomon Dobrowski
ABSTRACT
Aim
The niche conservatism hypothesis proposes that species distribution patterns are, by and large, governed by ancestral climatic affinities. Here, we test this hypothesis by combining information on current diversity gradients among lineages, lineage initiation dates, and palaeoclimatic reconstructions.
Location
World‐wide.
Methods
We test the niche conservatism hypothesis by comparing slopes of latitudinal diversity gradients among terrestrial and aquatic lineages derived from 343 studies from around the world. The prediction is that clades originating during warm periods should be very species rich in tropical regions, exhibiting a steeper richness gradient from lower to higher latitudes than clades originating during cold periods, which are expected to exhibit shallower latitudinal species richness gradients.
Results
Latitudinal gradients for clades that originated in warm climates are steeper and with a strong tropical affinity, whereas organisms originating in colder periods exhibit a shallower diversity gradient or no tropical affinity.
Conclusions
For a broad variety of plants and animals of both marine and terrestrial realms our results are consistent with the idea that higher diversities have arisen among tropical clades because the earth has been predominantly tropical throughout most of its history. Most clades radiated in tropical climates, with subsequent climate changes causing a retraction in distributions. Our study implies that global climate change by itself, even when developing over tens of millions of years, could have shaped the large‐scale patterns of diversity prevailing on earth today.
Number of times cited according to CrossRef: 50
- Michael D. Weiser, Sean T. Michaletz, Vanessa Buzzard, Ye Deng, Zhili He, Lina Shen, Brian J. Enquist, Robert B. Waide, Jizhong Zhou and Michael Kaspari, Toward a theory for diversity gradients: the abundance–adaptation hypothesis, Ecography, 41, 2, (255-264), (2017).
- Julian A Velasco, Fabricio Villalobos, Jose A F Diniz-Filho, Adam C Algar, Oscar Flores-Villela, Gunther KÖhler, Steven Poe and Enrique Martinez-Meyer, Climatic and evolutionary factors shaping geographical gradients of species richness in Anolis lizards, Biological Journal of the Linnean Society, (2018).
- Yasuhiro Kubota, Buntarou Kusumoto, Takayuki Shiono and Werner Ulrich, Environmental filters shaping angiosperm tree assembly along climatic and geographic gradients, Journal of Vegetation Science, 29, 4, (607-618), (2018).
- Thiago F. Rangel, Neil R. Edwards, Philip B. Holden, José Alexandre F. Diniz-Filho, William D. Gosling, Marco Túlio P. Coelho, Fernanda A. S. Cassemiro, Carsten Rahbek and Robert K. Colwell, Modeling the ecology and evolution of biodiversity: Biogeographical cradles, museums, and graves, Science, 10.1126/science.aar5452, 361, 6399, (eaar5452), (2018).
- Alexander Skeels and Marcel Cardillo, Environmental niche conservatism explains the accumulation of species richness in Mediterranean‐hotspot plant genera, Evolution, 71, 3, (582-594), (2017).
- Vanessa L. Rezende, Kyle G. Dexter, R. Toby Pennington and Ary T. Oliveira‐Filho, Geographical variation in the evolutionary diversity of tree communities across southern South America, Journal of Biogeography, 44, 10, (2365-2375), (2017).
- Yunpeng Liu, Zehao Shen, Qinggang Wang, Xiangyan Su, Wanjun Zhang, Nawal Shrestha, Xiaoting Xu and Zhiheng Wang, Determinants of richness patterns differ between rare and common species: implications for Gesneriaceae conservation in China, Diversity and Distributions, 23, 3, (235-246), (2016).
- John W. McCreadie, Neusa Hamada, Maria E. Grillet and Peter H. Adler, Alpha richness and niche breadth of a widespread group of aquatic insects in Nearctic and Neotropical streams, Freshwater Biology, 62, 2, (329-339), (2016).
- Xuan Liu, Blaise Petitpierre, Olivier Broennimann, Xianping Li, Antoine Guisan and Yiming Li, Realized climatic niches are conserved along maximum temperatures among herpetofaunal invaders, Journal of Biogeography, 44, 1, (111-121), (2016).
- Jazmin Jacinto-Padilla, Jose Lopez-Collado, Catalino Jorge Lopez-Collado and Carlos Gilberto García-García, Species distribution modeling for wildlife management: Ornamental butterflies in México, Journal of Asia-Pacific Entomology, 20, 2, (627), (2017).
- Milan Chytrý, Michal Horsák, Vít Syrovátka, Jiří Danihelka, Nikolai Ermakov, Dmitry A. German, Michal Hájek, Ondřej Hájek, Petra Hájková, Veronika Horsáková, Martin Kočí, Svatava Kubešová, Pavel Lustyk, Jeffrey C. Nekola, Zdenka Preislerová, Philipp Resl and Milan Valachovič, Refugial ecosystems in central Asia as indicators of biodiversity change during the Pleistocene–Holocene transition, Ecological Indicators, 77, (357), (2017).
- Erin E. Saupe, Narayani Barve, Hannah L. Owens, Jacob C. Cooper, Peter A. Hosner and A. Townsend Peterson, Reconstructing Ecological Niche Evolution When Niches Are Incompletely Characterized, Systematic Biology, (2017).
- Graham J. Edgar, Timothy J. Alexander, Jonathan S. Lefcheck, Amanda E. Bates, Stuart J. Kininmonth, Russell J. Thomson, J. Emmett Duffy, Mark J. Costello and Rick D. Stuart-Smith, Abundance and local-scale processes contribute to multi-phyla gradients in global marine diversity, Science Advances, 3, 10, (e1700419), (2017).
- Xiaoting Xu, Zhiheng Wang, Carsten Rahbek, Nathan J. Sanders and Jingyun Fang, Geographical variation in the importance of water and energy for oak diversity, Journal of Biogeography, 43, 2, (279-288), (2015).
- Véronique Boucher‐Lalonde, Antoine Morin, David J. Currie and John‐Arvid Grytnes, Can the richness–climate relationship be explained by systematic variations in how individual species’ ranges relate to climate?, Global Ecology and Biogeography, 25, 5, (527-539), (2016).
- Filipe França, Julio Louzada, Vanesca Korasaki, Hannah Griffiths, Juliana M. Silveira and Jos Barlow, Do space‐for‐time assessments underestimate the impacts of logging on tropical biodiversity? An Amazonian case study using dung beetles, Journal of Applied Ecology, 53, 4, (1098-1105), (2016).
- Dorsaf Kerfahi, Binu M. Tripathi, Dorota L. Porazinska, Jungok Park, Rusea Go and Jonathan M. Adams, Do tropical rain forest soils have greater nematode diversity than High Arctic tundra? A metagenetic comparison of Malaysia and Svalbard, Global Ecology and Biogeography, 25, 6, (716-728), (2016).
- Adam Tomašových, Jonathan D. Kennedy, Tristan J. Betzner, Nicole Bitler Kuehnle, Stewart Edie, Sora Kim, K. Supriya, Alexander E. White, Carsten Rahbek, Shan Huang, Trevor D. Price and David Jablonski, Unifying latitudinal gradients in range size and richness across marine and terrestrial systems, Proceedings of the Royal Society B: Biological Sciences, 10.1098/rspb.2015.3027, 283, 1830, (20153027), (2016).
- Bruce S. Lieberman and Erin E. Saupe, Palaeoniches get stitches: analyses of niches informing macroevolutionary theory, Lethaia, 49, 2, (145-149), (2016).
- David B. Nicholson, Patricia A. Holroyd, Paul Valdes and Paul M. Barrett, Latitudinal diversity gradients in Mesozoic non-marine turtles, Royal Society Open Science, 3, 11, (160581), (2016).
- Jonathan D. Marcot, David L. Fox and Spencer R. Niebuhr, Late Cenozoic onset of the latitudinal diversity gradient of North American mammals, Proceedings of the National Academy of Sciences, 113, 26, (7189), (2016).
- Rubén G. Mateo, Olivier Broennimann, Signe Normand, Blaise Petitpierre, Miguel B. Araújo, Jens-C. Svenning, Andrés Baselga, Federico Fernández-González, Virgilio Gómez-Rubio, Jesús Muñoz, Guillermo M. Suarez, Miska Luoto, Antoine Guisan and Alain Vanderpoorten, The mossy north: an inverse latitudinal diversity gradient in European bryophytes, Scientific Reports, 6, 1, (2016).
- Véronique Boucher-Lalonde, David J. Currie and Oliver Schweiger, Spatial Autocorrelation Can Generate Stronger Correlations between Range Size and Climatic Niches Than the Biological Signal — A Demonstration Using Bird and Mammal Range Maps, PLOS ONE, 11, 11, (e0166243), (2016).
- Hong Qian, Relationship between clade age and temperature for angiosperm tree species in forest communities along an elevational gradient in tropical Asia, Journal of Plant Ecology, (rtw074), (2016).
- DOUGLAS SHEIL, BRENTON LADD, LUCAS C. R. SILVA, SHAWN W. LAFFAN and MIRIAM VAN HEIST, How are soil carbon and tropical biodiversity related?, Environmental Conservation, 43, 03, (231), (2016).
- Rong Wang, Stephen G. Compton, Rupert J. Quinnell, Yan‐Qiong Peng, Louise Barwell and Yan Chen, Insect responses to host plant provision beyond natural boundaries: latitudinal and altitudinal variation in a Chinese fig wasp community, Ecology and Evolution, 5, 17, (3642-3656), (2015).
- Véronique Boucher‐Lalonde, Rafael Xavier De Camargo, Jean‐Michel Fortin, Shahira Khair, Rachel I. So, Héctor Vázquez Rivera, Dale Watson, Juan Zuloaga and David J. Currie, The weakness of evidence supporting tropical niche conservatism as a main driver of current richness–temperature gradients, Global Ecology and Biogeography, 24, 7, (795-803), (2015).
- Carlos E. Guarnizo, Andrea Paz, Astrid Muñoz-Ortiz, Sandra V. Flechas, Javier Méndez-Narváez, Andrew J. Crawford and Jesus E. Maldonado, DNA Barcoding Survey of Anurans across the Eastern Cordillera of Colombia and the Impact of the Andes on Cryptic Diversity, PLOS ONE, 10, 5, (e0127312), (2015).
- Flor Rodríguez-Gómez and Juan Francisco Ornelas, At the passing gate: past introgression in the process of species formation betweenAmazilia violicepsandA. viridifronshummingbirds along the Mexican Transition Zone, Journal of Biogeography, 42, 7, (1305), (2015).
- J. T. Kerr, A. Pindar, P. Galpern, L. Packer, S. G. Potts, S. M. Roberts, P. Rasmont, O. Schweiger, S. R. Colla, L. L. Richardson, D. L. Wagner, L. F. Gall, D. S. Sikes and A. Pantoja, Climate change impacts on bumblebees converge across continents, Science, 349, 6244, (177), (2015).
- Krishnapriya Tamma and Uma Ramakrishnan, Higher speciation and lower extinction rates influence mammal diversity gradients in Asia, BMC Evolutionary Biology, 15, 1, (11), (2015).
- Sidney F. Gouveia, Fabricio Villalobos, Ricardo Dobrovolski, Raone Beltrão‐Mendes and Stephen F. Ferrari, Forest structure drives global diversity of primates, Journal of Animal Ecology, 83, 6, (1523-1530), (2014).
- Kathleen K. Treseder, Mia R. Maltz, Bradford A. Hawkins, Noah Fierer, Jason E. Stajich and Krista L. McGuire, Evolutionary histories of soil fungi are reflected in their large‐scale biogeography, Ecology Letters, 17, 9, (1086-1093), (2014).
- Ana M. M. Sequeira, Camille Mellin, Damien A. Fordham, Mark G. Meekan and Corey J. A. Bradshaw, Predicting current and future global distributions of whale sharks, Global Change Biology, 20, 3, (778-789), (2014).
- Shan Huang, Kaustuv Roy and David Jablonski, Do past climate states influence diversity dynamics and the present‐day latitudinal diversity gradient?, Global Ecology and Biogeography, 23, 5, (530-540), (2014).
- J. Alistair Crame, Alan G. Beu, Jon R. Ineson, Jane E. Francis, Rowan J. Whittle, Vanessa C. Bowman and Dana L. Royer, The Early Origin of the Antarctic Marine Fauna and Its Evolutionary Implications, PLoS ONE, 9, 12, (e114743), (2014).
- Eduardo Ruiz-Sanchez, Chelsea D. Specht and William J. Etges, Ecological Speciation in Nolina parviflora (Asparagaceae): Lacking Spatial Connectivity along of the Trans-Mexican Volcanic Belt, PLoS ONE, 9, 6, (e98754), (2014).
- E. E. Saupe, J. R. Hendricks, R. W. Portell, H. J. Dowsett, A. Haywood, S. J. Hunter and B. S. Lieberman, Macroevolutionary consequences of profound climate change on niche evolution in marine molluscs over the past three million years, Proceedings of the Royal Society B: Biological Sciences, 10.1098/rspb.2014.1995, 281, 1795, (20141995-20141995), (2014).
- C. I. Fraser, A. Terauds, J. Smellie, P. Convey and S. L. Chown, Geothermal activity helps life survive glacial cycles, Proceedings of the National Academy of Sciences, 111, 15, (5634), (2014).
- Jonathan D. Kennedy, Zhiheng Wang, Jason T. Weir, Carsten Rahbek, Jon Fjeldså, Trevor D. Price and Albert Phillimore, Into and out of the tropics: the generation of the latitudinal gradient among New World passerine birds, Journal of Biogeography, 41, 9, (1746), (2014).
- Allen H. Hurlbert and James C. Stegen, On the processes generating latitudinal richness gradients: identifying diagnostic patterns and predictions, Frontiers in Genetics, 5, (2014).
- James H. Brown and Jens-Christian Svenning, Why are there so many species in the tropics?, Journal of Biogeography, 41, 1, (8), (2014).
- Miguel B. Araújo, Francisco Ferri‐Yáñez, Francisco Bozinovic, Pablo A. Marquet, Fernando Valladares and Steven L. Chown, Heat freezes niche evolution, Ecology Letters, 16, 9, (1206-1219), (2013).
- Jochen Heinrichs, Shanshan Dong, Alfons Schäfer-Verwimp, Tamás Pócs, Kathrin Feldberg, Aleksandra Czumaj, Alexander R. Schmidt, Joachim Reitner, Matt A. M. Renner, Joern Hentschel, Michael Stech, Harald Schneider and Corrie S. Moreau, Molecular Phylogeny of the Leafy Liverwort Lejeunea (Porellales): Evidence for a Neotropical Origin, Uneven Distribution of Sexual Systems and Insufficient Taxonomy, PLoS ONE, 8, 12, (e82547), (2013).
- Jeremy T. Kerr and Solomon Z. Dobrowski, Predicting the impacts of global change on species, communities and ecosystems: it takes time, Global Ecology and Biogeography, 22, 3, (261), (2013).
- Maria João Ramos Pereira, Jorge M. Palmeirim and Danilo Russo, Latitudinal Diversity Gradients in New World Bats: Are They a Consequence of Niche Conservatism?, PLoS ONE, 8, 7, (e69245), (2013).
- Richard T Corlett, Tropical Forests, eLS, (2014).
- Miao Li and Jian Meng Feng, Altitudinal Gradient May Shadow the Effects of Altitudinal Range on Species Diversity, Applied Mechanics and Materials, 10.4028/www.scientific.net/AMM.644-650.5464, 644-650, (5464-5470), (2014).
- Mingfei Zhao, Yuhang Wang, Feng Xue, Wanyi Zuo, Kaixiong Xing, Guoyi Wang, Muyi Kang and Yuan Jiang, Elevational patterns and ecological determinants of mean family age of angiosperm assemblages in temperate forests within Mount Taibai, China, Journal of Plant Ecology, 10.1093/jpe/rty001, (2018).
- J. Patiño and A. Vanderpoorten, Bryophyte Biogeography, Critical Reviews in Plant Sciences, 10.1080/07352689.2018.1482444, (1-35), (2018).




