The Unified Neutral Theory of Biodiversity and
Biogeography at Age Ten
James Rosindell1,2 , Stephen P. Hubbell3,4 and Rampal S. Etienne5,6
1 Institute of Integrative and Comparative Biology, University of Leeds, Leeds, UK, LS2 9JT
2 Institute of Bioinformatics and Evolutionary Studies, University of Idaho, Moscow, ID 83844, USA
3 Department of Ecology and Evolutionary Biology, University of California, Los Angeles, CA 90095, USA
4 Center for Tropical Forest Science, Smithsonian Tropical Research Institute, Unit 0948, APO AA 34002-0948, Republic of Panama
5 Community and Conservation Ecology Group, Centre for Ecological and Evolutionary Studies, University of Groningen, Box 11103, 9700 CC Groningen, The Netherlands
6 Department of Soil and Physical Sciences, Faculty of Agriculture and Life Sciences, Lincoln University, Box 84, Lincoln 7647, Christchurch, New Zealand
Trends in ecology & evolution 2011 v.26 no.7 pp. 340-348
A decade has now passed since Hubbell published The Unified Neutral Theory of Biodiversity and Biogeography. Neutral theory highlights the importance of dispersal limitation, speciation and ecological drift in the natural world and provides quantitative null models for assessing the role of adaptation and natural selection. Significant advances have been made in providing methods for understanding neutral predictions and comparing them with empirical data. In this review, we describe the current state-of-the-art techniques and ideas in neutral theory and how these are of relevance to ecology. The future of neutral theory is promising, but its concepts must be applied more broadly beyond the current focus on species–abundance distributions.
The mystery of biodiversity
The history of neutral theory
Interpreting fits to empirical data
The other assumptions of the model
Zero-sum assumption
Point mutation speciation assumption
Spatially implicit spatial structure
Spatially explicit models
The future of neutral theory
Island biogeography
Dynamics
Palaeobiology
Phylogenies
Conservation
Discussion
Acknowledgements
References
Glossary
References
1 Gause, G.F. (1934) The Struggle For Existence, Williams and Williams
2 Hubbell, S.P. (2001) The Unified Neutral Theory of Biodiversity and Biogeography, Princeton University Press
3 Kimura, M. and Crow, J.F. (1964) The number of alleles that can be maintained in a finite population. Genetics 49, 725–738
4 Caswell, H. (1976) Community structure – neutral model analysis. Ecol. Monogr. 46, 327–354
5 Hubbell, S.P. (1979) Tree dispersion, abundance, and diversity in a tropical dry forest. Science 203, 1299–1309
6 Leigh, E.G. (1981) The average lifetime of a population in a varying environment. J. Theor. Biol. 90, 213–239
7 Hubbell, S.P. (1997) A unified theory of biogeography and relative species abundance and its application to tropical rain forests and coral reefs. Coral Reefs 16, S9–S21
8 Bell, G. (2000) The distribution of abundance in neutral communities. Am. Nat. 155, 606–617
9 Bell, G. (2001) Ecology – neutral macroecology. Science 293, 2413–2418
10 MacArthur, R.H. and Wilson, E.O. (1963) An equilibrium theory of insular zoogeography. Evolution 17, 373–387
11 Etienne, R.S. and Olff, H. (2004) A novel genealogical approach to neutral biodiversity theory. Ecol. Lett. 7, 170–175
12 Etienne, R.S. and Alonso, D. (2005) A dispersal-limited sampling theory for species and alleles. Ecol. Lett. 8, 1147–1156
13 Etienne, R.S. (2005) A new sampling formula for neutral biodiversity. Ecol. Lett. 8, 253–260
14 Alonso, D. et al. (2006) The merits of neutral theory. Trends Ecol. Evol. 21, 451–457
15 McGill, B.J. et al. (2006) Empirical evaluation of neutral theory. Ecology 87, 1411–1423
16 He, F. (2005) Deriving a neutral model of species abundance from fundamental mechanisms of population dynamics. Funct. Ecol. 19, 187–193
17 Etienne, R.S. et al. (2007) The zero-sum assumption in neutral biodiversity theory. J. Theor. Biol. 248, 522–536
18 Rosindell, J. et al. (2010) Protracted speciation revitalizes the neutral theory of biodiversity. Ecol. Lett. 13, 716–727
19 Chisholm, R.A. and Pacala, S.W. (2010) Niche and neutral models predict asymptotically equivalent species abundance distributions in high-diversity ecological communities. Proc. Natl Acad. Sci. U.S.A. 107, 15821–15825
20 Etienne, R.S. and Haegeman, B. Independent species in independent niches behave neutrally. Oikos (in press)
21 Azaele, S. et al. (2006) Dynamical evolution of ecosystems. Nature 444, 926–928
22 Hubbell, S.P. (2009) Neutral theory and the theory of island biogeography. In The Theory of Island Biogeography Revisited (Losos, J. and Ricklefs, R.E., eds), pp. 264–292, Princeton University Press
23 Woodcock, S. et al. (2007) Neutral assembly of bacterial communities. FEMS Microbiol. Ecol. 62, 171–180
24 Horva´t, S. et al. (2010) A spatially explicit model for tropical tree diversity patterns. J. Theor. Biol. 265, 517–523
25 Jabot, F. and Chave, J. (2009) Inferring the parameters of the neutral theory of biodiversity using phylogenetic information and implications for tropical forests. Ecol. Lett. 12, 239–248
26 Rosindell, J. and Cornell, S.J. (2007) Species–area relationships from a spatially explicit neutral model in an infinite landscape. Ecol. Lett. 10, 586–595
27 Pigolotti, S. and Cencini, M. (2009) Speciation-rate dependence in species–area relationships. J. Theor. Biol. 260, 83–89
28 Rosindell, J. and Cornell, S.J. (2009) Species–area curves, neutral models and long distance dispersal. Ecology 90, 1743–1750
29 Nathan, R. (2006) Long-distance dispersal of plants. Science 313, 786– 788
30 Leigh, E.G. (2007) Neutral theory: a historical perspective. J. Evol. Biol. 20, 2075–2091
31 Haegeman, B. and Etienne, R.S. (2008) Relaxing the zero-sum assumption in neutral biodiversity theory. J. Theor. Biol. 252, 288–294
32 Conlisk, J. et al. (2010) Hubbell’s local abundance distribution: insights from a simple colonization rule. Oikos 119, 379–383
33 Kopp, M. (2010) Speciation and the neutral theory of biodiversity. Bioessays 32, 564–570
34 Etienne, R.S. and Haegeman, B. (2011) The neutral theory of biodiversity with random fission speciation. Theor. Ecol. 4, 87–109
35 MacArthur, R.H. (1957) On the relative abundance of bird species. Proc. Natl Acad. Sci. U.S.A. 43, 293–295
36 Etienne, R.S. et al. (2007) Modes of speciation and the neutral theory of biodiversity. Oikos 116, 241–258
37 Haegeman, B. and Etienne, R.S. (2010) Self-consistent approach for neutral community models with speciation. Phys. Rev. E 81, 031911
38 Leigh, E.G. et al. (2004) Why do some tropical forests have so many species of trees? Biotropica 36, 447–473
39 Ricklefs, R.E. (2003) A comment on Hubbell’s zero-sum ecological drift model. Oikos 100, 185–192
40 Hubbell, S.P. and Lake, J. (2002) The neutral theory of biodiversity and biogeography, and beyond. In Macroecology: Patterns and Process (Blackburn, T. and Gaston, K., eds), pp. 45–63, Blackwell
41 Hubbell, S.P. (2003) Modes of speciation and the lifespans of species under neutrality: a response to the comment of Robert E. Ricklefs. Oikos 100, 193–199
42 Allen, A.P. and Savage, V.M. (2007) Setting the absolute tempo of biodiversity dynamics. Ecol. Lett. 10, 637–646
43 Ricklefs, R.E. (2006) The unified neutral theory of biodiversity: do the numbers add up? Ecology 87, 1424–1431
44 Nee, S. (2005) The neutral theory of biodiversity: do the numbers add up? Funct. Ecol. 19, 173–176
45 Lande, R. et al. (2003) Stochastic Population Dynamics in Ecology and Conservation, Oxford University Press
46 de Aguiar, M.A.M. et al. (2009) Global patterns of speciation and diversity. Nature 480, 284–387
47 Melian, C.J. et al. (2010) Frequency dependent selection predicts patterns of radiations and biodiversity. PLoS Comput. Biol. 6, e1000892
48 Zillio, T. and Condit, R. (2007) The impact of neutrality, niche differentiation and species input on diversity and abundance distributions. Oikos 116, 931–940
49 Clark, J.S. (2009) Beyond neutral science. Trends Ecol. Evol. 24, 8–15
50 Chisholm, R.A. and Lichstein, J.W. (2009) Linking dispersal, immigration and scale in the neutral theory of biodiversity. Ecol. Lett. 12, 1385–1393
51 Perry, G.L.W. et al. (2009) Dispersal, edaphic fidelity and speciation in species-rich western Australian shrublands: evaluating a neutral model of biodiversity. Oikos 118, 1349–1362
52 Etienne, R.S. and Rosindell, J. (2011) The spatial limitations of current neutral models of biodiversity. PLoS ONE 6, e14717 53 Etienne, R.S. (2007) A neutral sampling formula for multiple samples and an ‘exact’ test of neutrality. Ecol. Lett. 10, 608–618
54 Munoz, F. et al. (2007) Estimating parameters of neutral communities: from one single large to several small samples. Ecology 88, 2482–2488
55 Etienne, R.S. (2009) Maximum likelihood estimation of neutral model parameters for multiple samples with different degrees of dispersal limitation. J. Theor. Biol. 257, 510–514
56 Volkov, I. et al. (2007) Patterns of relative species abundance in rainforests and coral reefs. Nature 450, 45–49
57 Economo, E.P. and Keitt, T.H. (2008) Species diversity in neutral metacommunities: a network approach. Ecol. Lett. 11, 52–62
58 Warren, P.B. (2010) Biodiversity on island chains: neutral model simulations. Phys. Rev. E 82, 051922
59 Vanpeteghem, D. and Haegeman, B. (2010) An analytical approach to spatio-temporal dynamics of neutral community models. J. Math. Biol. 61, 323–357
60 Muneepeerakul, R. et al. (2008) Neutral metacommunity models predict fish diversity patterns in Mississippi–Missouri basin. Nature 453, 220–222
61 Holley, R.A. and Liggett, T.M. (1975) Ergodic theorems for weakly interacting systems and the voter model. Ann. Probab. 3, 643–663
62 Bramson, M. et al. (1998) A spatial model for the abundance of species. Ann. Probab. 26, 658–709
63 Durrett, R. and Levin, S. (1996) Spatial models for species–area curves. J. Theor. Biol. 179, 119–127
64 Zillio, T. et al. (2005) Spatial scaling in model plant communities. Phys. Rev. Lett. 95, 098101
65 Chave, J. and Leigh, E.G. (2002) A spatially explicit neutral model of beta-diversity in tropical forests. Theor. Popul. Biol. 62, 152–168
66 O’Dwyer, J.P. and Green, J.L. (2010) Field theory for biogeography: a spatially explicit model for predicting patterns of biodiversity. Ecol. Lett. 13, 87–95
67 Kingman, J.F.C. (1982) On the genealogy of large populations. J. Appl. Probab. 19, 27–43
68 Rosindell, J. et al. (2008) A coalescence approach to spatial neutral ecology. Ecol. Inform. 3, 259–271
69 Rosindell, J. and Phillimore, A.B. (2011) A unified model of island biogeography sheds light on the zone of radiation. Ecol. Lett. 14, 552– 560 DOI: 10.1111/j.1461-0248.2011.01617.x
70 Gilbert, B. et al. (2006) Can neutral theory predict the responses of Amazonian tree communities to forest fragmentation? Am. Nat. 168, 304–317
71 Vanpeteghem, D. et al. (2008) Dynamics of neutral biodiversity. Math. Biosci. 212, 88–98
72 Keil, P. et al. (2010) Predictions of Taylor’s power law, density dependence and pink noise from a neutrally modeled time series. J. Theor. Biol. 265, 78–86
73 Adler, P.B. (2004) Neutral models fail to reproduce observed species– area and species–time relationships in Kansas grasslands. Ecology 85, 1265–1272
74 Hubbell, S.P. (2005) The neutral theory of biodiversity and biogeography and Stephen Jay Gould. Paleobiology 31, 122–132
75 Tomasovych, A. and Kidwell, S.M. (2010) Predicting the effects of increasing temporal scale on species composition, diversity, and rankabundance distributions. Paleobiology 36, 672–695
76 Raup, D.M. et al. (1973) Stochastic-models of phylogeny and evolution of diversity. J. Geol. 81, 525–542
77 Mooers, A.Ø. et al. (2007) Some models of phylogenetic tree shape. In Reconstructing Evolution: New Mathematical and Computational Advances (Gascuel, O. and Steel, M., eds), pp. 149–170, Oxford University Press
78 Davies, T.J. et al. (2011) Neutral biodiversity theory can explain the imbalance of phylogenetic trees but not the tempo of their diversification. Evolution DOI: 10.1111/j.1558-5646.2011.01265.x
79 Economo, E.P. (2011) Biodiversity conservation in metacommunity networks: linking pattern and persistence. Am. Nat. 177, doi:10.1086/ 659946 (in press)
80 Halley, J.M. and Iwasa, Y. (2011) Neutral theory as a predictor of avifaunal extinctions after habitat loss. Proc. Natl. Acad. Sci. U.S.A. 108, 2316–2321
81 Leigh, E.G. et al. (1993) The decline of tree diversity on newly isolated tropical islands – a test of a null hypothesis and some implications. Evol. Ecol. 7, 76–102
82 Hubbell, S.P. et al. (2008) How may tree species are there in the Amazon and how many of them will go extinct? Proc. Natl. Acad. Sci. U.S.A. 105, 11498–11504
83 Levins, R. (1969) Some demographic and genetic consequences of environmental heterogeneity for biological control. Bull. Entomol. Soc. Am. 15, 237–240
84 Abrams, P.A. (2001) A world without competition. Nature 412, 858–859
85 Adler, P.B. et al. (2007) A niche for neutrality. Ecol. Lett. 10, 95–104
86 Purves, D.W. and Turnbull, L.A. (2010) Different but equal: the implausible assumption at the heart of neutral theory. J. Anim. Ecol. 79, 1215–1225
87 Leigh, E.G. et al. (2010) Unified neutral theory of biodiversity and biogeography. Scholarpedia 5, 8822
88 McGill, B.J. (2010) Towards a unification of unified theories of biodiversity. Ecol. Lett. 13, 627–642
89 Ricklefs, R.E. (2011) Applying a regional community concept to forest birds of eastern North America. Proc. Natl Acad. Sci. U.S.A. 108, 2300–2305
90 Allouche, O.O. and Kadmon, R. (2009) A general framework for neutral models of community dynamics. Ecol. Lett. 12, 1287–1297
91 Volkov, I. et al. (2005) Density dependence explains tree species abundance and diversity in tropical forests. Nature 438, 658–661
92 Vellend, M. (2010) Conceptual synthesis in community ecology. Q. Rev. Biol. 85, 183–206
93 Etienne, R.S. and Alonso, D. (2007) Neutral community theory: how stochasticity and dispersal-limitation can explain species coexistence. J. Stat. Phys. 128, 485–510
94 Volkov, I. et al. (2003) Neutral theory and relative species abundance in ecology. Nature 424, 1035–1037
95 Vallade, M. and Houchmandzadeh, B. (2003) Analytical solution of a neutral model of biodiversity. Phys. Rev. E 68, 061902
96 Alonso, D. and McKane, A.J. (2004) Sampling Hubbell’s neutral theory of biodiversity. Ecol. Lett. 7, 901–910
97 Ewens, W.J. (1972) Sampling theory of selectively neutral alleles. Theor. Popul. Biol. 3, 87–112
98 Haegeman, B. and Etienne, R.S. (2009) Neutral models with generalised speciation. Bull. Math. Biol. 71, 1507–1519
99 Chave, J. et al. (2002) Comparing classical community models: theoretical consequences for patterns of diversity. Am. Nat. 159, 1–23
100 Condit, R. et al. (2002) Beta-diversity in tropical forest trees. Science 295, 666–669
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