Re-Structuring of Marine Communities Exposed to Environmental Change: A Global Study on the Interactive Effects of Species and Functional Richness

Species richness is the most commonly used but controversial biodiversity metric in studies on aspects of community stability such as structural composition or productivity. The apparent ambiguity of theoretical and experimental findings may in part be due to experimental shortcomings and/or heterogeneity of scales and methods in earlier studies. This has led to an urgent call for improved and more realistic experiments. In a series of experiments replicated at a global scale we translocated several hundred marine hard bottom communities to new environments simulating a rapid but moderate environmental change. Subsequently, we measured their rate of compositional change (re-structuring) which in the great majority of cases represented a compositional convergence towards local communities. Re-structuring is driven by mortality of community components (original species) and establishment of new species in the changed environmental context. The rate of this re-structuring was then related to various system properties. We show that availability of free substratum relates negatively while taxon richness relates positively to structural persistence (i.e., no or slow re-structuring). Thus, when faced with environmental change, taxon-rich communities retain their original composition longer than taxon-poor communities. The effect of taxon richness, however, interacts with another aspect of diversity, functional richness. Indeed, taxon richness relates positively to persistence in functionally depauperate communities, but not in functionally diverse communities. The interaction between taxonomic and functional diversity with regard to the behaviour of communities exposed to environmental stress may help understand some of the seemingly contrasting findings of past research.

[1]  Richard C. Thompson,et al.  Consequences of climate-driven biodiversity changes for ecosystem functioning of North European rocky shores , 2009 .

[2]  B. Walker Biodiversity and Ecological Redundancy , 1992 .

[3]  D. Srivastava,et al.  Biodiversity-Ecosystem Function Research: Is It Relevant to Conservation? , 2005 .

[4]  H. Hillebrand,et al.  Consumer Diversity Enhances Secondary Production by Complementarity Effects in Experimental Ciliate Assemblages , 2008 .

[5]  M. Wahl Ecological lever and interface ecology: epibiosis modulates the interactions between host and environment , 2008, Biofouling.

[6]  J. Emmett Duffy Why biodiversity is important to the functioning of real‐world ecosystems , 2009 .

[7]  David A. Wardle,et al.  Effects of species and functional group loss on island ecosystem properties , 2005, Nature.

[8]  M. Wahl Habitat Characteristics and Typical Functional Groups , 2009 .

[9]  Peter Burgherr,et al.  Synthesis and Perspectives , 2003 .

[10]  P. Petraitis,et al.  Disruption, Succession and Stochasticity , 2009 .

[11]  D. Raffaelli Biodiversity and ecosystem functioning: issues of scale and trophic complexity , 2006 .

[12]  John Maindonald,et al.  Data Analysis and Graphics Using R: An Example-Based Approach , 2010 .

[13]  S. Collins,et al.  Shrub Invasion Decreases Diversity and Alters Community Stability in Northern Chihuahuan Desert Plant Communities , 2008, PloS one.

[14]  J. Bruno,et al.  Beyond Competition: Incorporating Positive Interactions between Species to Predict Ecosystem Invasibility , 2008, PLoS biology.

[15]  B. Halpern,et al.  Low functional redundancy in coastal marine assemblages , 2005 .

[16]  M. Scheffer,et al.  Impacts of multiple stressors on biodiversity and ecosystem functioning: the role of species co‐tolerance , 2004 .

[17]  D. Bates,et al.  Mixed-Effects Models in S and S-PLUS , 2001 .

[18]  Helmut Hillebrand,et al.  On the Generality of the Latitudinal Diversity Gradient , 2004, The American Naturalist.

[19]  Shahid Naeem,et al.  Species Redundancy and Ecosystem Reliability , 1998 .

[20]  I. Pinto,et al.  Diversity effects beyond species richness: evidence from intertidal macroalgal assemblages , 2009 .

[21]  O. Schmitz,et al.  Ecosystem Responses to Global Climate Change: Moving Beyond Color Mapping , 2003 .

[22]  G. Quinn,et al.  Experimental Design and Data Analysis for Biologists , 2002 .

[23]  P. Chesson,et al.  Community ecology theory as a framework for biological invasions , 2002 .

[24]  P. Balvanera,et al.  Quantifying the evidence for biodiversity effects on ecosystem functioning and services. , 2006, Ecology letters.

[25]  M. Loreau,et al.  Biodiversity and Ecosystem Functioning: the Emergence of a Synthetic Ecological Framework , 2022 .

[26]  C. Johnson,et al.  Invasion rates increase with species richness in a marine epibenthic community by two mechanisms , 2003, Oecologia.

[27]  K. Rohde The larger area of the tropics does not explain latitudinal gradients in species diversity , 1997 .

[28]  Shijo Joseph,et al.  Disturbance, diversity and stability of ecological systems - the need for a uniform hypothesis , 2009 .

[29]  Osman,et al.  Species Diversity and Invasion Resistance in a Marine Ecosystem. , 1999, Science.

[30]  Guy Woodward,et al.  Body size in ecological networks. , 2005, Trends in ecology & evolution.

[31]  F. Chapin,et al.  EFFECTS OF BIODIVERSITY ON ECOSYSTEM FUNCTIONING: A CONSENSUS OF CURRENT KNOWLEDGE , 2005 .

[32]  John H. Maindonald,et al.  Data Analysis and Graphics Using R: An Example-Based Approach , 2010 .

[33]  Helmut Hillebrand,et al.  Multiple functions increase the importance of biodiversity for overall ecosystem functioning. , 2008, Ecology.

[34]  Christopher D G Harley,et al.  The impacts of climate change in coastal marine systems. , 2006, Ecology letters.

[35]  M. Loreau,et al.  A new look at the relationship between diversity and stability. , 2002 .

[36]  Markus Molis,et al.  Observational evidence of a negative biodiversity-stability relationship in intertidal epibenthic communities , 2009 .

[37]  G. Pierce,et al.  Marine biodiversity and ecosystem function: empirical approaches and future research needs , 2006 .

[38]  J. Bruno,et al.  Understanding the Effects of Marine Biodiversity on Communities and Ecosystems , 2007 .

[39]  T. Romanuk,et al.  Ecological realism and mechanisms by which diversity begets stability , 2009 .

[40]  Martin Solan,et al.  Consistent patterns and the idiosyncratic effects of biodiversity in marine ecosystems , 2001, Nature.

[41]  S. Rogers,et al.  Methods for describing ecological functioning of marine benthic assemblages using biological traits analysis (BTA) , 2006 .

[42]  S. Jenkins,et al.  Settlement and Recruitment , 2009 .

[43]  Michael J. Crawley,et al.  The R book , 2022 .

[44]  Jarrett E. K. Byrnes,et al.  Species diversity, invasion success, and ecosystem functioning: disentangling the influence of resource competition, facilitation, and extrinsic factors , 2006 .

[45]  M. Solan,et al.  Relative importance of biodiversity and the abiotic environment in mediating an ecosystem process , 2009 .

[46]  S. Carpenter,et al.  Stability and Diversity of Ecosystems , 2007, Science.

[47]  B. Starzomski,et al.  What does biodiversity actually do? A review for managers and policy makers , 2007, Biodiversity and Conservation.

[48]  D. Bellwood,et al.  New paradigms for supporting the resilience of marine ecosystems. , 2005, Trends in ecology & evolution.

[49]  John J Stachowicz,et al.  Complementarity in marine biodiversity manipulations: Reconciling divergent evidence from field and mesocosm experiments , 2008, Proceedings of the National Academy of Sciences.

[50]  Shahid Naeem,et al.  Expanding scales in biodiversity-based research: challenges and solutions for marine systems , 2006 .

[51]  Juana Sanchez Data Analysis and Graphics Using R -- An Example-Based Approach (3rd Edition) , 2010 .

[52]  S. Hawkins,et al.  Biodiversity effects on ecosystem functioning: emerging issues and their experimental test in aquatic environments , 2004 .

[53]  E. Bonsdorff,et al.  Biomass, diversity and production of rocky shore macroalgae at two nutrient enrichment and wave action levels , 2010 .

[54]  O. Petchey,et al.  Species richness, environmental fluctuations, and temporal change in total community biomass , 2002 .

[55]  B. Ebenman,et al.  Biodiversity and persistence of ecological communities in variable environments , 2008 .

[56]  A. Purvis,et al.  Getting the measure of biodiversity , 2000, Nature.

[57]  J. Fargione,et al.  Diversity decreases invasion via both sampling and complementarity effects , 2005 .

[58]  D. Wardle,et al.  Biodiversity effects in real ecosystems – a response to Duffy , 2010 .

[59]  T. Benton,et al.  Microcosm experiments can inform global ecological problems. , 2007, Trends in ecology & evolution.

[60]  M. Loreau,et al.  Biodiversity and ecosystem functioning : synthesis and perspectives , 2002 .