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Advances in the aquatic sciences
REVIEW

Cusps and butterflies: multiple stable states in marine systems as catastrophes

P. S. Petraitis A C and S. R. Dudgeon B
+ Author Affiliations
- Author Affiliations

A Department of Biology, University of Pennsylvania, Philadelphia, PA 19104-6018, USA.

B Department of Biology, California State University, Northridge, CA 91330-8303, USA.

C Corresponding author. Email: ppetrait@sas.upenn.edu

Marine and Freshwater Research 67(1) 37-46 https://doi.org/10.1071/MF14229
Submitted: 4 August 2014  Accepted: 23 September 2014   Published: 28 May 2015

Abstract

Ecologists usually view smooth threshold-like shifts and sudden discontinuous jumps in stable states as an either–or proposition. This need not be the case, and using only graphs and no equations, it will be shown how it is possible to have a single model containing one, two or three stable points. This is not a new idea and the basics, known as catastrophe theory, were developed in the 1960s, and are well known to engineers and physicists. Systems with two stable points, which are known as cusp catastrophes, and those with three points, which are known as butterfly catastrophes, will be introduced without equations. Coral reefs and temperate intertidal rocky shores are discussed as possible examples of cusp and butterfly catastrophes. It has also been well known since the 1960s that there are nine hallmarks of catastrophes, and the relative merit of these hallmarks for use by experimentalists will be discussed. The hallmarks can be placed into three groups: the shape of the equilibrium surface (modality and inaccessibility), the behaviour of the equilibrium points as conditions change (discontinuous jumps, hysteresis, divergence and one-jump paths) and transient behaviour near cusps and folds (critical slowing down, anomalous variances and non-linear responses). There are two caveats. First, hysteresis and divergence may not occur in systems with noise. Second, unusual transient behaviour such as critical slowing down is not unique to systems with catastrophes and can be found in systems with smooth threshold-like shifts. We suggest that the two-state system of rockweeds and mussels in the Gulf of Maine is an example of a cusp catastrophe, and the three-state systems of corals, seaweeds and algal turfs may be an example of a butterfly catastrophe. In closing, we speculate why ecologists have overlooked and then reinvented catastrophe theory and rediscovered its hallmarks.

Additional keywords: alternative stable states, regime shifts, stability, thresholds.


References

Arnol’d, V. I. (1992). ‘Catastrophe Theory’, 3rd edn. (Springer-Verlag: New York.)

Bellwood, D. R., Hughes, T. P., Folke, C., and Nyström, M. (2004). Confronting the coral reef crisis. Nature 429, 827–833.
Confronting the coral reef crisis.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DC%2BD2cXltVKltb8%3D&md5=312df4541085ce63d2f6bc34ba79c831CAS | 15215854PubMed |

Bertness, M. D., Trussell, G. C., Ewanchuk, P. J., and Silliman, B. R. (2002). Do alternate stable community states exist in the Gulf of Maine rocky intertidal zone? Ecology 83, 3434–3448.
Do alternate stable community states exist in the Gulf of Maine rocky intertidal zone?Crossref | GoogleScholarGoogle Scholar |

Bertness, M. D., Trussell, G. C., Ewanchuk, P. J., and Silliman, B. R. (2004a). Do alternate stable community states exist in the Gulf of Maine rocky intertidal zone? Ecology 85, 1165–1167.
Do alternate stable community states exist in the Gulf of Maine rocky intertidal zone?Crossref | GoogleScholarGoogle Scholar |

Bertness, M. D., Trussell, G. C., Ewanchuk, P. J., Silliman, B. R., and Crain, C. M. (2004b). Consumer-controlled community states on Gulf of Maine rocky shores. Ecology 85, 1321–1331.
Consumer-controlled community states on Gulf of Maine rocky shores.Crossref | GoogleScholarGoogle Scholar |

Carpenter, S. R., and Brock, W. A. (2006). Rising variance: a leading indicator of ecological transition. Ecology Letters 9, 311–318.
Rising variance: a leading indicator of ecological transition.Crossref | GoogleScholarGoogle Scholar | 1:STN:280:DC%2BD28rjsVGjsw%3D%3D&md5=d7fd91ca5b4fbe6e298283f82d83dfe1CAS | 16958897PubMed |

Carpenter, S. R., Ludwig, D., and Brock, W. A. (1999). Management of eutrophication for lakes subject to potentially irreversible change. Ecological Applications 9, 751–771.
Management of eutrophication for lakes subject to potentially irreversible change.Crossref | GoogleScholarGoogle Scholar |

Cervin, G., Åberg, P., and Jenkins, S. R. (2005). Small-scale disturbance in a stable canopy dominated community: implications for macroalgal recruitment and growth. Marine Ecology Progress Series 305, 31–40.
Small-scale disturbance in a stable canopy dominated community: implications for macroalgal recruitment and growth.Crossref | GoogleScholarGoogle Scholar |

Dakos, V., Scheffer, M., van Nes, E. H., Brovkin, V., Petoukhov, V., and Held, H. (2008). Slowing down as an early warning signal for abrupt climate change. Proceedings of the National Academy of Sciences of the United States of America 105, 14308–14312.
Slowing down as an early warning signal for abrupt climate change.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DC%2BD1cXht1SgtrjP&md5=3289f83880781e6c62e7cc0398a28a70CAS | 18787119PubMed |

Dakos, V., van Nes, E. H., Donangelo, R., Fort, H., and Scheffer, M. (2010). Spatial correlation as leading indicator of catastrophic shifts. Theoretical Ecology 3, 163–174.
Spatial correlation as leading indicator of catastrophic shifts.Crossref | GoogleScholarGoogle Scholar |

Done, T. J. (1992). Phase-shifts in coral-reef communities and their ecological significance. Hydrobiologia 247, 121–132.
Phase-shifts in coral-reef communities and their ecological significance.Crossref | GoogleScholarGoogle Scholar |

Dudgeon, S., and Petraitis, P. S. (2001). Scale-dependent recruitment and divergence of intertidal communities. Ecology 82, 991–1006.
Scale-dependent recruitment and divergence of intertidal communities.Crossref | GoogleScholarGoogle Scholar |

Dudgeon, S. R., Aronson, R. B., Bruno, J. F., and Precht, W. F. (2010). Phase shifts and stable states on coral reefs. Marine Ecology Progress Series 413, 201–216.
Phase shifts and stable states on coral reefs.Crossref | GoogleScholarGoogle Scholar |

Fung, T., Seymour, R. M., and Johnson, C. R. (2011). Alternative stable states and phase shifts in coral reefs under anthropogenic stress. Ecology 92, 967–982.
Alternative stable states and phase shifts in coral reefs under anthropogenic stress.Crossref | GoogleScholarGoogle Scholar | 21661558PubMed |

Gilmore, R. (1981). ‘Catastrophe Theory for Scientists and Engineers.’ (Wiley : New York.)

Guttal, V., and Jayaprakash, C. (2009). Spatial variance and spatial skewness: leading indicators of regime shifts in spatial ecological systems. Theoretical Ecology 2, 3–12.
Spatial variance and spatial skewness: leading indicators of regime shifts in spatial ecological systems.Crossref | GoogleScholarGoogle Scholar |

Hastings, A., and Wysham, D. B. (2010). Regime shifts in ecological systems can occur with no warning. Ecology Letters 13, 464–472.
Regime shifts in ecological systems can occur with no warning.Crossref | GoogleScholarGoogle Scholar | 20148928PubMed |

Hughes, T. P. (1994). Catastrophes, phase-shifts, and large-scale degradation of a Caribbean coral-reef. Science 265, 1547–1551.
Catastrophes, phase-shifts, and large-scale degradation of a Caribbean coral-reef.Crossref | GoogleScholarGoogle Scholar | 1:STN:280:DC%2BC3cvjs1OjsA%3D%3D&md5=ad1e26560cdf06fbca397f94f654224eCAS | 17801530PubMed |

Hughes, T. P., Rodrigues, M. J., Bellwood, D. R., Ceccarelli, D., Hoegh-Guldberg, O., McCook, L., Moltschaniwskyj, N., Pratchett, M. S., Steneck, R. S., and Willis, B. (2007). Phase shifts, herbivory, and the resilience of coral reefs to climate change. Current Biology 17, 360–365.
Phase shifts, herbivory, and the resilience of coral reefs to climate change.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DC%2BD2sXhvVyjur0%3D&md5=8de3503313175d380c6bb6b7633b15c1CAS | 17291763PubMed |

Ingólfsson, A., and Hawkins, S. J. (2008). Slow recovery from disturbance: a 20 year study of Ascophyllum canopy clearances. Journal of the Marine Biological Association of the United Kingdom 88, 689–691.
Slow recovery from disturbance: a 20 year study of Ascophyllum canopy clearances.Crossref | GoogleScholarGoogle Scholar |

Jenkins, S. R., Norton, T. A., and Hawkins, S. J. (2004). Long term effects of Ascophyllum nodosum canopy removal on mid shore community structure. Journal of the Marine Biological Association of the United Kingdom 84, 327–329.
Long term effects of Ascophyllum nodosum canopy removal on mid shore community structure.Crossref | GoogleScholarGoogle Scholar |

Jenkins, S. R., Moore, P., Burrows, M. T., Garbary, D. J., Hawkins, S. J., Ingólfsson, A., Sebens, K. P., Snelgrove, P. V. R., Wethey, D. S., and Woodin, S. A. (2008). Comparative ecology of North Atlantic shores: do differences in players matter for process? Ecology 89, S3–S23.
Comparative ecology of North Atlantic shores: do differences in players matter for process?Crossref | GoogleScholarGoogle Scholar | 19097481PubMed |

Knowlton, N. (1992). Thresholds and multiple stable states in coral-reef community dynamics. American Zoologist 32, 674–682.

Loehle, C. (1989). Catastrophe theory in ecology – a critical review and an example of the butterfly catastrophe. Ecological Modelling 49, 125–152.
Catastrophe theory in ecology – a critical review and an example of the butterfly catastrophe.Crossref | GoogleScholarGoogle Scholar |

Lotka, A. J. (1956). ‘Elements of Mathematical Biology.’ (Dover Publications: New York.)

Lubchenco, J., and Menge, B. A. (1978). Community development and persistence in a low rocky inter-tidal zone. Ecological Monographs 48, 67–94.
Community development and persistence in a low rocky inter-tidal zone.Crossref | GoogleScholarGoogle Scholar |

Martins, G. M., Thompson, R. C., Neto, A. I., Hawkins, S. J., and Jenkins, S. R. (2010). Exploitation of intertidal grazers as a driver of community divergence. Journal of Applied Ecology 47, 1282–1289.
Exploitation of intertidal grazers as a driver of community divergence.Crossref | GoogleScholarGoogle Scholar |

May, R. M. (1977). Thresholds and breakpoints in ecosystems with a multiplicity of stable states. Nature 269, 471–477.
Thresholds and breakpoints in ecosystems with a multiplicity of stable states.Crossref | GoogleScholarGoogle Scholar |

McClanahan, T. R., and Muthiga, N. A. (1998). An ecological shift in a remote coral atoll of Belize over 25 years. Environmental Conservation 25, 122–130.
An ecological shift in a remote coral atoll of Belize over 25 years.Crossref | GoogleScholarGoogle Scholar |

McClanahan, T., Polunin, N., and Done, T. (2002). Ecological states and the resilience of coral reefs. Conservation Ecology 6, 18.

Menge, B. A. (1976). Organization of New England rocky intertidal community – role of predation, competition, and environmental heterogeneity. Ecological Monographs 46, 355–393.
Organization of New England rocky intertidal community – role of predation, competition, and environmental heterogeneity.Crossref | GoogleScholarGoogle Scholar |

Mumby, P. J., Hastings, A., and Edwards, H. J. (2007). Thresholds and the resilience of Caribbean coral reefs. Nature 450, 98–101.
Thresholds and the resilience of Caribbean coral reefs.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DC%2BD2sXht1CgtbnE&md5=6d5c12d627ed9adcdb8f7435580d4836CAS | 17972885PubMed |

Norström, A. V., Nyström, M., Lokrantz, J., and Folke, C. (2009). Alternative states on coral reefs: beyond coral–macroalgal phase shifts. Marine Ecology Progress Series 376, 295–306.
Alternative states on coral reefs: beyond coral–macroalgal phase shifts.Crossref | GoogleScholarGoogle Scholar |

Nyström, M., Folke, C., and Moberg, F. (2000). Coral reef disturbance and resilience in a human-dominated environment. Trends in Ecology & Evolution 15, 413–417.
Coral reef disturbance and resilience in a human-dominated environment.Crossref | GoogleScholarGoogle Scholar |

Pawlik, J. R. (2011). The chemical ecology of sponges on Caribbean reefs: natural products shape natural systems. Bioscience 61, 888–898.
The chemical ecology of sponges on Caribbean reefs: natural products shape natural systems.Crossref | GoogleScholarGoogle Scholar |

Peterson, C. H. (1984). Does a rigorous criterion for environmental identity preclude the existence of multiple stable points? American Naturalist 124, 127–133.
Does a rigorous criterion for environmental identity preclude the existence of multiple stable points?Crossref | GoogleScholarGoogle Scholar |

Petraitis, P. S. (2013). ‘Multiple Stable States in Natural Ecosystems.’ (Oxford University Press: Oxford, UK.)

Petraitis, P. S., and Dudgeon, S. R. (1999). Experimental evidence for the origin of alternative communities on rocky intertidal shores. Oikos 84, 239–245.
Experimental evidence for the origin of alternative communities on rocky intertidal shores.Crossref | GoogleScholarGoogle Scholar |

Petraitis, P. S., and Dudgeon, S. R. (2004a). Detection of alternative stable states in marine communities. Journal of Experimental Marine Biology and Ecology 300, 343–371.
Detection of alternative stable states in marine communities.Crossref | GoogleScholarGoogle Scholar |

Petraitis, P. S., and Dudgeon, S. R. (2004b). Do alternate stable community states exist in the Gulf of Maine rocky intertidal zone? Ecology 85, 1160–1165.
Do alternate stable community states exist in the Gulf of Maine rocky intertidal zone?Crossref | GoogleScholarGoogle Scholar |

Petraitis, P. S., and Dudgeon, S. R. (2005). Divergent succession and implications for alternative states on rocky intertidal shores. Journal of Experimental Marine Biology and Ecology 326, 14–26.
Divergent succession and implications for alternative states on rocky intertidal shores.Crossref | GoogleScholarGoogle Scholar |

Petraitis, P. S., and Latham, R. E. (1999). The importance of scale in testing the origins of alternative community states. Ecology 80, 429–442.
The importance of scale in testing the origins of alternative community states.Crossref | GoogleScholarGoogle Scholar |

Petraitis, P. S., Methratta, E. T., Rhile, E. C., Vidargas, N. A., and Dudgeon, S. R. (2009). Experimental confirmation of multiple community states in a marine ecosystem. Oecologia 161, 139–148.
Experimental confirmation of multiple community states in a marine ecosystem.Crossref | GoogleScholarGoogle Scholar | 19399520PubMed |

Poston, T., and Stewart, I. (1978). ‘Catastrophe Theory and its Applications.’ (Ptiman: London.)

Schallenberg, M., and Sorrell, B. (2009). Regime shifts between clear and turbid water in New Zealand lakes: environmental correlates and implications for management and restoration. New Zealand Journal of Marine and Freshwater Research 43, 701–712.
Regime shifts between clear and turbid water in New Zealand lakes: environmental correlates and implications for management and restoration.Crossref | GoogleScholarGoogle Scholar |

Scheffer, M. (1990). Multiplicity of stable states in fresh-water systems. Hydrobiologia 200–201, 475–486.
Multiplicity of stable states in fresh-water systems.Crossref | GoogleScholarGoogle Scholar |

Scheffer, M., and van Nes, E. H. (2007). Shallow lakes theory revisited: various alternative regimes driven by climate, nutrients, depth and lake size. Hydrobiologia 584, 455–466.
Shallow lakes theory revisited: various alternative regimes driven by climate, nutrients, depth and lake size.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DC%2BD2sXlsVequr0%3D&md5=1cf0cdb4ad56cf491097de4e71cd8ab1CAS |

Scheffer, M., Hosper, S. H., Meijer, M. L., Moss, B., and Jeppesen, E. (1993). Alternative equilibria in shallow lakes. Trends in Ecology & Evolution 8, 275–279.
Alternative equilibria in shallow lakes.Crossref | GoogleScholarGoogle Scholar | 1:STN:280:DC%2BC3M7itVyqtQ%3D%3D&md5=475deba4f6e8ef086d0f2122964b6240CAS |

Scheffer, M., Carpenter, S., Foley, J. A., Folke, C., and Walker, B. (2001). Catastrophic shifts in ecosystems. Nature 413, 591–596.
Catastrophic shifts in ecosystems.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DC%2BD3MXnsleht7c%3D&md5=1cf61ff4a34c22a95d93c9c335db6d67CAS | 11595939PubMed |

Scheffer, M., Bascompte, J., Brock, W. A., Brovkin, V., Carpenter, S. R., Dakos, V., Held, H., van Nes, E. H., Rietkerk, M., and Sugihara, G. (2009). Early-warning signals for critical transitions. Nature 461, 53–59.
Early-warning signals for critical transitions.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DC%2BD1MXhtVygsbjI&md5=505b904b948ba1a704d1b31c1e9145edCAS | 19727193PubMed |

Scheiner, S. M. (2013). The ecological literature, an idea-free distribution. Ecology Letters 16, 1421–1423.
The ecological literature, an idea-free distribution.Crossref | GoogleScholarGoogle Scholar | 24131433PubMed |

Schröder, A., Persson, L., and De Roos, A. M. (2005). Direct experimental evidence for alternative stable states: a review. Oikos 110, 3–19.
Direct experimental evidence for alternative stable states: a review.Crossref | GoogleScholarGoogle Scholar |

van Nes, E. H., and Scheffer, M. (2007). Slow recovery from perturbations as a generic indicator of a nearby catastrophic shift. American Naturalist 169, 738–747.
Slow recovery from perturbations as a generic indicator of a nearby catastrophic shift.Crossref | GoogleScholarGoogle Scholar | 17479460PubMed |

Zeeman, E. C. (1976). Catastrophe theory. Scientific American 234, 65–83.
Catastrophe theory.Crossref | GoogleScholarGoogle Scholar |