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Dive into the research topics where Kristen D. Anderson is active.

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Featured researches published by Kristen D. Anderson.


Nature | 2017

Global warming and recurrent mass bleaching of corals

Terry P. Hughes; James T. Kerry; Mariana Álvarez-Noriega; Jorge G. Álvarez-Romero; Kristen D. Anderson; Andrew Baird; Russell C. Babcock; Maria Beger; David R. Bellwood; Ray Berkelmans; Tom C. L. Bridge; Ian R. Butler; Maria Byrne; Neal E. Cantin; Steeve Comeau; Sean R. Connolly; Graeme S. Cumming; Steven J. Dalton; Guillermo Diaz-Pulido; C. Mark Eakin; Will F. Figueira; James P. Gilmour; Hugo B. Harrison; Scott F. Heron; Andrew S. Hoey; Jean Paul A. Hobbs; Mia O. Hoogenboom; Emma V. Kennedy; Chao-Yang Kuo; Janice M. Lough

During 2015–2016, record temperatures triggered a pan-tropical episode of coral bleaching, the third global-scale event since mass bleaching was first documented in the 1980s. Here we examine how and why the severity of recurrent major bleaching events has varied at multiple scales, using aerial and underwater surveys of Australian reefs combined with satellite-derived sea surface temperatures. The distinctive geographic footprints of recurrent bleaching on the Great Barrier Reef in 1998, 2002 and 2016 were determined by the spatial pattern of sea temperatures in each year. Water quality and fishing pressure had minimal effect on the unprecedented bleaching in 2016, suggesting that local protection of reefs affords little or no resistance to extreme heat. Similarly, past exposure to bleaching in 1998 and 2002 did not lessen the severity of bleaching in 2016. Consequently, immediate global action to curb future warming is essential to secure a future for coral reefs.


Science | 2018

Spatial and temporal patterns of mass bleaching of corals in the Anthropocene

Terry P. Hughes; Kristen D. Anderson; Sean R. Connolly; Scott F. Heron; James T. Kerry; Janice M. Lough; Andrew Baird; Julia K. Baum; Michael L. Berumen; Tom C. L. Bridge; Danielle C. Claar; C. Mark Eakin; James P. Gilmour; Nicholas A. J. Graham; Hugo B. Harrison; Jean-Paul A. Hobbs; Andrew S. Hoey; Mia O. Hoogenboom; Ryan J. Lowe; Malcolm T. McCulloch; John M. Pandolfi; Morgan S. Pratchett; Verena Schoepf; Gergely Torda; Shaun K. Wilson

Not enough time for recovery Coral bleaching occurs when stressful conditions result in the expulsion of the algal partner from the coral. Before anthropogenic climate warming, such events were relatively rare, allowing for recovery of the reef between events. Hughes et al. looked at 100 reefs globally and found that the average interval between bleaching events is now less than half what it was before. Such narrow recovery windows do not allow for full recovery. Furthermore, warming events such as El Niño are warmer than previously, as are general ocean conditions. Such changes are likely to make it more and more difficult for reefs to recover between stressful events. Science, this issue p. 80 Coral reefs in the present day have less time than in earlier periods to recover from bleaching events. Tropical reef systems are transitioning to a new era in which the interval between recurrent bouts of coral bleaching is too short for a full recovery of mature assemblages. We analyzed bleaching records at 100 globally distributed reef locations from 1980 to 2016. The median return time between pairs of severe bleaching events has diminished steadily since 1980 and is now only 6 years. As global warming has progressed, tropical sea surface temperatures are warmer now during current La Niña conditions than they were during El Niño events three decades ago. Consequently, as we transition to the Anthropocene, coral bleaching is occurring more frequently in all El Niño–Southern Oscillation phases, increasing the likelihood of annual bleaching in the coming decades.


Scientific Data | 2016

The Coral Trait Database, a curated database of trait information for coral species from the global oceans

Joshua S. Madin; Kristen D. Anderson; Magnus Heide Andreasen; Tom C. L. Bridge; Stephen D. Cairns; Sean R. Connolly; Emily S. Darling; Marcela Diaz; Daniel S. Falster; Erik C. Franklin; Ruth D. Gates; Mia O. Hoogenboom; Danwei Huang; Sally A. Keith; Matthew A. Kosnik; Chao-Yang Kuo; Janice M. Lough; Catherine E. Lovelock; Osmar J. Luiz; Julieta C. Martinelli; Toni Mizerek; John M. Pandolfi; Xavier Pochon; Morgan S. Pratchett; Hollie M. Putnam; T. Edward Roberts; Michael Stat; Carden C. Wallace; Elizabeth Widman; Andrew Baird

Trait-based approaches advance ecological and evolutionary research because traits provide a strong link to an organism’s function and fitness. Trait-based research might lead to a deeper understanding of the functions of, and services provided by, ecosystems, thereby improving management, which is vital in the current era of rapid environmental change. Coral reef scientists have long collected trait data for corals; however, these are difficult to access and often under-utilized in addressing large-scale questions. We present the Coral Trait Database initiative that aims to bring together physiological, morphological, ecological, phylogenetic and biogeographic trait information into a single repository. The database houses species- and individual-level data from published field and experimental studies alongside contextual data that provide important framing for analyses. In this data descriptor, we release data for 56 traits for 1547 species, and present a collaborative platform on which other trait data are being actively federated. Our overall goal is for the Coral Trait Database to become an open-source, community-led data clearinghouse that accelerates coral reef research.


Scientific Reports | 2016

Coral recovery in the central Maldives archipelago since the last major mass-bleaching, in 1998

Chiara Pisapia; Deborah Burn; R. Yoosuf; A. Najeeb; Kristen D. Anderson; Morgan S. Pratchett

Increasing frequency and severity of disturbances is causing global degradation of coral reef ecosystems. This study examined temporal changes in live coral cover and coral composition in the central Maldives from 1997 to 2016, encompassing two bleaching events, a tsunami, and an outbreak of Acanthaster planci. We also examined the contemporary size structure for five dominant coral taxa (tabular Acropora, Acropora muricata, Acropora humilis, Pocillopora spp, and massive Porites). Total coral cover increased throughout the study period, with marked increases following the 1998 mass-bleaching. The relative abundance of key genera has changed through time, where Acropora and Pocillopora (which are highly susceptible to bleaching) were under-represented following 1998 mass-bleaching but increased until outbreaks of A. planci in 2015. The contemporary size-structure for all coral taxa was dominated by larger colonies with peaked distributions suggesting that recent disturbances had a disproportionate impact on smaller colonies, or that recruitment is currently limited. This may suggest that coral resilience has been compromised by recent disturbances, and further bleaching (expected in 2016) could lead to highly protracted recovery times. We showed that Maldivian reefs recovered following the 1998 mass-bleaching event, but it took up to a decade, and ongoing disturbances may be eroding reef resilience.


PLOS ONE | 2014

Intraspecific Variation in Physiological Condition of Reef-Building Corals Associated with Differential Levels of Chronic Disturbance

Chiara Pisapia; Kristen D. Anderson; Morgan S. Pratchett

Even in the absence of major disturbances (e.g., cyclones, bleaching), corals are subject to high levels of partial or whole-colony mortality, often caused by chronic and small-scale disturbances. Depending on levels of background mortality, these chronic disturbances may undermine individual fitness and have significant consequences on the ability of colonies to withstand subsequent acute disturbances or environmental change. This study quantified intraspecific variations in physiological condition (measured based on total lipid content and zooxanthellae density) through time in adult colonies of two common and widespread coral species (Acropora spathulata and Pocillopora damicornis), subject to different levels of biological and physical disturbances along the most disturbed reef habitat, the crest. Marked intraspecific variation in the physiological condition of A. spathulata was clearly linked to differences in local disturbance regimes and habitat. Specifically, zooxanthellae density decreased (r2 = 26, df = 5,42, p<0.02, B =  −121255, p = 0.03) and total lipid content increased (r2 = 14, df = 5,42, p = 0.01, B = 0.9, p = 0.01) with increasing distance from exposed crests. Moreover, zooxanthellae density was strongly and negatively correlated with the individual level of partial mortality (r2 = 26, df = 5,42, p<0.02, B =  −7386077, p = 0.01). Conversely, P. damicornis exhibited very limited intraspecific variation in physiological condition, despite marked differences in levels of partial mortality. This is the first study to relate intraspecific variation in the condition of corals to localized differences in chronic disturbance regimes. The next step is to ascertain whether these differences have further ramifications for susceptibility to periodic acute disturbances, such as climate-induced coral bleaching.


Scientific Reports | 2018

Increasing thermal stress for tropical coral reefs: 1871–2017

Janice M. Lough; Kristen D. Anderson; Terry P. Hughes

Tropical corals live close to their upper thermal limit making them vulnerable to unusually warm summer sea temperatures. The resulting thermal stress can lead to breakdown of the coral-algal symbiosis, essential for the functioning of reefs, and cause coral bleaching. Mass coral bleaching is a modern phenomenon associated with increases in reef temperatures due to recent global warming. Widespread bleaching has typically occurred during El Niño events. We examine the historical level of stress for 100 coral reef locations with robust bleaching histories. The level of thermal stress (based on a degree heating month index, DHMI) at these locations during the 2015–2016 El Niño was unprecedented over the period 1871–2017 and exceeded that of the strong 1997–1998 El Niño. The DHMI was also 5 times the level of thermal stress associated with the ‘pre-industrial’, 1877–1878, El Niño. Coral reefs have, therefore, already shown their vulnerability to the modest (~0.92 °C) global warming that has occurred to date. Estimates of future levels of thermal stress suggest that even the optimistic 1.5 °C Paris Agreement target is insufficient to prevent more frequent mass bleaching events for the world’s reefs. Effectively, reefs of the future will not be the same as those of the past.


Scientific Reports | 2017

Variation in growth rates of branching corals along Australia’s Great Barrier Reef

Kristen D. Anderson; Neal E. Cantin; Scott F. Heron; Chiara Pisapia; Morgan S. Pratchett

Coral growth is an important component of reef health and resilience. However, few studies have investigated temporal and/or spatial variation in growth of branching corals, which are important contributors to the structure and function of reef habitats. This study assessed growth (linear extension, density, and calcification) of three branching coral species (Acropora muricata, Pocillopora damicornis and Isopora palifera) at three distinct locations (Lizard Island, Davies/Trunk Reef, and Heron Island) along Australia’s Great Barrier Reef (GBR). Annual growth rates of all species were highest at Lizard Island and declined with increasing latitude, corresponding with differences in temperature. Within locations, however, seasonal variation in growth did not directly correlate with temperature. Between October 2012 and October 2014, the highest growth of A. muricata was in the 2013–14 summer at Lizard Island, which was unusually cool and ~0.5 °C less than the long-term summer average temperature. At locations where temperatures reached or exceeded the long-term summer maxima, coral growth during summer periods was equal to, if not lower than, winter periods. This study shows that temperature has a significant influence on spatiotemporal patterns of branching coral growth, and high summer temperatures in the northern GBR may already be constraining coral growth and reef resilience.


Coral Reefs | 2016

Temporal consistency in background mortality of four dominant coral taxa along Australia’s Great Barrier Reef

Chiara Pisapia; Kristen D. Anderson; Morgan S. Pratchett

Abstract Studies on the population and community dynamics of scleractinian corals typically focus on catastrophic mortality associated with acute disturbances (e.g., coral bleaching and outbreaks of crown-of-thorns starfish), though corals are subject to high levels of background mortality and injuries caused by routine and chronic processes. This study quantified prevalence (proportion of colonies with injuries) and severity (areal extent of injuries on individual colonies) of background mortality and injuries for four common coral taxa (massive Porites, encrusting Montipora,Acropora hyacinthus and branching Pocillopora) on the Great Barrier Reef, Australia. Sampling was conducted over three consecutive years during which there were no major acute disturbances. A total of 2276 adult colonies were surveyed across 27 sites, within nine reefs and three distinct latitudinal sectors. The prevalence of injuries was very high (>83%) across all four taxa, but highest for Porites (91%) and Montipora (85%). For these taxa (Montipora and Pocillopora), there was also significant temporal and spatial variation in prevalence of partial mortality. The severity of injuries ranged from 3% to more than 80% and varied among coral taxa, but was fairly constant spatially and temporally. This shows that some injuries have considerable longevity and that corals may invest relatively little in regenerating tissue over sites of previous injuries. Inter-colony variation in the severity of injury also had no apparent effect on the realized growth of individual colonies, suggesting that energy diverted to regeneration has a limited bearing on overall energetic allocation, or impacts on other life-history processes (e.g., reproduction) rather than growth. Establishing background levels of injury and regeneration is important for understanding energy investment and life-history consequences for reef-building corals as well as for predicting susceptibility to, and capacity to recover from, acute disturbances.


Scientific Data | 2017

Corrigendum: The Coral Trait Database, a curated database of trait information for coral species from the global oceans

Joshua S. Madin; Kristen D. Anderson; Magnus Heide Andreasen; Tom C. L. Bridge; Stephen D. Cairns; Sean R. Connolly; Emily S. Darling; Marcela Diaz; Daniel S. Falster; Erik C. Franklin; Ruth D. Gates; Aaron M. T. Harmer; Mia O. Hoogenboom; Danwei Huang; Sally A. Keith; Matthew A. Kosnik; Chao-Yang Kuo; Janice M. Lough; Catherine E. Lovelock; Osmar J. Luiz; Julieta C. Martinelli; Toni Mizerek; John M. Pandolfi; Xavier Pochon; Morgan S. Pratchett; Hollie M. Putnam; T. Edward Roberts; Michael Stat; Carden C. Wallace; Elizabeth Widman

This corrects the article DOI: 10.1038/sdata.2016.17.


Oceanography and Marine Biology: an annual review | 2015

Spatial, temporal and taxonomic variation in coral growth-implications for the structure and function of coral reef ecosystems

Morgan S. Pratchett; Kristen D. Anderson; Mia O. Hoogenboom; Elizabeth Widman; Andrew Baird; John M. Pandolfi; Peter J. Edmunds; Janice M. Lough

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Janice M. Lough

Australian Institute of Marine Science

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Scott F. Heron

National Oceanic and Atmospheric Administration

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