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Dive into the research topics where Rebecca Garley is active.

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Featured researches published by Rebecca Garley.


Science | 2012

Massive phytoplankton blooms under Arctic Sea ice

Kevin R. Arrigo; Donald K. Perovich; Robert S. Pickart; Zachary W. Brown; Gert L. van Dijken; Kate E. Lowry; Matthew M. Mills; Molly A. Palmer; William M. Balch; Frank Bahr; Nicholas R. Bates; Claudia R. Benitez-Nelson; Bruce C. Bowler; Emily F. Brownlee; Jens K. Ehn; Karen E. Frey; Rebecca Garley; Samuel R. Laney; Laura C. Lubelczyk; Jeremy T. Mathis; A. Matsuoka; B. Greg Mitchell; G. W. K. Moore; E. Ortega-Retuerta; Sharmila Pal; Chris Polashenski; Rick A. Reynolds; Brian Schieber; Heidi M. Sosik; Michael Stephens

In midsummer, diatoms have taken advantage of thinning ice cover to feed in nutrient-rich waters. Phytoplankton blooms over Arctic Ocean continental shelves are thought to be restricted to waters free of sea ice. Here, we document a massive phytoplankton bloom beneath fully consolidated pack ice far from the ice edge in the Chukchi Sea, where light transmission has increased in recent decades because of thinning ice cover and proliferation of melt ponds. The bloom was characterized by high diatom biomass and rates of growth and primary production. Evidence suggests that under-ice phytoplankton blooms may be more widespread over nutrient-rich Arctic continental shelves and that satellite-based estimates of annual primary production in these waters may be underestimated by up to 10-fold.


Proceedings of the National Academy of Sciences of the United States of America | 2012

Predominance of heavily calcified coccolithophores at low CaCO3 saturation during winter in the Bay of Biscay

Helen Smith; Toby Tyrrell; Anastasia Charalampopoulou; Cynthia Dumousseaud; O. Legge; Sarah Birchenough; Laura R. Pettit; Rebecca Garley; Susan E. Hartman; Mark C. Hartman; Navjit Sagoo; Chris J. Daniels; Eric P. Achterberg; David J. Hydes

Coccolithophores are an important component of the Earth system, and, as calcifiers, their possible susceptibility to ocean acidification is of major concern. Laboratory studies at enhanced pCO2 levels have produced divergent results without overall consensus. However, it has been predicted from these studies that, although calcification may not be depressed in all species, acidification will produce “a transition in dominance from more to less heavily calcified coccolithophores” [Ridgwell A, et al., (2009) Biogeosciences 6:2611–2623]. A recent observational study [Beaufort L, et al., (2011) Nature 476:80–83] also suggested that coccolithophores are less calcified in more acidic conditions. We present the results of a large observational study of coccolithophore morphology in the Bay of Biscay. Samples were collected once a month for over a year, along a 1,000-km-long transect. Our data clearly show that there is a pronounced seasonality in the morphotypes of Emiliania huxleyi, the most abundant coccolithophore species. Whereas pH and CaCO3 saturation are lowest in winter, the E. huxleyi population shifts from <10% (summer) to >90% (winter) of the heavily calcified form. However, it is unlikely that the shifts in carbonate chemistry alone caused the morphotype shift. Our finding that the most heavily calcified morphotype dominates when conditions are most acidic is contrary to the earlier predictions and raises further questions about the fate of coccolithophores in a high-CO2 world.


Proceedings of the National Academy of Sciences of the United States of America | 2015

Shifts in coral reef biogeochemistry and resulting acidification linked to offshore productivity

Kiley L. Yeakel; Andreas J. Andersson; Nicholas R. Bates; Timothy J. Noyes; Andrew Collins; Rebecca Garley

Significance Ocean acidification is hypothesized to have a negative impact on coral reef ecosystems, but to understand future potential impacts it is necessary to understand the natural variability and controls of coral reef biogeochemistry. Here we present a 5-y study from the Bermuda coral reef platform that demonstrates how rapid interannual acidification events on the local reef scale are driven by shifts in reef biogeochemical processes toward increasing net calcification and net respiration. These biogeochemical shifts are possibly linked to offshore productivity that ultimately may be controlled by large-scale climatological and oceanographic processes. Oceanic uptake of anthropogenic carbon dioxide (CO2) has acidified open-ocean surface waters by 0.1 pH units since preindustrial times. Despite unequivocal evidence of ocean acidification (OA) via open-ocean measurements for the past several decades, it has yet to be documented in near-shore and coral reef environments. A lack of long-term measurements from these environments restricts our understanding of the natural variability and controls of seawater CO2-carbonate chemistry and biogeochemistry, which is essential to make accurate predictions on the effects of future OA on coral reefs. Here, in a 5-y study of the Bermuda coral reef, we show evidence that variations in reef biogeochemical processes drive interannual changes in seawater pH and Ωaragonite that are partly controlled by offshore processes. Rapid acidification events driven by shifts toward increasing net calcification and net heterotrophy were observed during the summers of 2010 and 2011, with the frequency and extent of such events corresponding to increased offshore productivity. These events also coincided with a negative winter North Atlantic Oscillation (NAO) index, which historically has been associated with extensive offshore mixing and greater primary productivity at the Bermuda Atlantic Time-series Study (BATS) site. Our results reveal that coral reefs undergo natural interannual events of rapid acidification due to shifts in reef biogeochemical processes that may be linked to offshore productivity and ultimately controlled by larger-scale climatic and oceanographic processes.


Global Biogeochemical Cycles | 2016

Factors regulating the Great Calcite Belt in the Southern Ocean and its biogeochemical significance

William M. Balch; Nicholas R. Bates; Phoebe J. Lam; Benjamin S. Twining; Sarah Z. Rosengard; Bruce C. Bowler; David T. Drapeau; Rebecca Garley; Laura C. Lubelczyk; Catherine Mitchell; Sara Rauschenberg

The Great Calcite Belt (GCB) is a region of elevated surface reflectance in the Southern Ocean (SO) covering ~16% of the global ocean and is thought to result from elevated, seasonal concentrations of coccolithophores. Here we describe field observations and experiments from two cruises that crossed the GCB in the Atlantic and Indian sectors of the SO. We confirm the presence of coccolithophores, their coccoliths, and associated optical scattering, located primarily in the region of the subtropical, Agulhas, and Subantarctic frontal regions. Coccolithophore-rich regions were typically associated with high-velocity frontal regions with higher seawater partial pressures of CO2 (pCO2) than the atmosphere, sufficient to reverse the direction of gas exchange to a CO2 source. There was no calcium carbonate (CaCO3) enhancement of particulate organic carbon (POC) export, but there were increased POC transfer efficiencies in high-flux particulate inorganic carbon regions. Contemporaneous observations are synthesized with results of trace-metal incubation experiments, 234Th-based flux estimates, and remotely sensed observations to generate a mandala that summarizes our understanding about the factors that regulate the location of the GCB.


Frontiers in Marine Science | 2016

Comparing Chemistry and Census-Based Estimates of Net Ecosystem Calcification on a Rim Reef in Bermuda

Travis A. Courtney; Andreas J. Andersson; Nicholas R. Bates; Andrew Collins; Tyler Cyronak; Samantha J. de Putron; Bradley D. Eyre; Rebecca Garley; Eric J. Hochberg; Rodney J. Johnson; Sylvia Musielewicz; Tim Noyes; Christopher L. Sabine; Adrienne Sutton; Jessy Toncin; Aline Tribollet

Coral reef net ecosystem calcification (NEC) has decreased for many Caribbean reefs over recent decades primarily due to a combination of declining coral cover and changing benthic community composition. Chemistry-based approaches to calculate NEC utilize the drawdown of seawater total alkalinity (TA) combined with residence time to calculate an instantaneous measurement of NEC. Census-based approaches combine annual growth rates with benthic cover and reef structural complexity to estimate NEC occurring over annual timescales. Here, NEC was calculated for Hog Reef in Bermuda using both chemistry and census-based NEC techniques to compare the mass-balance generated by the two methods and identify the dominant biocalcifiers at Hog Reef. Our findings indicate close agreement between the annual 2011 census-based NEC 2.35±1.01 kg CaCO3•m-2•y-1 and the chemistry-based NEC 2.23±1.02 kg CaCO3•m-2•y-1 at Hog Reef. An additional record of Hog Reef TA data calculated from an autonomous CO2 mooring measuring pCO2 and modeled pHtotal every 3-hours highlights the dynamic temporal variability in coral reef NEC. This ability for chemistry-based NEC techniques to capture higher frequency variability in coral reef NEC allows the mechanisms driving NEC variability to be explored and tested. Just four coral species, Diploria labyrinthiformis, Pseudodiploria strigosa, Millepora alcicornis, and Orbicella franksi, were identified by the census-based NEC as contributing to 94±19% of the total calcium carbonate production at Hog Reef suggesting these species should be highlighted for conservation to preserve current calcium carbonate production rates at Hog Reef. As coral cover continues to decline globally, the agreement between these NEC estimates suggest that either method, but ideally both methods, may serve as a useful tool for coral reef managers and conservation scientists to monitor the maintenance of coral reef structure and ecosystem services.


Science Advances | 2017

Environmental controls on modern scleractinian coral and reef-scale calcification

Travis A. Courtney; Mario Lebrato; Nicholas R. Bates; Andrew Collins; Samantha J. de Putron; Rebecca Garley; R.J. Johnson; Juan-Carlos Molinero; Timothy J. Noyes; Christopher L. Sabine; Andreas J. Andersson

In situ coral calcification was primarily controlled by temperature and relatively insensitive to seawater CO2 chemistry. Modern reef-building corals sustain a wide range of ecosystem services because of their ability to build calcium carbonate reef systems. The influence of environmental variables on coral calcification rates has been extensively studied, but our understanding of their relative importance is limited by the absence of in situ observations and the ability to decouple the interactions between different properties. We show that temperature is the primary driver of coral colony (Porites astreoides and Diploria labyrinthiformis) and reef-scale calcification rates over a 2-year monitoring period from the Bermuda coral reef. On the basis of multimodel climate simulations (Coupled Model Intercomparison Project Phase 5) and assuming sufficient coral nutrition, our results suggest that P. astreoides and D. labyrinthiformis coral calcification rates in Bermuda could increase throughout the 21st century as a result of gradual warming predicted under a minimum CO2 emissions pathway [representative concentration pathway (RCP) 2.6] with positive 21st-century calcification rates potentially maintained under a reduced CO2 emissions pathway (RCP 4.5). These results highlight the potential benefits of rapid reductions in global anthropogenic CO2 emissions for 21st-century Bermuda coral reefs and the ecosystem services they provide.


Biogeosciences | 2012

Detecting anthropogenic carbon dioxide uptake and ocean acidification in the North Atlantic Ocean

Nicholas R. Bates; M. H. P. Best; K. Neely; Rebecca Garley; Andrew G. Dickson; R.J. Johnson


Biogeosciences | 2012

Summertime calcium carbonate undersaturation in shelf waters of the western Arctic Ocean – how biological processes exacerbate the impact of ocean acidification

Nicholas R. Bates; M. I. Orchowska; Rebecca Garley; Jeremy T. Mathis


Biogeosciences | 2014

Sea-ice melt CO 2 –carbonate chemistry in the western Arctic Ocean: meltwater contributions to air–sea CO 2 gas exchange, mixed-layer properties and rates of net community production under sea ice

Nicholas R. Bates; Rebecca Garley; Karen E. Frey; K. L. Shake; Jeremy T. Mathis


Biogeosciences | 2017

The influence of environmental variability on the biogeography of coccolithophores and diatoms in the Great Calcite Belt

Helen E. K. Smith; Alex J. Poulton; Rebecca Garley; Jason Hopkins; Laura C. Lubelczyk; Dave T. Drapeau; Sara Rauschenberg; Ben S. Twining; Nicholas R. Bates; William M. Balch

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Nicholas R. Bates

Bermuda Institute of Ocean Sciences

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Laura C. Lubelczyk

Bigelow Laboratory For Ocean Sciences

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William M. Balch

Bigelow Laboratory For Ocean Sciences

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Bruce C. Bowler

Bigelow Laboratory For Ocean Sciences

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Jeremy T. Mathis

National Oceanic and Atmospheric Administration

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Sara Rauschenberg

Bigelow Laboratory For Ocean Sciences

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Andrew Collins

Bermuda Institute of Ocean Sciences

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R.J. Johnson

Bermuda Institute of Ocean Sciences

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Samantha J. de Putron

Bermuda Institute of Ocean Sciences

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