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Dive into the research topics where Cynthia A. Heil is active.

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Featured researches published by Cynthia A. Heil.


Journal of Geophysical Research | 2006

Red tides in the Gulf of Mexico: Where, when, and why?

John J. Walsh; J. K. Jolliff; Brian P. Darrow; Jason M. Lenes; S. P. Milroy; Andrew Remsen; Dwight A. Dieterle; Kendall L. Carder; F.R. Chen; Gabriel A. Vargo; Robert H. Weisberg; Kent A. Fanning; Frank E. Muller-Karger; Eugene A. Shinn; Karen A. Steidinger; Cynthia A. Heil; C.R. Tomas; J. S. Prospero; Thomas N. Lee; Gary J. Kirkpatrick; Terry E. Whitledge; Dean A. Stockwell; Tracy A. Villareal; Ann E. Jochens; P. S. Bontempi

[1] Independent data from the Gulf of Mexico are used to develop and test the hypothesis that the same sequence of physical and ecological events each year allows the toxic dinoflagellate Karenia brevis to become dominant. A phosphorus-rich nutrient supply initiates phytoplankton succession, once deposition events of Saharan iron-rich dust allow Trichodesmium blooms to utilize ubiquitous dissolved nitrogen gas within otherwise nitrogen-poor sea water. They and the co-occurring K. brevis are positioned within the bottom Ekman layers, as a consequence of their similar diel vertical migration patterns on the middle shelf. Upon onshore upwelling of these near-bottom seed populations to CDOM-rich surface waters of coastal regions, light-inhibition of the small red tide of ~1 ug chl l(-1) of ichthytoxic K. brevis is alleviated. Thence, dead fish serve as a supplementary nutrient source, yielding large, self-shaded red tides of ~10 ug chl l(-1). The source of phosphorus is mainly of fossil origin off west Florida, where past nutrient additions from the eutrophied Lake Okeechobee had minimal impact. In contrast, the P-sources are of mainly anthropogenic origin off Texas, since both the nutrient loadings of Mississippi River and the spatial extent of the downstream red tides have increased over the last 100 years. During the past century and particularly within the last decade, previously cryptic Karenia spp. have caused toxic red tides in similar coastal habitats of other western boundary currents off Japan, China, New Zealand, Australia, and South Africa, downstream of the Gobi, Simpson, Great Western, and Kalahari Deserts, in a global response to both desertification and eutrophication.


Nature | 2005

Brevetoxicosis: Red tides and marine mammal mortalities

Leanne J. Flewelling; Jerome Naar; Jay P. Abbott; Daniel G. Baden; Nélio B. Barros; Gregory D. Bossart; Marie-Yasmine D. Bottein; Daniel G. Hammond; Elsa M. Haubold; Cynthia A. Heil; Michael S. Henry; Henry M. Jacocks; Tod A. Leighfield; Richard H. Pierce; Thomas D. Pitchford; Sentiel A. Rommel; Paula S. Scott; Karen A. Steidinger; Earnest W. Truby; Frances M. Van Dolah; Jan H. Landsberg

Potent marine neurotoxins known as brevetoxins are produced by the ‘red tide’ dinoflagellate Karenia brevis. They kill large numbers of fish and cause illness in humans who ingest toxic filter-feeding shellfish or inhale toxic aerosols. The toxins are also suspected of having been involved in events in which many manatees and dolphins died, but this has usually not been verified owing to limited confirmation of toxin exposure, unexplained intoxication mechanisms and complicating pathologies. Here we show that fish and seagrass can accumulate high concentrations of brevetoxins and that these have acted as toxin vectors during recent deaths of dolphins and manatees, respectively. Our results challenge claims that the deleterious effects of a brevetoxin on fish (ichthyotoxicity) preclude its accumulation in live fish, and they reveal a new vector mechanism for brevetoxin spread through food webs that poses a threat to upper trophic levels.


Marine Pollution Bulletin | 2008

Ocean urea fertilization for carbon credits poses high ecological risks

Patricia M. Glibert; Rhodora V. Azanza; Michele Astrid Burford; Ken Furuya; E Abal; Adnan Al-Azri; Faiza Al-Yamani; P. Andersen; Donald M. Anderson; J Beardall; Gry Mine Berg; Larry E. Brand; Deborah A. Bronk; Justin D. Brookes; JoAnn M. Burkholder; A Cembella; William P. Cochlan; Jackie L. Collier; Yves Collos; Robert J. Diaz; Martina A. Doblin; T Drennen; Sonya T. Dyhrman; Yasuwo Fukuyo; Miles Furnas; James N. Galloway; Edna Granéli; Dv Ha; Gustaaf M. Hallegraeff; John A. Harrison

The proposed plan for enrichment of the Sulu Sea, Philippines, a region of rich marine biodiversity, with thousands of tonnes of urea in order to stimulate algal blooms and sequester carbon is flawed for multiple reasons. Urea is preferentially used as a nitrogen source by some cyanobacteria and dinoflagellates, many of which are neutrally or positively buoyant. Biological pumps to the deep sea are classically leaky, and the inefficient burial of new biomass makes the estimation of a net loss of carbon from the atmosphere questionable at best. The potential for growth of toxic dinoflagellates is also high, as many grow well on urea and some even increase their toxicity when grown on urea. Many toxic dinoflagellates form cysts which can settle to the sediment and germinate in subsequent years, forming new blooms even without further fertilization. If large-scale blooms do occur, it is likely that they will contribute to hypoxia in the bottom waters upon decomposition. Lastly, urea production requires fossil fuel usage, further limiting the potential for net carbon sequestration. The environmental and economic impacts are potentially great and need to be rigorously assessed.


Journal of Phycology | 2007

Molecular detection of the brevetoxin-producing dinoflagellate Karenia brevis and closely related species using rRNA-targeted probes and a semiautomated sandwich hybridization assay1

Allison J. Haywood; Christopher A. Scholin; Roman Marin; Karen Steidinger; Cynthia A. Heil; Jason Ray

Brevetoxins produced by the marine dinoflagellate Karenia brevis (C. C. Davis) G. Hansen et Moestrup cause neurotoxic shellfish poisoning (NSP) in human consumers and also endanger a variety of coastal wildlife. In the eastern Gulf of Mexico the presence and abundance of this species have traditionally been monitored using light microscopy (LM) observations of whole water samples. Various molecular probe methods now enable detection of multiple species from a single sample, allowing rapid sample analysis. We describe the development of sandwich hybridization assays (SHAs) for Karenia brevis, K. selliformis Haywood, Steid. et L. MacK., K. mikimotoi (Miyake et Kominami ex M. Oda) G. Hansen et Moestrup, K. papilionacea Haywood et Steid., the Karlotoxin‐producer Karlodinium veneficum (D. Ballant.) J. Larsen (=K. micrum), and Gymnodinium aureolum (Hulburt) G. Hansen, comb. nov. The assays require no nucleic acid purification and use LSU rRNA‐targeted probes and a semiautomated, 96‐well plate format. Probes tested in matrix format were specific relative to rRNAs of all nontarget species used. The response of the SHA for a constant number of K. brevis cells per unit volume of homogenate depended on the growth status of a culture, decreasing for senescent cells relative to actively growing cells. The results of preliminary field tests of the K. brevis SHA indicated that cells collected from natural populations tended to return a lower signal than those harvested from laboratory cultures, but these results are nonetheless very encouraging. These preliminary field studies show that robust standards are required for cell identification and enumeration, with which new methods can be compared.


Estuaries and Coasts | 2006

Nitrogen, phosphorus, silica, and carbon in Moreton Bay, Queensland, Australia: Differential limitation of phytoplankton biomass and production

Patricia M. Glibert; Cynthia A. Heil; Judith M. O'Neil; William C. Dennison; Mark J. O'donohue

Subtropical estuaries have received comparatively little attention in the study of nutrient loading and subsequent nutrient processing relative to temperate estuaries. Australian estuaries are particularly susceptible to increased nutrient loading and eutrophication, as 75% of the population resides within 200 km of the coastline. We assessed the factors potentially limiting both biomass and production in one Australian estuary, Moreton Bay, through stoichiometric comparisons of nitrogen (N), phosphorus (P), silicon (Si), and carbon (C) concentrations, particulate compositions, and rates of uptake. Samples were collected over 3 seasons in 1997–1998 at stations located throughout the bay system, including one riverine endmember site. Concentrations of all dissolved nutrients, as well as particulate nutrients and chlorophyll, declined 10-fold to 100-fold from the impacted western embayments to the eastern, more oceanic-influenced regions of the bay during all seasons. For all seasons and all regions, both the dissolved nutrients and particulate biomass yielded N:P ratios <6 and N:Si ratios <1. Both relationships suggest strong limitation of biomass by N throughout the bay. Limitation of rates of nutrient uptake and productivity were more complex. Low C:N and C:P uptake ratios at the riverine site suggested light limitation at all seasons, low N:P ratios suggested some degree of N limitation and high N:Si uptake ratios in austral winter suggested Si limitation of uptake during that season only. No evidence of P limitation of biomass or productivity was evident.


Marine Pollution Bulletin | 2010

Lagrangian particle tracking of a toxic dinoflagellate bloom within the Tampa Bay estuary.

Heather Havens; Mark E. Luther; Steven D. Meyers; Cynthia A. Heil

A coastal risk assessment system simulates the basic physical mechanisms underlying contaminant transport in Tampa Bay. This risk assessment system, comprised of a three-dimensional numerical circulation model coupled to a Lagrangian particle tracking model, simulates the transport and dispersion of a toxic dinoflagellate bloom. Instantaneous velocity output from the circulation model drives the movement of particles, each representing a fraction of a K. brevis bloom, within the model grid cells. Hindcast simulations of the spatial distribution of the K. brevis bloom are presented and compared with water sample concentrations collected during the peak of the bloom. Probability calculations, herein called transport quotients, allow for rapid analysis of bay-wide K. brevis transport showing locations most likely to be impacted by the contaminant. Maps constructed from the transport quotients provide managers with a bay-wide snapshot of areas in Tampa Bay most at risk during a hazardous bloom event.


Polar Biology | 1986

Growth Rates and the Salinity Response of an Antarctic Ice Microflora Community

Gabriel A. Vargo; Kent A. Fanning; Cynthia A. Heil; L. Bell

SummaryAn ice microflora community collected from the bottom of seasonal pack-ice off the Amery Ice Shelf, Antarctica, was grown at salinities which varied from 11.5‰ to 34‰. The response exhibited by the community and by individual species was characterized by an initial lag phase-adaptation period followed by a short period of exponential growth. Doubling rates based on changes in chlorophyll a had a range from 0.05 to 0.23 day-1 during the time required to reach maximum chlorophyll a concentration and a range of 0.04 to 0.42 day-1 during a period of exponential growth. Exponential growth rates of individual species ranged from 0.2 to 1.0 doublings day-1. Growth occurred at all salinities above 11.5‰. Community growth rates increased with increasing salinity, and the growth-salinity response of most species was shifted toward higher salinities suggesting that this Antarctic ice microalgal community was adapted to the ambient salinity regime: 34‰.


Journal of Coastal Research | 2013

On the Accuracy of SeaWiFS Ocean Color Data Products on the West Florida Shelf

Jennifer Cannizzaro; Chuanmin Hu; Kendall L. Carder; Christopher R. Kelble; Nelson Melo; Elizabeth Johns; Gabriel A. Vargo; Cynthia A. Heil

ABSTRACT Cannizzaro, J.P.; Hu, C.; Carder, K.L.; Kelble, C.R.; Melo, N.; Johns, E.M.; Vargo, G.A., and Heil, C.A., 2013. On the accuracy of SeaWiFS ocean color data products on the West Florida Shelf. Despite the importance of the West Florida Shelf (WFS) on regional ecology and local economy, systematic shelf-wide assessment of the ocean biology has not been conducted, primarily because of budgetary limitations for routine field campaigns and unknown accuracy of satellite-based data products. Here, using shipboard spectral normalized water-leaving radiance (nLw[λ]) data and chlorophyll-a concentrations (Chl-a) collected regularly during two multiyear field programs spanning >10 years, the accuracies of Sea-viewing Wide Field-of-view Sensor (SeaWiFS) standard data products were evaluated. The in situ data covered a wide dynamic range, with about one order of magnitude in nLw(490) (0.47 to 4.01 mW cm−2 μm−1 sr−1) and two orders of magnitude in Chl-a (0.07 to 10.6 mg m−3). Near-concurrent in situ and satellite nLw(λ) data showed absolute percent differences (APD) increasing from 7–9% to 10–14% when data with elevated aerosol optical thicknesses at 865 nm (τa865) were included. Most of this uncertainty, however, canceled in the maximal blue-to-green reflectance band ratios traditionally used for estimating Chl-a. SeaWiFS OC4 Chl-a showed a root mean square (RMS) uncertainty of 0.106 for log-transformed data in waters offshore of the 20-m isobath that increased to 0.255 when all data were considered. The increased likelihood for nearshore SeaWiFS Chl-a greater than ∼0.5 mg m−3 to be overestimated was shown to be caused by a variety of factors (colored dissolved organic matter [CDOM], suspended sediments, and bottom reflectance) that varied in both time and space. In the future, more sophisticated algorithms capable of taking these factors into consideration are required to improve remote determinations of Chl-a in nearshore waters of the WFS.


Nature | 2005

Red tides and marine mammal mortalities: Unexpected brevetoxin vectors may account for deaths long after or remote from an algal bloom

Leanne J. Flewelling; Jerome Naar; Jay P. Abbott; Daniel G. Baden; Nélio B. Barros; Gregory D. Bossart; Marie-Yasmine D. Bottein; Daniel G. Hammond; Elsa M. Haubold; Cynthia A. Heil; Michael S. Henry; Henry M. Jacocks; Tod A. Leighfield; Richard H. Pierce; Thomas D. Pitchford; Sentiel A. Rommel; Paula S. Scott; Karen A. Steidinger; Earnest W. Truby; Frances M. Van Dolah; Jan H. Landsberg

Potent marine neurotoxins known as brevetoxins are produced by the ‘red tide’ dinoflagellate Karenia brevis. They kill large numbers of fish and cause illness in humans who ingest toxic filter-feeding shellfish or inhale toxic aerosols. The toxins are also suspected of having been involved in events in which many manatees and dolphins died, but this has usually not been verified owing to limited confirmation of toxin exposure, unexplained intoxication mechanisms and complicating pathologies. Here we show that fish and seagrass can accumulate high concentrations of brevetoxins and that these have acted as toxin vectors during recent deaths of dolphins and manatees, respectively. Our results challenge claims that the deleterious effects of a brevetoxin on fish (ichthyotoxicity) preclude its accumulation in live fish, and they reveal a new vector mechanism for brevetoxin spread through food webs that poses a threat to upper trophic levels.


Marine Pollution Bulletin | 2011

Harmful algal bloom species and phosphate-processing effluent: Field and laboratory studies

Matthew Garrett; Jennifer Wolny; Earnest W. Truby; Cynthia A. Heil; Charles Kovach

In 2002, the Florida Department of Environmental Protection began discharging phosphate-processing effluent into Bishop Harbor, an estuary within Tampa Bay. Because of concerns that the effluent would serve as a nutrient source for blooms of the toxic dinoflagellate Karenia brevis, a field monitoring program was established and laboratory bioassays were conducted. Several harmful algal bloom (HAB) species, including Prorocentrum minimum and Heterosigma akashiwo, were observed in bloom concentrations adjacent to the effluent discharge site. Blooms of diatoms were widespread throughout Bishop Harbor. K. brevis was observed with cell concentrations decreasing with increasing proximity to the effluent discharge site. Bioassays using effluent as a nutrient source for K. brevis resulted in decreased cell yields, increased growth rates, and increased time to log-phase growth. The responses of HAB species within Bishop Harbor and of K. brevis to effluent in bioassays suggested that HAB species differ in their response to phosphate-processing effluent.

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Gabriel A. Vargo

University of South Florida

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Patricia M. Glibert

University of Maryland Center for Environmental Science

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John J. Walsh

University College Dublin

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Kendall L. Carder

University of South Florida

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Earnest W. Truby

Florida Department of Environmental Protection

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Chuanmin Hu

University of South Florida St. Petersburg

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Karen A. Steidinger

Florida Fish and Wildlife Conservation Commission

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