Harmful Algae Blooms: A Prolific Issue in Urban Stormwater Ponds
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[1] C. Gobler,et al. Simulated heat waves promote the growth but suppress the N2 fixation rates of Dolichospermum spp. and cyanobacterial communities in temperate lakes , 2023, Ecological Indicators.
[2] R. Urrutia,et al. Cyanobacterial bloom monitoring and assessment in Latin America. , 2023, Harmful algae.
[3] C. Gobler,et al. Elevated CO2 significantly increases N2 fixation, growth rates, and alters microcystin, anatoxin, and saxitoxin cell quotas in strains of the bloom-forming cyanobacteria, Dolichospermum. , 2022, Harmful algae.
[4] T. Egerton,et al. Review of harmful algal bloom effects on birds with implications for avian wildlife in the Chesapeake Bay region. , 2022, Harmful algae.
[5] C. Gobler,et al. Nitrogen and phosphorus significantly alter growth, nitrogen fixation, anatoxin-a content, and the transcriptome of the bloom-forming cyanobacterium, Dolichospermum , 2022, Frontiers in Microbiology.
[6] M. Gibbs,et al. Factors influencing cyanobacteria blooms: review of the historical monitoring data to assess management options for Lake Horowhenua , 2022, New Zealand Journal of Marine and Freshwater Research.
[7] S. Apte,et al. Severe cyanobacterial blooms in an Australian lake; causes and factors controlling succession patterns. , 2022, Harmful algae.
[8] A. Lal,et al. Cyanobacteria, water quality and public health implications: a systematic scoping review , 2022, Australasian Journal of Water Resources.
[9] R. Melaram,et al. Detection and Occurrence of Microcystins and Nodularins in Lake Manatee and Lake Washington-Two Floridian Drinking Water Systems , 2022, Frontiers in Water.
[10] T. Bridgeman,et al. Quantification of microcystin production and biodegradation rates in the western basin of Lake Erie , 2022, Limnology and oceanography.
[11] G. Peñuela,et al. Monitoring of cyanobacteria and cyanotoxins in a Colombian tropical reservoir , 2022, Environmental Science and Pollution Research.
[12] W. Noppe,et al. First Report on Microcystin-LR Occurrence in Water Reservoirs of Eastern Cuba, and Environmental Trigger Factors , 2022, Toxins.
[13] M. Mallin,et al. Nutrient dynamics in a eutrophic blackwater urban lake , 2022, Lake and Reservoir Management.
[14] N. Mazzeo,et al. Blooms of toxic Raphidiopsis raciborskii in Laguna del Sauce (Uruguay): environmental drivers and impacts , 2021, Hydrobiologia.
[15] M. Chia,et al. Insights into the impact of increasing temperature, light intensity, and UV-B exposure on the circadian rhythm of microcystin production and release, and the expression of mcy genes in the cyanobacterium Microcystis aeruginosa , 2021, Journal of Applied Phycology.
[16] P. Kulabhusan,et al. Recent trends in the detection of freshwater cyanotoxins with a critical note on its occurrence in Asia , 2021, Trends in Environmental Analytical Chemistry.
[17] Zhiqiang Hu,et al. Cyanobacterial community succession and associated cyanotoxin production in hypereutrophic and eutrophic freshwaters. , 2021, Environmental pollution.
[18] R. Moll. Nutrients, eutrophication and harmful algal blooms along the freshwater to marine continuum , 2021, Faculty Opinions – Post-Publication Peer Review of the Biomedical Literature.
[19] C. Heil,et al. Florida’s Harmful Algal Bloom (HAB) Problem: Escalating Risks to Human, Environmental and Economic Health With Climate Change , 2021, Frontiers in Ecology and Evolution.
[20] A. Kremp,et al. Cyanobacterial Akinete Distribution, Viability, and Cyanotoxin Records in Sediment Archives From the Northern Baltic Sea , 2021, Frontiers in Microbiology.
[21] K. Gin,et al. Biodiversity, phylogeny and toxin production profile of cyanobacterial strains isolated from lake Latyan in Iran. , 2021, Harmful algae.
[22] Rebecca K. Runting,et al. The global rarity of intact coastal regions , 2021, bioRxiv.
[23] Fabienne Hervé,et al. Physiological changes induced by sodium chloride stress in Aphanizomenon gracile, Cylindrospermopsis raciborskii and Dolichospermum sp. , 2021, Harmful algae.
[24] A. Solow,et al. Marine harmful algal blooms (HABs) in the United States: History, current status and future trends. , 2021, Harmful algae.
[25] T. Hu,et al. Comprehensive insights into the occurrence and toxicological issues of nodularins. , 2020, Marine pollution bulletin.
[26] B. Nowruzi,et al. Toxic compounds produced by cyanobacteria belonging to several species of the order Nostocales: A review , 2020, Journal of applied toxicology : JAT.
[27] P. Ding,et al. A Mini-Review on Detection Methods of Microcystins , 2020, Toxins.
[28] E. Chernova,et al. Spatial distribution of cyanotoxins and ratios of microcystin to biomass indicators in the reservoirs of the Volga, Kama and Don Rivers, the European part of Russia , 2020 .
[29] P. Cox,et al. Toxin Analysis of Freshwater Cyanobacterial and Marine Harmful Algal Blooms on the West Coast of Florida and Implications for Estuarine Environments , 2020, Neurotoxicity Research.
[30] J. Scott,et al. Global scanning of cylindrospermopsin: Critical review and analysis of aquatic occurrence, bioaccumulation, toxicity and health hazards. , 2020, The Science of the total environment.
[31] C. Bernard,et al. A review of the socioecological causes and consequences of cyanobacterial blooms in Lake Victoria. , 2020, Harmful algae.
[32] E. Khan,et al. Freshwater neurotoxins and concerns for human, animal, and ecosystem health: A review of anatoxin-a and saxitoxin. , 2020, The Science of the total environment.
[33] M. Mallin,et al. The Hidden Impacts of Phosphorus Pollution to Streams and Rivers , 2020, BioScience.
[34] J. Reif,et al. Exposure to microcystin among coastal residents during a cyanobacteria bloom in Florida. , 2020, Harmful algae.
[35] A. Michalak,et al. Exploring temperature and precipitation impacts on harmful algal blooms across continental U.S. lakes , 2019, Limnology and Oceanography.
[36] Hans W. Paerl,et al. Nutrients, eutrophication and harmful algal blooms along the freshwater to marine continuum , 2019, WIREs Water.
[37] Z. Amzil,et al. Demonstrated transfer of cyanobacteria and cyanotoxins along a freshwater-marine continuum in France. , 2019, Harmful algae.
[38] E. M. Janssen,et al. Cyanobacterial peptides beyond microcystins - A review on co-occurrence, toxicity, and challenges for risk assessment. , 2019, Water research.
[39] R. Guzmán-Guillén,et al. Occurrence and toxicity of microcystin congeners other than MC-LR and MC-RR: A review. , 2019, Food and chemical toxicology : an international journal published for the British Industrial Biological Research Association.
[40] A. Pollard,et al. Environmental factors influencing the quantitative distribution of microcystin and common potentially toxigenic cyanobacteria in U.S. lakes and reservoirs. , 2018, Harmful algae.
[41] G. Zolezzi,et al. Eutrophication, Research and Management History of the Shallow Ypacaraí Lake (Paraguay) , 2018, Sustainability.
[42] L. Hansson,et al. Nutrient Control to Prevent the Occurrence of Cyanobacterial Blooms in a Eutrophic Lake in Southern Sweden, Used for Drinking Water Supply , 2018, Water.
[43] R. Franklin,et al. Cyanobacteria and cyanotoxins at the river-estuarine transition. , 2018, Harmful algae.
[44] J. Burkholder,et al. Causes of Harmful Algal Blooms , 2018, Harmful Algal Blooms.
[45] M. Steinitz‐Kannan,et al. A Guide to Cyanobacteria , 2018 .
[46] A. Couloux,et al. Phylogeny and salt-tolerance of freshwater Nostocales strains: Contribution to their systematics and evolution. , 2018, Harmful algae.
[47] B. Lapointe,et al. Septic systems contribute to nutrient pollution and harmful algal blooms in the St. Lucie Estuary, Southeast Florida, USA. , 2017, Harmful algae.
[48] Xiaoguang Xu,et al. Climate warming and cyanobacteria blooms: Looks at their relationships from a new perspective. , 2017, Water research.
[49] R. Kudela,et al. Evidence of freshwater algal toxins in marine shellfish: Implications for human and aquatic health. , 2016, Harmful algae.
[50] G. Codd,et al. Occurrence of microcystins in water, bloom, sediment and fish from a public water supply. , 2016, The Science of the total environment.
[51] J. Graham,et al. Cyanotoxins in inland lakes of the United States: Occurrence and potential recreational health risks in the EPA National Lakes Assessment 2007. , 2016, Harmful algae.
[52] S. Wood,et al. The rise of toxic benthic Phormidium proliferations: A review of their taxonomy, distribution, toxin content and factors regulating prevalence and increased severity. , 2016, Harmful algae.
[53] T. Dreher,et al. An overview of diversity, occurrence, genetics and toxin production of bloom-forming Dolichospermum (Anabaena) species. , 2016, Harmful algae.
[54] Jeff C Ho,et al. Global solutions to regional problems: Collecting global expertise to address the problem of harmful cyanobacterial blooms. A Lake Erie case study. , 2016, Harmful algae.
[55] M. Mallin,et al. Algal blooms, circulators, waterfowl, and eutrophic Greenfield Lake, North Carolina , 2016 .
[56] Jeffery A Steevens,et al. Are harmful algal blooms becoming the greatest inland water quality threat to public health and aquatic ecosystems? , 2016, Environmental toxicology and chemistry.
[57] E. Preece,et al. Transfer of microcystin from freshwater lakes to Puget Sound, WA and toxin accumulation in marine mussels (Mytilus trossulus). , 2015, Ecotoxicology and environmental safety.
[58] Thomas Wahl,et al. Increasing risk of compound flooding from storm surge and rainfall for major US cities , 2015 .
[59] R. P. Rastogi,et al. Bloom Dynamics of Cyanobacteria and Their Toxins: Environmental Health Impacts and Mitigation Strategies , 2015, Front. Microbiol..
[60] S. Wood,et al. Changes in saxitoxin-production through growth phases in the metaphytic cyanobacterium Scytonema cf. crispum. , 2015, Toxicon : official journal of the International Society on Toxinology.
[61] F. Perrière,et al. Co-occurrence of microcystin and anatoxin-a in the freshwater lake Aydat (France): Analytical and molecular approaches during a three-year survey. , 2015, Harmful algae.
[62] D. Greenfield,et al. Effects of nitrogen and dissolved organic carbon on microplankton abundances in four coastal South Carolina (USA) systems , 2015 .
[63] M. Seve,et al. Increasing occurrence of the benthic filamentous cyanobacterium Lyngbya wollei: a symptom of freshwater ecosystem degradation , 2014, Freshwater Science.
[64] C. Allan,et al. Assessing the Hydrologic and Water Quality Benefits of a Network of Stormwater Control Measures in a SE U.S. Piedmont Watershed , 2014 .
[65] Q. Catherine,et al. A review of current knowledge on toxic benthic freshwater cyanobacteria--ecology, toxin production and risk management. , 2013, Water research.
[66] Irene Gregory-Eaves,et al. Nutrients and water temperature are significant predictors of cyanobacterial biomass in a 1147 lakes data set , 2013 .
[67] D. Wunderlin,et al. First Report of Microcystins and Anatoxin-a Co-occurrence in San Roque Reservoir (Córdoba, Argentina) , 2013, Water, Air, & Soil Pollution.
[68] S. Liang,et al. Toxin-producing cyanobacteria in freshwater: A review of the problems, impact on drinking water safety, and efforts for protecting public health , 2013, Journal of Microbiology.
[69] David P. Hamilton,et al. Eco-physiological adaptations that favour freshwater cyanobacteria in a changing climate. , 2012, Water research.
[70] C. Gobler,et al. The rise of harmful cyanobacteria blooms: The potential roles of eutrophication and climate change , 2012 .
[71] D. Greenfield,et al. Nutrient controls of planktonic cyanobacteria biomass in coastal stormwater detention ponds , 2011 .
[72] Christopher J. Madden,et al. Modeling of HABs and eutrophication: Status, advances, challenges , 2010 .
[73] R. Kudela,et al. Evidence for a Novel Marine Harmful Algal Bloom: Cyanotoxin (Microcystin) Transfer from Land to Sea Otters , 2010, PloS one.
[74] C. Gobler,et al. The effects of temperature and nutrients on the growth and dynamics of toxic and non-toxic strains of Microcystis during cyanobacteria blooms , 2009 .
[75] C. Gobler,et al. Harmful algal blooms and eutrophication: Examining linkages from selected coastal regions of the United States. , 2008, Harmful algae.
[76] C. Gobler,et al. Eutrophication and Harmful Algal Blooms: A Scientific Consensus. , 2008, Harmful algae.
[77] S. Wilde,et al. Lagoonal stormwater detention ponds as promoters of harmful algal blooms and eutrophication along the South Carolina coast , 2008 .
[78] Michael Hupfer,et al. Oxygen Controls the Phosphorus Release from Lake Sediments – a Long‐Lasting Paradigm in Limnology , 2008 .
[79] J. Huisman,et al. Salt tolerance of the harmful cyanobacterium Microcystis aeruginosa , 2007 .
[80] S. Rhee,et al. Determination of Cyanobacterial Diversity during Algal Blooms in Daechung Reservoir, Korea, on the Basis of cpcBA Intergenic Spacer Region Analysis , 2006, Applied and Environmental Microbiology.
[81] J. Burkholder,et al. Comprehensive trend analysis of nutrients and related variables in a large eutrophic estuary: A decadal study of anthropogenic and climatic influences , 2006 .
[82] R. Zurawell,et al. Hepatotoxic Cyanobacteria: A Review of the Biological Importance of Microcystins in Freshwater Environments , 2005, Journal of toxicology and environmental health. Part B, Critical reviews.
[83] H. Mazur-Marzec,et al. The effect of salinity on the growth, toxin production, and morphology of Nodularia spumigena isolated from the Gulf of Gdańsk, southern Baltic Sea , 2005, Journal of Applied Phycology.
[84] Elizabeth Brabec,et al. Impervious Surfaces and Water Quality: A Review of Current Literature and Its Implications for Watershed Planning , 2002 .
[85] N. Welschmeyer. Fluorometric analysis of chlorophyll a in the presence of chlorophyll b and pheopigments , 1994 .
[86] D. Predojević,et al. Freshwater cyanobacteria in waters intended for human consumption in Serbia: Two decades of changes in diversity , 2022, Archives of Biological Sciences.
[87] J. Burkholder,et al. An Environmental Assessment of the North and South Carolina Coasts , 2019, World Seas: an Environmental Evaluation.
[88] A. Manda,et al. Adaptation Strategies to Address Rising Water Tables in Coastal Environments Under Future Climate and Sea-Level Rise Scenarios , 2019, Coastal Zone Management.
[89] E. Rubenstein,et al. Hot and toxic: Temperature regulates microcystin release from cyanobacteria. , 2018, The Science of the total environment.
[90] E. Preece,et al. A review of microcystin detections in Estuarine and Marine waters: Environmental implications and human health risk , 2017 .
[91] K. Weathers,et al. Cyanobacteria as biological drivers of lake nitrogen and phosphorus cycling , 2015 .
[92] Michael A. Mallin,et al. Microcystins and two new micropeptin cyanopeptides produced by unprecedented Microcystis aeruginosa blooms in North Carolina's Cape Fear River. , 2014, Harmful algae.
[93] A. Holland,et al. Impacts of Coastal Development on the Ecology of Tidal Creek Ecosystems of the US Southeast Including Consequences to Humans , 2013, Estuaries and Coasts.
[94] Wayne W. Carmichael,et al. A Drinking Water Crisis in Lake Taihu, China: Linkage to Climatic Variability and Lake Management , 2010, Environmental management.
[95] C. W. Keefe,et al. Determination of Orthophosphate in Estuarine and Coastal Waters by Automated Colorimetric Analysis , 2022 .