Nutrient and hydrology data from CTD bottles from 2012 to 2019 in the Gulf of Maine.

Website: https://www.bco-dmo.org/dataset/834444
Data Type: Cruise Results
Version: 1
Version Date: 2020-12-22

Project
» WHCOHH - Physiological and behavioral plasticity in harmful algal bloom dynamics: variation across different habitats (WHCOHH Algal Bloom Dynamics)

Program
» Woods Hole Center for Oceans and Human Health (WHCOHH)
ContributorsAffiliationRole
McGillicuddy, Dennis J.Woods Hole Oceanographic Institution (WHOI)Principal Investigator
Keafer, BruceWoods Hole Oceanographic Institution (WHOI)Co-Principal Investigator
Kosnyrev, OlgaWoods Hole Oceanographic Institution (WHOI)Data Manager
Soenen, KarenWoods Hole Oceanographic Institution (WHOI BCO-DMO)BCO-DMO Data Manager

Abstract
Nutrient and hydrology data from CTD bottles from 2012 to 2019 in the Gulf of Maine.


Coverage

Spatial Extent: N:44.599 E:-66.113 S:42.599 W:-70.698
Temporal Extent: 2013-04-28 - 2019-08-12

Methods & Sampling

Sea-Bird SBE 9 CTD data measurements using Sea-Bird Software SBE Seasave at standard CTD stations: profiles (down casts) with water sampling (up casts).


Data Processing Description

CTD Data processing: Sea-Bird Software SBE Data Processing;

Nutrient data processing: water filtering, samples processing and preserving, standard methods for further samples processing.


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Data Files

File
nutrient_data.csv
(Comma Separated Values (.csv), 308.99 KB)
MD5:ed6e83c5e6a0cd936b85512c437a160b
Primary data file for dataset ID 834444

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Parameters

ParameterDescriptionUnits
Year

Sampling year

unitless
Ship_ID

Vessel identifier: 1 - R/V Tioga, 2 - R/V Connecticut, 3 - R/V Gulf Challenger, 4 - R/V Warren Jr., 5 - R/V Scarlett Isabella

unitless
Cruise_number

Cruise identifier

unitless
Station_number

Station number

unitless
Niskin

Niskin bottle number

unitless
Depth

Sample depth

meters (m)
Pressure

Pressure

decibels (db)
Bottom_depth

Bottom depth

meters (m)
Temperature

Temperature

degrees Celcius (°C)
Salinity

Salinity

units
Density

Sigma-theta density from primary sensor

kilograms per cibic meters (kg/m^3)
Oxygen

Oxygen

mililiters per liters (ml/l)
Fluorescence

Fluoresence

milligrams per cubic meters (mg/^m3)
Transmission

Beam Transmission Chelsea/Seatech

percentage (%)
Conductivity

conductivity

Siemens per meter (S/m)
Oxygen_Raw

Raw oxygen

volts (V)
Nitrate_and_Nitrite

NO3+NO2

micromoles (um)
Silicate

Si(OH)4

micromoles (um)
Ammonium

NH4

micromoles (um)
Phosphate

PO4

micromoles (um)
Ph

pH

unitless
Latitude

Station latitude, south is negative

decimal degrees
Longitude

Station longitude, west is negative

decimal degrees
ISO_DateTime_UTC

Date and time of start CTD cast in UTC, standard ISO format (yyyy-mm-ddThh:mmZ)

unitless


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Instruments

Dataset-specific Instrument Name
SeaBird 911
Generic Instrument Name
CTD Sea-Bird 911
Dataset-specific Description
SeaBird 911+ Rosette 24-position, 10-liter bottle Rosette with dual T/C sensors At each station, CTD casts measured temperature, salinity and PAR. Water samples collected at depths of 300, 250, 200, 150, 120, 100, 80, 60, 40, 30, 20, 10 m, and the surface were filtered and preserved for nutrient analysis.
Generic Instrument Description
The Sea-Bird SBE 911 is a type of CTD instrument package. The SBE 911 includes the SBE 9 Underwater Unit and the SBE 11 Deck Unit (for real-time readout using conductive wire) for deployment from a vessel. The combination of the SBE 9 and SBE 11 is called a SBE 911. The SBE 9 uses Sea-Bird's standard modular temperature and conductivity sensors (SBE 3 and SBE 4). The SBE 9 CTD can be configured with auxiliary sensors to measure other parameters including dissolved oxygen, pH, turbidity, fluorescence, light (PAR), light transmission, etc.). More information from Sea-Bird Electronics.

Dataset-specific Instrument Name
Rosette 24 positions
Generic Instrument Name
Niskin bottle
Dataset-specific Description
SeaBird 911+ Rosette 24-position, 10-liter bottle Rosette with dual T/C sensors At each station, CTD casts measured temperature, salinity and PAR. Water samples collected at depths of 300, 250, 200, 150, 120, 100, 80, 60, 40, 30, 20, 10 m, and the surface were filtered and preserved for nutrient analysis.
Generic Instrument Description
A Niskin bottle (a next generation water sampler based on the Nansen bottle) is a cylindrical, non-metallic water collection device with stoppers at both ends. The bottles can be attached individually on a hydrowire or deployed in 12, 24, or 36 bottle Rosette systems mounted on a frame and combined with a CTD. Niskin bottles are used to collect discrete water samples for a range of measurements including pigments, nutrients, plankton, etc.

Dataset-specific Instrument Name
Digiquartz
Generic Instrument Name
Pressure Sensor
Dataset-specific Description
Digiquartz
Generic Instrument Description
A pressure sensor is a device used to measure absolute, differential, or gauge pressures. It is used only when detailed instrument documentation is not available.

Dataset-specific Instrument Name
Seapoint Turbidity
Generic Instrument Name
Seapoint Turbidity Meter
Generic Instrument Description
The Seapoint Turbidity Meter detects light scattered by particles suspended in water, generating an output voltage proportional to turbidity or suspended solids.

Dataset-specific Instrument Name
WETstar
Generic Instrument Name
WET Labs (Sea-Bird WETLabs) WETStar fluorometer
Generic Instrument Description
Submersible fluorometer designed for through-flow or pumped CTD applications manufactured by WetLabs and which can be configured for various types of fluorescence. The probe has a temperature range of 0-30 degrees C and a depth rating of 600 meters.


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Deployments

CT2015-01

Website
Platform
R/V Connecticut
Start Date
2015-05-07
End Date
2015-05-07

CT2015-04

Website
Platform
R/V Connecticut
Start Date
2015-08-06
End Date
2015-08-07

CT2016-01

Website
Platform
R/V Connecticut
Start Date
2016-05-03
End Date
2016-05-05

CT2016-02

Website
Platform
R/V Connecticut
Start Date
2016-07-19
End Date
2016-07-20

CT2018-01

Website
Platform
R/V Connecticut
Start Date
2018-04-30
End Date
2018-05-02

CT2018-02

Website
Platform
R/V Connecticut
Start Date
2018-07-18
End Date
2018-07-19

CT2019-01

Website
Platform
R/V Connecticut
Start Date
2019-06-12
End Date
2019-06-17

CT2019-02

Website
Platform
R/V Connecticut
Start Date
2019-07-09
End Date
2019-07-11

CT2019-03

Website
Platform
R/V Connecticut
Start Date
2019-08-13
End Date
2019-08-13

TI661

Website
Platform
R/V Tioga
Start Date
2013-04-28
End Date
2013-04-28

TI667

Website
Platform
R/V Tioga
Start Date
2013-05-14
End Date
2013-05-16

TI670

Website
Platform
R/V Tioga
Start Date
2013-05-30
End Date
2013-05-31

TI672

Website
Platform
R/V Tioga
Start Date
2013-06-12
End Date
2013-06-13

TI677

Website
Platform
R/V Tioga
Start Date
2013-07-08
End Date
2013-07-09

TI747

Website
Platform
R/V Tioga
Start Date
2014-05-02
End Date
2014-05-03

TI751

Website
Platform
R/V Tioga
Start Date
2014-05-20
End Date
2014-05-22

TI758

Website
Platform
R/V Tioga
Start Date
2014-06-15
End Date
2014-06-17

TI762

Website
Platform
R/V Tioga
Start Date
2014-07-10
End Date
2014-07-12

TI813

Website
Platform
R/V Tioga
Start Date
2015-06-17
End Date
2015-06-18

TI817

Website
Platform
R/V Tioga
Start Date
2015-07-07
End Date
2015-07-08

TI972

Website
Platform
R/V Tioga
Start Date
2017-07-17
End Date
2017-07-22

TI978

Website
Platform
R/V Tioga
Start Date
2017-08-09
End Date
2017-08-11


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Project Information

WHCOHH - Physiological and behavioral plasticity in harmful algal bloom dynamics: variation across different habitats (WHCOHH Algal Bloom Dynamics)


Alexandrium catenella and Pseudo-nitzschia spp. threaten human health through their production of potent neurotoxins that respectively cause Paralytic Shellfish Poisoning and Amnesic Shellfish Poisoning. Both are widespread across coastal waters of the U.S. and globally. Environmental factors alter marine ecosystems in many unanticipated ways, and a major concern is that the occurrence of these harmful algal blooms (HABs) and their concomitant human health impacts will grow. This project addresses key uncertainties regarding the impact of environmental variability on the timing and severity of HABs through detailed biological and ecological study of Alexandrium and Pseudo-nitzschia blooms within the Gulf of Maine (GOM). The GOM is an ideal system because of the long history of regional HAB issues and associated groundbreaking research by WHCOHH. Comprehensive studies of bloom physiology, toxicity, and oceanographic drivers have led to construction of coupled physical-biological models that have improved our understanding of key HAB dynamics and set the stage for continued interdisciplinary investigation of mechanisms at the cellular-to-GOM scale that are relevant to human exposure and health. In particular, the physiological responses of these HABs — growth, toxicity, and life cycle transitions — to shifting environmental conditions remain uncertain. We hypothesize that long-term trends in HAB risks in the GOM are inherently linked to physiological processes and toxin dynamics that are driven by ecological stimuli. This project’s aims are designed to illuminate the role of life cycle dynamics and cellular physiology in determining the occurrence of Alexandrium and Pseudo-nitzschia blooms. We apply a wide variety of innovative approaches for study of natural populations in situ, leveraging a unique region-scale HAB observing system (HABON-NE). Aims 1 and 2 focus on A. catenella and seek to characterize cyst dormancy cycles, cyst formation, and subsequent bloom termination. These aims build upon prior successful approaches and models from study of inshore systems, asking the question if open water populations of the GOM are governed by similar dynamics. Aim 3 investigates the physiology underlying the emerging bloom dynamics of Pseudo-nitzschia in the GOM with in situ physiological observation coupled with targeted metatranscriptomics. Through the direct assessment of life cycle processes and physiology of HABs in the GOM, the results from this work will be directly applicable to the successful integration of physiology into models (Project 2) and inform estimates of potential risk for human exposure to HAB toxins (Project 3).



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Program Information

Woods Hole Center for Oceans and Human Health (WHCOHH)


Coverage: Western N. Atlantic, Arctic


Overall Abstract:
The Woods Hole Center for Oceans and Human Health (WHCOHH) will comprise a strong and integrated set of research projects using novel in situ sampling technologies and modeling approaches building on prior research to address how environmental factors influence harmful algal bloom (HAB) dynamics and human exposure to HAB toxins, a serious and global human health threat. The overall objective is to protect public health through enhanced understanding of how oceanic processes affect the intensity and distribution of toxin-producing HABs and to understand the potential health risks from exposure even to low levels of their potent neurotoxins, especially during susceptible stages of life. The Center will focus on two key HAB taxa: Alexandrium catenella, which produces the saxitoxins responsible for paralytic shellfish poisoning (PSP), and Pseudo-nitzschia spp., which produce domoic acid responsible for amnesic shellfish poisoning (ASP) syndrome, both are expanding geographically. Novel, targeted, efficient, and data-rich sampling approaches developed by the applicants and applied in situ in natural settings have revealed new controls of A. catenella population dynamics, and have identified possible new environmental links regarding toxic Pseudo-nitzschia species. Project 1 will examine further the physiological and environmental variables affecting these HABs, which may underlie population adaptation in different habitats and different environmental regimes. Project 2 will incorporate these new and fundamental insights on bloom regulation into coupled population models to predict HAB events, a key step toward being able to quantify future risks from this recurrent public health threat. In biomedical studies with the zebrafish model, Project 3 has identified myelination in the developing brain as a target of domoic acid. They will use transgenic zebrafish and single-cell RNA-sequencing to identify the cell-specific mechanisms underlying effects of domoic acid, saxitoxin, and the cyanotoxin anatoxin-a in zebrafish embryos in vivo and will use human iPSC-derived 3D brain systems in vitro to elucidate toxin effects on neural and glial cell differentiation in human cells. Studies also will determine whether prior exposure to ubiquitous persistent organic pollutants may modify effects of subsequent exposure to saxitoxin and domoic acid. All projects will collaborate to link oceanic processes to human exposure, helping to define the exposure of susceptible human subpopulations. The Community Engagement Core will facilitate integration of the research with education and engagement of resource managers and other stakeholders. We also will improve awareness of emerging HAB issues for the public health community and develop new educational materials and interactive activities for K-12 classrooms, and for health care providers. An Administrative Core will encourage open discussion of planning, integration, and communication, and provide rigorous evaluation of progress in all aspects of the program.

NSF Award Abstract: See https://www.nsf.gov/awardsearch/show-award?AWD_ID=2418297

The data management plan for the program can be found here.



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Funding

Funding SourceAward
NSF Division of Ocean Sciences (NSF OCE)
NSF Division of Ocean Sciences (NSF OCE)
National Institutes of Health (NIH)
National Institutes of Health (NIH)

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