Project: Collaborative Research: Effects of multiple stressors on Marine Phytoplankton

Acronym/Short Name:Stressors on Marine Phytoplankton
Project Duration:2015-10 -2018-09

Description

The overarching goal of this project is to develop a framework for understanding the response of phytoplankton to multiple environmental stresses. Marine phytoplankton, which are tiny algae, produce as much oxygen as terrestrial plants and provide food, directly or indirectly, to all marine animals. Their productivity is thus important both for global elemental cycles of oxygen and carbon, as well as for the productivity of the ocean. Globally the productivity of marine phytoplankton appears to be changing, but while we have some understanding of the response of phytoplankton to shifts in one environmental parameter at a time, like temperature, there is very little knowledge of their response to simultaneous changes in several parameters. Increased atmospheric carbon dioxide concentrations result in both ocean acidification and increased surface water temperatures. The latter in turn leads to greater ocean stratification and associated changes in light exposure and nutrient availability for the plankton. Recently it has become apparent that the response of phytoplankton to simultaneous changes in these growth parameters is not additive. For example, the effect of ocean acidification may be severe at one temperature-light combination and negligible at another. The researchers of this project will carry out experiments that will provide a theoretical understanding of the relevant interactions so that the impact of climate change on marine phytoplankton can be predicted in an informed way. This project will engage high schools students through training of a teacher and the development of a teaching unit. Undergraduate and graduate students will work directly on the research. A cartoon journalist will create a cartoon story on the research results to translate the findings to a broader general public audience.

Each phytoplankton species has the capability to acclimatize to changes in temperature, light, pCO2, and nutrient availability - at least within a finite range. However, the response of phytoplankton to multiple simultaneous stressors is frequently complex, because the effects on physiological responses are interactive. To date, no datasets exist for even a single species that could fully test the assumptions and implications of existing models of phytoplankton acclimation to multiple environmental stressors. The investigators will combine modeling analysis with laboratory experiments to investigate the combined influences of changes in pCO2, temperature, light, and nitrate availability on phytoplankton growth using cultures of open ocean and coastal diatom strains (Thalassiosira pseudonana) and an open ocean cyanobacteria species (Synechococcus sp.). The planned experiments represent ideal case studies of the complex and interactive effects of environmental conditions on organisms, and results will provide the basis for predictive modeling of the response of phytoplankton taxa to multiple environmental stresses.


DatasetLatest Version DateCurrent State
Continuous culture studies of Synechococcus elongatus CCMP1629 in nitrate-limited and nutrient-replete cultures plus DNA results 2023-04-28Under revision
Series 2A-3: Multiple stressor experiments on T. pseudonana (CCMP1014) – Chlorophyll, particulate organic carbon and particulate organic nitrogen2020-11-18Final no updates expected
Series 2A-1: Multiple stressor experiments on T. pseudonana (CCMP1014) – cell abundance and cell size in experiments2020-11-18Final no updates expected
Series 2A-2: Multiple stressor experiments on T. pseudonana (CCMP1014) – photophysiology2020-11-18Final no updates expected
Series 1B-3: Multiple stressor experiments on T. pseudonana (CCMP1335) – computed data from the LC3 protocol for samples at 4 temperatures, 15-26C2020-11-12Final no updates expected
Series 1B-4: Multiple stressor experiments on T. pseudonana (CCMP1335) – Chlorophyll, particulate organic carbon and particulate organic nitrogen2020-11-12Final no updates expected
Series 1B-1: Multiple stressor experiments on T. pseudonana (CCMP1335) – pH, Dissolved Inorganic carbon (DIC), and Macronutrient concentrations in experiments2020-11-12Final no updates expected
Series 1B-2: Multiple stressor experiments on T. pseudonana (CCMP1335) – cell abundance and cell size in experiments2020-11-12Final no updates expected
Continuous culture studies of possible climate change effects: Thalassiosira pseudonana CCMP1335 growth in nitrate-limited and nutrient-replete cultures2020-05-07Final no updates expected
Series 4A: Multiple stressor experiments on the cyanobacteria Synechococcus elongatus CCMP1629 - computed photophysiology parameters2020-04-03Final no updates expected
Series 4A: Multiple stressor experiments on the cyanobacteria Synechococcus elongatus CCMP1629 - raw fluorescence readings for photophysiology computations2020-04-02Final no updates expected
Series 4A: Multiple stressor experiments on the cyanobacteria Synechococcus elongatus CCMP1629 – cell abundance and size by flow cytometry2020-04-01Final no updates expected
Series 4A: Multiple stressor experiments on the cyanobacteria Synechococcus elongatus CCMP1629 - Chlorophyll, particulate organic carbon and particulate organic nitrogen.2020-04-01Final no updates expected
Series 4A: Multiple stressor experiments on Synechococcus elongatus (CCMP1629) – pH measurements2020-03-26Final no updates expected
Series 4A: Multiple stressor experiments on Synechococcus elongatus (CCMP1629) – Dissolved Inorganic Carbon (DIC)2020-03-26Final no updates expected
Series 4A: Multiple stressor experiments on Synechococcus elongatus (CCMP1629) – nutrients2020-03-26Final no updates expected
Series 3A: Multiple stressor experiments on T. pseudonana (CCMP1014) - cell size estimated by forward scatter from flow cytometry2019-06-17Final no updates expected
Series 3A: Multiple stressor experiments on T. pseudonana (CCMP1014) - Dissolved Inorganic Carbon (DIC) measurements2019-06-17Final no updates expected
Series 3A: Multiple stressor experiments on T. pseudonana (CCMP1014) - photophysiology measurements2019-06-17Final no updates expected
Series 3A: Multiple stressor experiments on T. pseudonana (CCMP1014) - Phosphate, silicate, and nitrate plus nitrite measurements2019-06-17Final no updates expected
Series 3A: Multiple stressor experiments on T. pseudonana (CCMP1014) - Chlorophyll, particulate organic carbon and particulate organic nitrogen.2019-06-17Final no updates expected
Series 3A: Multiple stressor experiments on T. pseudonana (CCMP1014) – cell abundance by flow cytometry2019-06-17Final no updates expected
Series 3A: Multiple stressor experiments on T. pseudonana (CCMP1014) – pH measurements2019-06-17Final no updates expected
Series 3B: Supplemental experiments on T. pseudonana (CCMP1014) - growth under bubbling stress: A-pulse raw fluorescence data2018-10-31Final no updates expected
Series 3B: Supplemental experiments on T. pseudonana (CCMP1014) growth under bubbling stress: NPQ1 protocol (Non-Photochemical chlorophyll fluorescence Quenching) computed photochemical measurements2018-10-31Final no updates expected
Series 3B: Supplemental experiments on T. pseudonana (CCMP1014) growth under bubbling stress: LC3 protocol raw fluorescence measurements for non-aerated samples and aerated samples 2018-10-31Final no updates expected
Series 3B: Supplemental experiments on T. pseudonana (CCMP1014) - growth under bubbling stress: flow cytometry measurements2018-10-31Final no updates expected
Series 3B: Supplemental experiments on T. pseudonana (CCMP1014) growth under bubbling stress: computed photochemical measurements using LC3 protocol for non-aerated samples and aerated samples 2018-10-31Final no updates expected
Series 3B: Supplemental experiments on T. pseudonana (CCMP1014) growth under bubbling stress: NPQ1 protocol (Non-Photochemical chlorophyll fluorescence Quenching) raw fluorescence measurements for non-aerated samples and aerated samples 2018-10-31Final no updates expected
Series 3B: Supplemental experiments on Thalassiosira pseudonana (CCMP1014) cultures determining the optimal aquapen actinic light pulse (A-pulse) setting: computed values including min and max fluorescence2018-10-29Final no updates expected
Experimental results of nitrate-limited or nitrate-replete continuous culture studies of Thalassiosira pseudonana at 5 temperatures with either high or low pCO2 and irradiance2018-09-18Final no updates expected
Series 1B: Four follow-up experiments on the combined effect of light and temperature changes on the growth rate (mu) of Thalassiosira pseudonana CCMP 1335 conducted to supplement series 1A experiments2018-09-04Final no updates expected
[Deprecated] Laboratory growth, photosynthetic, and growth rates of Thalassiosira pseudonana clone 3H in nitrate replete culture (Stressors on Marine Phytoplankton project)2017-09-14Deprecated
[Deprecated] Laboratory growth, photosynthetic, and respiration rates of Thalassiosira pseudonana clone 3H in nitrate limited culture (Stressors on Marine Phytoplankton project)2017-09-14Deprecated
Series 1A: Two-stressor effects on Tp-1335: Experiments to investigate the combined effect of light and temperature changes on the growth rate of Thalassiosira pseudonana CCMP2017-09-11Final no updates expected
Series 1C: Supplemental experiments on Tp-1335: Determination of dark acclimatization time of the diatom Thalassiosira pseudonana2017-09-11Final no updates expected

People

Lead Principal Investigator: Edward Laws
Louisiana State University College of the Coast and Environment (LSU-CC&E [formerly SC&E])

Principal Investigator: Uta Passow
University of California-Santa Barbara (UCSB-MSI)

Contact: Uta Passow
University of California-Santa Barbara (UCSB-MSI)


Data Management Plan

DMP_Passow_Laws_OCE-1536581_1538602.pdf (42.26 KB)
02/09/2025