Meeting Report: Aquatic Flow Cytometry: Achievements and Prospects, Research- and Technology Centre Westcoast (FTZ), Büsum, Germany, October 15–16, 1998 (original) (raw)

CytoBuoy: a step forward towards using flow cytometry in operational oceanography

George Dubelaar

Scientia Marina, 2000

View PDFchevron_right

Design and first results of CytoBuoy: A wireless flow cytometer for in situ analysis of marine and fresh waters

George Dubelaar

Cytometry, 1999

View PDFchevron_right

Sub meso scale phytoplankton distribution in the North East Atlantic surface waters determined with an automated flow cytometer

Michel DENIS

Biogeosciences, 2009

View PDFchevron_right

SeaFlow: A novel underway flow-cytometer for continuous observations of phytoplankton in the ocean

Francois Ribalet

View PDFchevron_right

The emergence of automated high-frequency flow cytometry: revealing temporal and spatial phytoplankton variability

Gerald Gregori

Journal of Plankton Research, 2007

View PDFchevron_right

Phytoplankton and their Analysis by Flow Cytometry

Isabelle Biegala

Flow Cytometry with Plant Cells, 2007

View PDFchevron_right

Flow cytometry as a tool for the study of phytoplankton

George Dubelaar

Scientia Marina, 2000

View PDFchevron_right

Optical plankton analyser: A flow cytometer for plankton analysis, II: Specifications

George Dubelaar

Cytometry, 1989

View PDFchevron_right

NIOZ Flow Cytometer Workshop. Comparing organism detection instruments in measuring 2-10 μm and 10-50 μm plankton cells

Stephan Gollasch

View PDFchevron_right

Optical plankton analyser: A flow cytometer for plankton analysis, I: Design considerations

George Dubelaar

Cytometry, 1989

View PDFchevron_right

Flow cytometry: A powerful tool in analysis of biomass distributions in phytoplankton

J. Ringelberg, George Dubelaar

Water Science and Technology, 1995

View PDFchevron_right

Functional analysis and classification of phytoplankton based on data from an automated flow cytometer

Gerald Gregori

Cytometry Part A, 2011

View PDFchevron_right

Phytoplankton distribution during two contrasted summers in a Mediterranean harbour: combining automated submersible flow cytometry with conventional techniques

Doruk Yilmaz

Environmental Monitoring and Assessment, 2011

View PDFchevron_right

Meeting Report: EU Workshop ?Analysis of Single Cells in the Marine Phytoplankton? (ASCMAP), Alfred Wegener Institute for Polar and Marine Research, Bremerhaven, Germany, April 15?21, 2002

linda medlin

Protist, 2002

View PDFchevron_right

High-resolution analysis of a North Sea phytoplankton community structure based on in situ flow cytometry observations and potential implication for remote sensing

Luis Felipe Artigas

Biogeosciences, 2015

View PDFchevron_right

Using in situ flow cytometry images of ciliates and dinoflagellates for aquatic system monitoring

Gilberto Pereira

Brazilian Journal of Biology

View PDFchevron_right

Comparing flow cytometry and microscopy in the quantification of vital aquatic organisms in ballast water

Machteld Rijkeboer

Journal of Marine Engineering & Technology

View PDFchevron_right

Application of flow cytometry for examining phytoplankton succession in two eutrophic lakes

David Hamilton

Water Science & Technology, 2011

View PDFchevron_right

In situ phytoplankton analysis: there's plenty of room at the bottom

Nastaran Hashemi

Analytical chemistry, 2012

View PDFchevron_right

Short-term variation of phytoplankton assemblages in Mediterranean coastal waters recorded with an automated submerged flow cytometer

Michel DENIS

Journal of Plankton Research, 2008

View PDFchevron_right

High spatial variability of phytoplankton assessed by flow cytometry, in a dynamic productive coastal area, in spring: The eastern English Channel

Luis Felipe Artigas

Estuarine, Coastal and Shelf Science, 2015

View PDFchevron_right

Immuno flow cytometry in marine phytoplankton research

Louis Peperzak

Scientia Marina, 2000

View PDFchevron_right

Scanning flow cytometer modified to distinguish phytoplankton cells from their effective size, effective refractive index, depolarization, and fluorescence

valeria spizzichino

Applied Optics, 2008

View PDFchevron_right

Original data for article: Comparison of epifluorescence microscopy and flow cytometry in counting freshwater picophytoplankton

Marja Tiirola

JYX, 2019

View PDFchevron_right

In-situ, High-Frequency Assessment of Phytoplankton Functional Groups and Their Ecology in Diverse Marine Areas

Alexandre Epinoux

2021

View PDFchevron_right

Phytoplankton group dynamics in the Bay of Marseilles during a 2-year survey based on analytical flow cytometry

Gerald Gregori

Cytometry, 2001

View PDFchevron_right

Trait‐based analysis of subpolar North Atlantic phytoplankton and plastidic ciliate communities using automated flow cytometer

Gláucia Fragoso

Limnology and Oceanography, 2019

View PDFchevron_right

Instrumentation for the measurement of phytoplankton production1

Steven Lohrenz

Limnology and Oceanography, 1983

View PDFchevron_right

Suitability of Flow Cytometry for Estimating Bacterial Biovolume in Natural Plankton Samples: Comparison with Microscopy Data

Jordi Catalan

Applied and Environmental Microbiology, 2007

View PDFchevron_right

Tools for discrimination and analysis of lake bacterioplankton subgroups measured by flow cytometry in a high-resolution depth profile

Jordi Catalan

Aquatic Microbial Ecology, 2004

View PDFchevron_right