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evolution of modern eukaryotic phytoplankton
by
Falkowski, P.G
, Schofield, O
, Katz, M.E
, Quigg, A
, Raven, J.A
, Knoll, A.H
, Taylor, F.J.R
in
Bacillariophyceae
/ Biodiversity
/ Biological and medical sciences
/ Biological Evolution
/ coccolithophores
/ Community structure
/ Diatoms
/ Dinophyceae
/ Dinophyta
/ Ecological function
/ Ecosystem
/ Eukaryotes
/ Evolution
/ Fossils
/ Fundamental and applied biological sciences. Psychology
/ Genetics of eukaryotes. Biological and molecular evolution
/ Grasses
/ Inferences
/ literature reviews
/ Marine
/ Marine ecology
/ Marine ecosystems
/ Mesozoic
/ microalgae
/ Oceans
/ Organic Chemistry
/ Organic matter
/ Paleobotany
/ Phylogeny
/ Physiological aspects
/ Phytoplankton
/ Phytoplankton - classification
/ Phytoplankton - cytology
/ Phytoplankton - physiology
/ Plankton
/ Plant cells
/ Plastids
/ Plastids - physiology
/ Prymnesiophyceae
/ Review
/ Rhodophyta
/ Symbiosis
/ Trophic levels
2004
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evolution of modern eukaryotic phytoplankton
by
Falkowski, P.G
, Schofield, O
, Katz, M.E
, Quigg, A
, Raven, J.A
, Knoll, A.H
, Taylor, F.J.R
in
Bacillariophyceae
/ Biodiversity
/ Biological and medical sciences
/ Biological Evolution
/ coccolithophores
/ Community structure
/ Diatoms
/ Dinophyceae
/ Dinophyta
/ Ecological function
/ Ecosystem
/ Eukaryotes
/ Evolution
/ Fossils
/ Fundamental and applied biological sciences. Psychology
/ Genetics of eukaryotes. Biological and molecular evolution
/ Grasses
/ Inferences
/ literature reviews
/ Marine
/ Marine ecology
/ Marine ecosystems
/ Mesozoic
/ microalgae
/ Oceans
/ Organic Chemistry
/ Organic matter
/ Paleobotany
/ Phylogeny
/ Physiological aspects
/ Phytoplankton
/ Phytoplankton - classification
/ Phytoplankton - cytology
/ Phytoplankton - physiology
/ Plankton
/ Plant cells
/ Plastids
/ Plastids - physiology
/ Prymnesiophyceae
/ Review
/ Rhodophyta
/ Symbiosis
/ Trophic levels
2004
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Do you wish to request the book?
evolution of modern eukaryotic phytoplankton
by
Falkowski, P.G
, Schofield, O
, Katz, M.E
, Quigg, A
, Raven, J.A
, Knoll, A.H
, Taylor, F.J.R
in
Bacillariophyceae
/ Biodiversity
/ Biological and medical sciences
/ Biological Evolution
/ coccolithophores
/ Community structure
/ Diatoms
/ Dinophyceae
/ Dinophyta
/ Ecological function
/ Ecosystem
/ Eukaryotes
/ Evolution
/ Fossils
/ Fundamental and applied biological sciences. Psychology
/ Genetics of eukaryotes. Biological and molecular evolution
/ Grasses
/ Inferences
/ literature reviews
/ Marine
/ Marine ecology
/ Marine ecosystems
/ Mesozoic
/ microalgae
/ Oceans
/ Organic Chemistry
/ Organic matter
/ Paleobotany
/ Phylogeny
/ Physiological aspects
/ Phytoplankton
/ Phytoplankton - classification
/ Phytoplankton - cytology
/ Phytoplankton - physiology
/ Plankton
/ Plant cells
/ Plastids
/ Plastids - physiology
/ Prymnesiophyceae
/ Review
/ Rhodophyta
/ Symbiosis
/ Trophic levels
2004
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Journal Article
evolution of modern eukaryotic phytoplankton
2004
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Overview
The community structure and ecological function of contemporary marine ecosystems are critically dependent on eukaryotic phytoplankton. Although numerically inferior to cyanobacteria, these organisms are responsible for the majority of the flux of organic matter to higher trophic levels and the ocean interior. Photosynthetic eukaryotes evolved more than 1.5 billion years ago in the Proterozoic oceans. However, it was not until the Mesozoic Era (251 to 65 million years ago) that the three principal phytoplankton clades that would come to dominate the modern seas rose to ecological prominence. In contrast to their pioneering predecessors, the dinoflagellates, coccolithophores, and diatoms all contain plastids derived from an ancestral red alga by secondary symbiosis. Here we examine the geological, geochemical, and biological processes that contributed to the rise of these three, distantly related, phytoplankton groups.
Publisher
American Association for the Advancement of Science,The American Association for the Advancement of Science
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