Fossil imprints from oceans of the past
Marine phytoplankton show notable resilience during extreme ocean states Throughout the long opera of Earth’s oceans, algal blooms have dotted across the seascape like a cacophony of pop-up solos. Phytoplankton—the microalgae at the bottom of marine food webs—compete with each other for sunlight and...
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Published in | Science (American Association for the Advancement of Science) Vol. 376; no. 6595; pp. 795 - 796 |
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Main Author | |
Format | Journal Article |
Language | English |
Published |
United States
The American Association for the Advancement of Science
20.05.2022
|
Subjects | |
Online Access | Get full text |
ISSN | 0036-8075 1095-9203 1095-9203 |
DOI | 10.1126/science.abp9754 |
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Abstract | Marine phytoplankton show notable resilience during extreme ocean states
Throughout the long opera of Earth’s oceans, algal blooms have dotted across the seascape like a cacophony of pop-up solos. Phytoplankton—the microalgae at the bottom of marine food webs—compete with each other for sunlight and nutrients to sustain photosynthesis and turn inorganic carbon into organic matter. The occasional blooms of these microalgae, often at scales visible from space, are followed by a chain of life and decay, as different species begin and end their life cycles, following each other in close succession. Phytoplankton play a pivotal role in global biogeochemical cycles and feedbacks on climate and ocean chemistry. On page 853 of this issue, Slater
et al.
(
1
) provide evidence that coccolithophores, a group of calcifying haptophyte algae, remained prominent producers throughout prolonged periods of ocean warming and oxygen depletion in the past, challenging the assumption (
2
) that they had suffered “calcification crises” under previous extreme ocean conditions. |
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AbstractList | Marine phytoplankton show notable resilience during extreme ocean states.Marine phytoplankton show notable resilience during extreme ocean states. Marine phytoplankton show notable resilience during extreme ocean states Throughout the long opera of Earth’s oceans, algal blooms have dotted across the seascape like a cacophony of pop-up solos. Phytoplankton—the microalgae at the bottom of marine food webs—compete with each other for sunlight and nutrients to sustain photosynthesis and turn inorganic carbon into organic matter. The occasional blooms of these microalgae, often at scales visible from space, are followed by a chain of life and decay, as different species begin and end their life cycles, following each other in close succession. Phytoplankton play a pivotal role in global biogeochemical cycles and feedbacks on climate and ocean chemistry. On page 853 of this issue, Slater et al. ( 1 ) provide evidence that coccolithophores, a group of calcifying haptophyte algae, remained prominent producers throughout prolonged periods of ocean warming and oxygen depletion in the past, challenging the assumption ( 2 ) that they had suffered “calcification crises” under previous extreme ocean conditions. Marine phytoplankton show notable resilience during extreme ocean states. Throughout the long opera of Earth’s oceans, algal blooms have dotted across the seascape like a cacophony of pop-up solos. Phytoplankton—the microalgae at the bottom of marine food webs—compete with each other for sunlight and nutrients to sustain photosynthesis and turn inorganic carbon into organic matter. The occasional blooms of these microalgae, often at scales visible from space, are followed by a chain of life and decay, as different species begin and end their life cycles, following each other in close succession. Phytoplankton play a pivotal role in global biogeochemical cycles and feedbacks on climate and ocean chemistry. On page 853 of this issue, Slater et al. (1) provide evidence that coccolithophores, a group of calcifying haptophyte algae, remained prominent producers throughout prolonged periods of ocean warming and oxygen depletion in the past, challenging the assumption (2) that they had suffered “calcification crises” under previous extreme ocean conditions. |
Author | Henderiks, Jorijntje |
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Cites_doi | 10.3389/fmars.2021.799936 10.1029/2012PA002351 10.1093/icesjms/fsaa067 10.1029/2009GC002788 10.1016/j.earscirev.2015.01.008 10.1029/2019PA003626 10.1126/science.abm7330 |
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References | Schlanger S. O. (e_1_3_1_6_2) 1976; 55 e_1_3_1_8_2 e_1_3_1_7_2 e_1_3_1_9_2 e_1_3_1_10_2 e_1_3_1_4_2 e_1_3_1_5_2 e_1_3_1_2_2 Erba E. (e_1_3_1_3_2) 2019; 58 35587965 - Science. 2022 May 20;376(6595):853-856 |
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Snippet | Marine phytoplankton show notable resilience during extreme ocean states
Throughout the long opera of Earth’s oceans, algal blooms have dotted across the... Marine phytoplankton show notable resilience during extreme ocean states. Throughout the long opera of Earth’s oceans, algal blooms have dotted across the seascape like a cacophony of pop-up solos. Phytoplankton—the microalgae at the... Marine phytoplankton show notable resilience during extreme ocean states.Marine phytoplankton show notable resilience during extreme ocean states. |
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SubjectTerms | Algae Algal blooms Aquatic microorganisms Biogeochemical cycles Calcification coccolith Depletion Earth Science with specialization in Environmental Analysis Earth Science with specialization in Historical Geology and Palaeontology Eutrophication Food chains Food webs fossil Fossils Geovetenskap med inriktning mot historisk geologi och paleontologi Geovetenskap med inriktning mot miljöanalys Global Warming Inorganic carbon Life cycles Microalgae Nutrients Ocean temperature Ocean warming Oceans Oceans and Seas Organic matter Oxygen depletion Photosynthesis Phytoplankton Plankton |
Title | Fossil imprints from oceans of the past |
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