A novel protein, ubiquitous in marine phytoplankton, concentrates iron at the cell surface and facilitates uptake.

Archive ouverte

Morrissey, Joe | Sutak, Robert | Paz-Yepes, Javier | Tanaka, Atsuko | Moustafa, Ahmed | Veluchamy, Alaguraj | Thomas, Yann | Botebol, Hugo | Bouget, François-Yves | Mcquaid, Jeffrey B | Tirichine, Leila | Allen, Andrew E | Lesuisse, Emmanuel | Bowler, Chris

Edité par CCSD ; Elsevier -

International audience. Numerous cellular functions including respiration require iron. Plants and phytoplankton must also maintain the iron-rich photosynthetic electron transport chain, which most likely evolved in the iron-replete reducing environments of the Proterozoic ocean [1]. Iron bioavailability has drastically decreased in the contemporary ocean [1], most likely selecting for the evolution of efficient iron acquisition mechanisms among modern phytoplankton. Mesoscale iron fertilization experiments often result in blooms dominated by diatoms [2], indicating that diatoms have adaptations that allow survival in iron-limited waters and rapid multiplication when iron becomes available. Yet the genetic and molecular bases are unclear, as very few iron uptake genes have been functionally characterized from marine eukaryotic phytoplankton, and large portions of diatom iron starvation transcriptomes are genes encoding unknown functions [3-5]. Here we show that the marine diatom Phaeodactylum tricornutum utilizes ISIP2a to concentrate Fe(III) at the cell surface as part of a novel, copper-independent and thermodynamically controlled iron uptake system. ISIP2a is expressed in response to iron limitation several days prior to the induction of ferrireductase activity, and it facilitates significant Fe(III) uptake during the initial response to Fe limitation. ISIP2a is able to directly bind Fe(III) and increase iron uptake when heterologously expressed, whereas knockdown of ISIP2a in P. tricornutum decreases iron uptake, resulting in impaired growth and chlorosis during iron limitation. ISIP2a is expressed by diverse marine phytoplankton, indicating that it is an ecologically significant adaptation to the unique nutrient composition of marine environments.

Consulter en ligne

Suggestions

Du même auteur

Ostreococcus tauri is a new model green alga for studying iron metabolism in eukaryotic phytoplankton

Archive ouverte | Lelandais, Gaëlle | CCSD

International audience. Background: Low iron bioavailability is a common feature of ocean surface water and therefore micro-algae developed original strategies to optimize iron uptake and metabolism. The marine pico...

Endocytosis-mediated siderophore uptake as a strategy for Fe acquisition in diatoms

Archive ouverte | Kazamia, Elena | CCSD

International audience. Phytoplankton growth is limited in vast oceanic regions by the low bioavailability of iron. Iron fertilization often results in diatom blooms, yet the physiological underpinnings for how diat...

Central role for ferritin in the day/night regulation of iron homeostasis in marine phytoplankton.

Archive ouverte | Botebol, Hugo | CCSD

International audience. In large regions of the open ocean, iron is a limiting resource for phytoplankton. The reduction of iron quota and the recycling of internal iron pools are among the diverse strategies that p...

Chargement des enrichissements...