Saved in:
Bibliographic Details
Main Authors: Sulu-Gambari, Fatimah, Seitaj, Dorina, Meysman, Filip J R, Schauer, Regina, Polerecky, Lubos, Slomp, Caroline P
Format: Dataset Open Access
Language:en
Published: PANGAEA 2017
Subjects:
Online Access:https://doi.org/10.1594/PANGAEA.876145
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1867168570190856192
author Sulu-Gambari, Fatimah
Seitaj, Dorina
Meysman, Filip J R
Schauer, Regina
Polerecky, Lubos
Slomp, Caroline P
author_facet Sulu-Gambari, Fatimah
Seitaj, Dorina
Meysman, Filip J R
Schauer, Regina
Polerecky, Lubos
Slomp, Caroline P
collection Datos científicos de ciencias marinas y ambientales
contents Phosphorus is an essential nutrient for life. The release of phosphorus from sediments is critical in sustaining phytoplankton growth in many aquatic systems and is pivotal to eutrophication and the development of bottom water hypoxia. Conventionally, sediment phosphorus release is thought to be controlled by changes in iron oxide reduction driven by variations in external environmental factors, such as organic matter input and bottom water oxygen. Here, we show that internal shifts in microbial communities, and specifically the population dynamics of cable bacteria, can also induce strong seasonality in sedimentary iron-phosphorus dynamics. Field observations in a seasonally hypoxic coastal basin demonstrate that the long-range electrogenic metabolism of cable bacteria leads to a dissolution of iron sulfides in winter and spring. Subsequent oxidation of the mobilized ferrous iron with manganese oxides results in a large stock of iron-oxide-bound phosphorus below the oxic zone. In summer, when bottom water hypoxia develops and cable bacteria are undetectable, the phosphorus associated with these iron oxides is released, strongly increasing phosphorus availability in the water column. Future research should elucidate whether formation of iron-oxide-bound phosphorus driven by cable bacteria, as observed in this study, contributes to the seasonality in iron-phosphorus cycling in aquatic sediments worldwide
format Dataset Open Access
id pangaea_https___doi_org_10_1594_PANGAEA_876145
institution PANGAEA
language en
publishDate 2017
publisher PANGAEA
record_format pangaea
spellingShingle Cable bacteria control iron-phosphorus dynamics in sediments and water column at two sites of a Coastal Hypoxic Basin
Sulu-Gambari, Fatimah
Seitaj, Dorina
Meysman, Filip J R
Schauer, Regina
Polerecky, Lubos
Slomp, Caroline P

Phosphorus is an essential nutrient for life. The release of phosphorus from sediments is critical in sustaining phytoplankton growth in many aquatic systems and is pivotal to eutrophication and the development of bottom water hypoxia. Conventionally, sediment phosphorus release is thought to be controlled by changes in iron oxide reduction driven by variations in external environmental factors, such as organic matter input and bottom water oxygen. Here, we show that internal shifts in microbial communities, and specifically the population dynamics of cable bacteria, can also induce strong seasonality in sedimentary iron-phosphorus dynamics. Field observations in a seasonally hypoxic coastal basin demonstrate that the long-range electrogenic metabolism of cable bacteria leads to a dissolution of iron sulfides in winter and spring. Subsequent oxidation of the mobilized ferrous iron with manganese oxides results in a large stock of iron-oxide-bound phosphorus below the oxic zone. In summer, when bottom water hypoxia develops and cable bacteria are undetectable, the phosphorus associated with these iron oxides is released, strongly increasing phosphorus availability in the water column. Future research should elucidate whether formation of iron-oxide-bound phosphorus driven by cable bacteria, as observed in this study, contributes to the seasonality in iron-phosphorus cycling in aquatic sediments worldwide
title Cable bacteria control iron-phosphorus dynamics in sediments and water column at two sites of a Coastal Hypoxic Basin
topic
url https://doi.org/10.1594/PANGAEA.876145