Javascript must be enabled to continue!
Bioelectricity generation by Symbiodinium microadriaticum : a symbiont-forming photosynthetic dinoflagellate alga from coral reefs
View through CrossRef
Abstract
Climate change is intensifying the phenomenon of coral bleaching, a highly ecologically damaging process that stems from the breakdown in the symbiotic relationship between photosynthetic dinoflagellate algae and Cnidaria (animals). Currently, little is understood about bleaching at the molecular level, since changes in metabolic and redox interactions between the dinoflagellate algae and Cnidaria are challenging to study. Here, we developed electrochemical approaches to measure extracellular electron transfer (EET, a type of bioelectricity) in
Symbiodinium microadriaticum
, a model species of symbiont-forming dinoflagellate algae, and show how this can be used to assess intracellular bioenergetic fluctuations within the alga. We show that EET is dependent on two major intracellular pathways – photosynthesis and respiration – and reveal that expelled electrons exit the cell via diffusible electron carriers. We confirm that EET activity can be affected by environmental stressors linked to coral bleaching, such as changes in temperature, pH and light intensity. Overall, this is a direct and non-invasive approach to provide quantitative measurements of
S. microadriaticum
’s bioenergetics and redox exchanges with the environment in stress conditions. This platform can aid our understanding of the coral-dinoflagellate symbiosis and the molecular mechanisms of bleaching.
Title: Bioelectricity generation by
Symbiodinium microadriaticum
: a symbiont-forming photosynthetic dinoflagellate alga from coral reefs
Description:
Abstract
Climate change is intensifying the phenomenon of coral bleaching, a highly ecologically damaging process that stems from the breakdown in the symbiotic relationship between photosynthetic dinoflagellate algae and Cnidaria (animals).
Currently, little is understood about bleaching at the molecular level, since changes in metabolic and redox interactions between the dinoflagellate algae and Cnidaria are challenging to study.
Here, we developed electrochemical approaches to measure extracellular electron transfer (EET, a type of bioelectricity) in
Symbiodinium microadriaticum
, a model species of symbiont-forming dinoflagellate algae, and show how this can be used to assess intracellular bioenergetic fluctuations within the alga.
We show that EET is dependent on two major intracellular pathways – photosynthesis and respiration – and reveal that expelled electrons exit the cell via diffusible electron carriers.
We confirm that EET activity can be affected by environmental stressors linked to coral bleaching, such as changes in temperature, pH and light intensity.
Overall, this is a direct and non-invasive approach to provide quantitative measurements of
S.
microadriaticum
’s bioenergetics and redox exchanges with the environment in stress conditions.
This platform can aid our understanding of the coral-dinoflagellate symbiosis and the molecular mechanisms of bleaching.
Related Results
Lipid mediators and a new HOPE in the cnidarian-dinoflagellate symbiosis
Lipid mediators and a new HOPE in the cnidarian-dinoflagellate symbiosis
<p dir="ltr">Oxylipin lipid signalling could be a potential mechanism for inter-partner recognition and homeostasis regulation in the cnidarian–dinoflagellate symbiosis, whic...
Characterisation of Oxylipin Receptors in the Cnidarian-Dinoflagellate Symbiosis
Characterisation of Oxylipin Receptors in the Cnidarian-Dinoflagellate Symbiosis
<p dir="ltr"><b>The success of scleractinian corals relies on their ability to establish a symbiotic relationship with dinoflagellate algae from the family Symbiodiniac...
Molecular Signalling in the Cnidarian-Dinoflagellate Symbiosis
Molecular Signalling in the Cnidarian-Dinoflagellate Symbiosis
<p><strong>The cnidarian-dinoflagellate endosymbiosis enables the success of coral reefs, though there are still major knowledge gaps concerning the molecular and cellu...
Modelling regime shifts of coral reefs to sponge reefs
Modelling regime shifts of coral reefs to sponge reefs
<p>Coral reef ecosystems have been degrading globally for decades due to global climate change and anthropogenic pressure, and corals are expected to continue declining in th...
Effect of Coral Reefs on Wave Height
Effect of Coral Reefs on Wave Height
Coral reefs, among other benefits, provide natural protection from waves for coastal communities. In the context of climate change and its role in the degradation of coral reefs an...
Benthic foraminifera associated to cold-water coral ecosystems
Benthic foraminifera associated to cold-water coral ecosystems
Cold-water coral reef ecosystems occur worldwide and are especially developed along the European margin, from northern Norway to the Gulf of Cadiz and into the Western Mediterranea...
The causes and consequences of a diverse and dynamic microbiome
The causes and consequences of a diverse and dynamic microbiome
Symbiosis with heritable microbes is now recognized as a widespread phenomenon, especially among the insects, and can serve as adaptive novelty. With respect to the host, symbionts...
Stability of the cnidarian–dinoflagellate symbiosis is primarily determined by symbiont cell-cycle arrest
Stability of the cnidarian–dinoflagellate symbiosis is primarily determined by symbiont cell-cycle arrest
The cnidarian–dinoflagellate symbiosis relies on the regulation of resident symbiont populations to maintain biomass stability; however, the relative importance of host regulatory ...

