Javascript must be enabled to continue!
Genomic conservation and putative downstream functionality of the phosphatidylinositol signalling pathway in the cnidarian-dinoflagellate symbiosis
View through CrossRef
The mutualistic cnidarian–dinoflagellate symbiosis underpins the evolutionary success of stony corals and the persistence of coral reefs. However, a molecular understanding of the signalling events that lead to the successful establishment and maintenance of this symbiosis remains unresolved. For example, the phosphatidylinositol (PI) signalling pathway has been implicated during the establishment of multiple mutualistic and parasitic interactions across the kingdoms of life, yet its role within the cnidarian-dinoflagellate symbiosis remains unexplored. Here, we aimed to confirm the presence and assess the specific enzymatic composition of the PI signalling pathway across cnidaria and dinoflagellates by compiling 21 symbiotic anthozoan (corals and sea anemones) and 28 symbiotic dinoflagellate (Symbiodiniaceae) transcriptomic and genomic datasets and querying genes related to this pathway. Presence or absence of PI-kinase and PI-phosphatase orthologs were also compared between a broad sampling of taxonomically related symbiotic and non-symbiotic species. Across the symbiotic anthozoans analysed, there was a complete and highly conserved PI pathway, analogous to the pathway found in model eukaryotes. The Symbiodiniaceae pathway showed similarities to its sister taxon, the Apicomplexa, with the absence of PI 4-phosphatases. However, conversely to Apicomplexa, there was also an expansion of homologs present in the PI5-phosphatase and PI5-kinase groups, with unique Symbiodiniaceae proteins identified that are unknown from non-symbiotic unicellular organisms. Additionally, we aimed to unravel the putative functionalities of the PI signalling pathway in this symbiosis by analysing phosphoinositide (PIP)-binding proteins. Analysis of phosphoinositide (PIP)-binding proteins showed that, on average, 2.23 and 1.29% of the total assemblies of anthozoan and Symbiodiniaceae, respectively, have the potential to bind to PIPs. Enrichment of Gene Ontology (GO) terms associated with predicted PIP-binding proteins within each taxon revealed a broad range of functions, including compelling links to processes putatively involved in symbiosis regulation. This analysis establishes a baseline for current understanding of the PI pathway across anthozoans and Symbiodiniaceae, and thus a framework to target future research.
Title: Genomic conservation and putative downstream functionality of the phosphatidylinositol signalling pathway in the cnidarian-dinoflagellate symbiosis
Description:
The mutualistic cnidarian–dinoflagellate symbiosis underpins the evolutionary success of stony corals and the persistence of coral reefs.
However, a molecular understanding of the signalling events that lead to the successful establishment and maintenance of this symbiosis remains unresolved.
For example, the phosphatidylinositol (PI) signalling pathway has been implicated during the establishment of multiple mutualistic and parasitic interactions across the kingdoms of life, yet its role within the cnidarian-dinoflagellate symbiosis remains unexplored.
Here, we aimed to confirm the presence and assess the specific enzymatic composition of the PI signalling pathway across cnidaria and dinoflagellates by compiling 21 symbiotic anthozoan (corals and sea anemones) and 28 symbiotic dinoflagellate (Symbiodiniaceae) transcriptomic and genomic datasets and querying genes related to this pathway.
Presence or absence of PI-kinase and PI-phosphatase orthologs were also compared between a broad sampling of taxonomically related symbiotic and non-symbiotic species.
Across the symbiotic anthozoans analysed, there was a complete and highly conserved PI pathway, analogous to the pathway found in model eukaryotes.
The Symbiodiniaceae pathway showed similarities to its sister taxon, the Apicomplexa, with the absence of PI 4-phosphatases.
However, conversely to Apicomplexa, there was also an expansion of homologs present in the PI5-phosphatase and PI5-kinase groups, with unique Symbiodiniaceae proteins identified that are unknown from non-symbiotic unicellular organisms.
Additionally, we aimed to unravel the putative functionalities of the PI signalling pathway in this symbiosis by analysing phosphoinositide (PIP)-binding proteins.
Analysis of phosphoinositide (PIP)-binding proteins showed that, on average, 2.
23 and 1.
29% of the total assemblies of anthozoan and Symbiodiniaceae, respectively, have the potential to bind to PIPs.
Enrichment of Gene Ontology (GO) terms associated with predicted PIP-binding proteins within each taxon revealed a broad range of functions, including compelling links to processes putatively involved in symbiosis regulation.
This analysis establishes a baseline for current understanding of the PI pathway across anthozoans and Symbiodiniaceae, and thus a framework to target future research.
Related Results
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...
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...
Oxylipin Receptors and Their Role in Inter‐Partner Signalling in a Model Cnidarian‐Dinoflagellate Symbiosis
Oxylipin Receptors and Their Role in Inter‐Partner Signalling in a Model Cnidarian‐Dinoflagellate Symbiosis
ABSTRACT
Oxylipin signalling is central in biology, mediating processes such as cellular homeostasis, inflammation and molecular signalling. ...
Climate Change Leads to a Reduction in Symbiotic Derived Cnidarian Biodiversity on Coral Reefs
Climate Change Leads to a Reduction in Symbiotic Derived Cnidarian Biodiversity on Coral Reefs
Symbiotic relationships enable partners to thrive and survive in habitats where they would either not be as successful, or potentially not exist, without the symbiosis. The coral r...
Ca2+-dependent and Ca2+-independent degradation of phosphatidylinositol in rabbit vas deferens
Ca2+-dependent and Ca2+-independent degradation of phosphatidylinositol in rabbit vas deferens
The effects of Ca2+ and acetylcholine on the degradation and synthesis of phosphatidylinositol in rabbit vas deferens was studied in vitro by a pulse–chase technique and by measuri...
The Cellular and Physiological Basis of Host-Symbiont Specificity in a Model Cnidarian-Dinoflagellate Symbiosis
The Cellular and Physiological Basis of Host-Symbiont Specificity in a Model Cnidarian-Dinoflagellate Symbiosis
<p>The ability of corals to form novel partnerships with symbionts that may be better suited to new environmental conditions is an important factor when assessing the ability...
Partner Switching and Metabolic Carbon Flux under Thermal Stress in the Cnidarian-Dinoflagellate Symbiosis
Partner Switching and Metabolic Carbon Flux under Thermal Stress in the Cnidarian-Dinoflagellate Symbiosis
<p><strong>Reef corals depend heavily on their symbiotic relationship with dinoflagellates of the family Symbiodiniaceae, which are their primary source of metabolic en...

