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Sci Rep
2020 Feb 25;101:3348. doi: 10.1038/s41598-020-60167-3.
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Holothurians have a reduced GPCR and odorant receptor-like repertoire compared to other echinoderms.
Marquet N
,
Cardoso JCR
,
Louro B
,
Fernandes SA
,
Silva SC
,
Canário AVM
.
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Sea cucumbers lack vision and rely on chemical sensing to reproduce and survive. However, how they recognize and respond to environmental cues remains unknown. Possible candidates are the odorant receptors (ORs), a diverse family of G protein-coupled receptors (GPCRs) involved in olfaction. The present study aimed at characterizing the chemosensory GPCRs in sea cucumbers. At least 246 distinct GPCRs, of which ca. 20% putative ORs, were found in a transcriptome assembly of putative chemosensory (tentacles, oral cavity, calcareous ring, and papillae/tegument) and reproductive (ovary and testis) tissues from Holothuria arguinensis (57 ORs) and in the Apostichopus japonicus genome (79 ORs). The sea cucumber ORs clustered with those of sea urchin and starfish into four main clades of gene expansions sharing a common ancestor and evolving under purifying selection. However, the sea cucumber ORs repertoire was the smallest among the echinoderms and the olfactory receptor signature motif LxxPxYxxxxxLxxxDxxxxxxxxP was better conserved in cluster OR-l1 which also had more members. ORs were expressed in tentacles, oral cavity, calcareous ring, and papillae/tegument, supporting their potential role in chemosensing. This study is the first comprehensive survey of chemosensory GPCRs in sea cucumbers, and provides the molecular basis to understand how they communicate.
Figure 1. Phylogeny of the sea cucumber OR-like candidates (H. arguinensis, 78 sequences and A. japonicus, 112 sequences) selected by the HMM analysis with OR-like/olfactory and non-olfactory rhodopsins from other echinoderms (A. planci, starfish and S. purpuratus, sea urchin), cnidaria (N. vectensis, sea anemone) and ORs from cephalochordates (B. floridae, amphioxus) and aquatic vertebrates (O. latipes, teleost fish). The ML tree was rooted with the chordates (amphioxus and teleost fish) cluster. The different OR-like/olfactory clusters are highlighted by a coloured line, corresponding to the respective group, around the tree. The four echinoderm OR-like clades are shaded in grey and numbered according to the cluster name: 1 is OR-l1, 2 is OR-l2, 3 is OR-l3 and 4 is OR-l4. The sea cucumber specific gene expansions are designated as SC-1, SC-2, SC-3 and SC-4. Branch support was represented only when at least one of the three methods used (aLRT-Chi2, aBayes and SH-LRT) had statistically significant supporting values. Tree branch symbol: full circle: three methods were significant; circle with a dot: two methods were significant and empty circle: one method was significant. SC: sea cucumber.
Figure 2. Number and percentage of GPCRs, including the percentage of OR-like within the Rhodopsin family, in different species: N. vectensis28,47, A. japonicus and H. arguinensis (present manuscript), S. purpuratus33,47 (ORs: surreal-GPCRs; groups A-F), A. planci34 (ORs: groups A-K), H. sapiens47,48, D. rerio30,48, T. rubripes30,48 and B. floridae29,86. The cladogram corresponds to a species tree that was built using the ML method with concatenated sequence of four ORs per species. The values of the bootstrap are seen at the nodes of the trees. This species tree is in agreement with the generic tree defined in the Tree of Life93 (http://tolweb.org). The percentage of OR-like Rhodopsin found within the Rhodopsin family is represented in light blue.
Figure 3. Mapping of the OR-like gene candidates in A. japonicus genome. Only scaffolds containing at least two OR-like genes are represented. Horizontal lines represent the genome fragments and each vertical coloured line represents an exon. There are putative sea cucumber OR-like genes with two exons. Gene orientation is denoted by colour: genes in the sense strand are represented in green and genes in the antisense strand are represented in red. The bar on top indicates the absolute distance in kilo base pairs (kbp).
Figure 4. Weblogo obtained from the alignment of the motif LxxPxYxxxxxLxxxDxxxxxxxxP. A consensus echinoderm weblogo resulting from the alignment of all sequences identified per echinoderm cluster is represented with the yellow background. The height of each symbol indicates the relative frequency of each amino acid at that position.
Figure 5. Venn diagrams showing the distribution of the OR-like candidates from each cluster (a: OR-l1, b: OR-l2, c: OR-l3, d: OR-l4) among tissues. OC: oral cavity, Pâ+âT: papillae/tegument, CR: calcareous ring, Tt: tentacles, O: ovary). Nâ=ânumber of OR-like receptors found in each clade.
Figure 6. Expression of 20âH. arguinensis OR-like gene candidates from the four echinoderm OR-like groups analysed by qPCR in (a) tentacles, (b) papillae/tegument, (c) oral cavity. Data are presented as the mean ± SEM (nâ=â3 biological replicates). Notice the difference in scale in the ordinates.
Abascal,
ProtTest: selection of best-fit models of protein evolution.
2005, Pubmed
Abascal,
ProtTest: selection of best-fit models of protein evolution.
2005,
Pubmed
Ache,
Olfaction: diverse species, conserved principles.
2005,
Pubmed
Alioto,
The odorant receptor repertoire of teleost fish.
2005,
Pubmed
Alioto,
The repertoire of olfactory C family G protein-coupled receptors in zebrafish: candidate chemosensory receptors for amino acids.
2006,
Pubmed
Altschul,
Basic local alignment search tool.
1990,
Pubmed
Anisimova,
Survey of branch support methods demonstrates accuracy, power, and robustness of fast likelihood-based approximation schemes.
2011,
Pubmed
Bargmann,
Comparative chemosensation from receptors to ecology.
2006,
Pubmed
Benton,
Variant ionotropic glutamate receptors as chemosensory receptors in Drosophila.
2009,
Pubmed
Bjarnadóttir,
The gene repertoire and the common evolutionary history of glutamate, pheromone (V2R), taste(1) and other related G protein-coupled receptors.
2005,
Pubmed
Buck,
A novel multigene family may encode odorant receptors: a molecular basis for odor recognition.
1991,
Pubmed
Burke,
A genomic view of the sea urchin nervous system.
2006,
Pubmed
,
Echinobase
Campbell,
Escape and aggregation responses of three echinoderms to conspecific stimuli.
2001,
Pubmed
,
Echinobase
Chen,
Differences in selection drive olfactory receptor genes in different directions in dogs and wolf.
2012,
Pubmed
Churcher,
The antiquity of chordate odorant receptors is revealed by the discovery of orthologs in the cnidarian Nematostella vectensis.
2011,
Pubmed
,
Echinobase
Churcher,
Deep sequencing of the olfactory epithelium reveals specific chemosensory receptors are expressed at sexual maturity in the European eel Anguilla anguilla.
2015,
Pubmed
Churcher,
Amphioxus (Branchiostoma floridae) has orthologs of vertebrate odorant receptors.
2009,
Pubmed
Crooks,
WebLogo: a sequence logo generator.
2004,
Pubmed
Cummins,
Candidate chemoreceptor subfamilies differentially expressed in the chemosensory organs of the mollusc Aplysia.
2009,
Pubmed
Dulac,
A novel family of genes encoding putative pheromone receptors in mammals.
1995,
Pubmed
Eddy,
Profile hidden Markov models.
1998,
Pubmed
Eirín-López,
The birth-and-death evolution of multigene families revisited.
2012,
Pubmed
Feldmesser,
Widespread ectopic expression of olfactory receptor genes.
2006,
Pubmed
Ferrer,
Olfactory Receptors in Non-Chemosensory Organs: The Nervous System in Health and Disease.
2016,
Pubmed
Fredriksson,
The G-protein-coupled receptors in the human genome form five main families. Phylogenetic analysis, paralogon groups, and fingerprints.
2003,
Pubmed
Fredriksson,
The repertoire of G-protein-coupled receptors in fully sequenced genomes.
2005,
Pubmed
Fredriksson,
Seven evolutionarily conserved human rhodopsin G protein-coupled receptors lacking close relatives.
2003,
Pubmed
Gimelbrant,
Selective pressures on the olfactory receptor repertoire since the human-chimpanzee divergence.
2004,
Pubmed
Guindon,
New algorithms and methods to estimate maximum-likelihood phylogenies: assessing the performance of PhyML 3.0.
2010,
Pubmed
Haas,
De novo transcript sequence reconstruction from RNA-seq using the Trinity platform for reference generation and analysis.
2013,
Pubmed
Hall,
The crown-of-thorns starfish genome as a guide for biocontrol of this coral reef pest.
2017,
Pubmed
,
Echinobase
Heberle,
InteractiVenn: a web-based tool for the analysis of sets through Venn diagrams.
2015,
Pubmed
Hoover,
Evolution of olfactory receptors.
2013,
Pubmed
Kamesh,
The repertoire of G protein-coupled receptors in the sea squirt Ciona intestinalis.
2008,
Pubmed
Kaupp,
Olfactory signalling in vertebrates and insects: differences and commonalities.
2010,
Pubmed
Krieger,
Olfactory reception in invertebrates.
1999,
Pubmed
Krishnan,
The GPCR repertoire in the demosponge Amphimedon queenslandica: insights into the GPCR system at the early divergence of animals.
2014,
Pubmed
Krishnan,
Remarkable similarities between the hemichordate (Saccoglossus kowalevskii) and vertebrate GPCR repertoire.
2013,
Pubmed
Krogh,
Predicting transmembrane protein topology with a hidden Markov model: application to complete genomes.
2001,
Pubmed
Kumar,
MEGA7: Molecular Evolutionary Genetics Analysis Version 7.0 for Bigger Datasets.
2016,
Pubmed
Larsson,
AliView: a fast and lightweight alignment viewer and editor for large datasets.
2014,
Pubmed
Lefort,
SMS: Smart Model Selection in PhyML.
2017,
Pubmed
Letunic,
SMART: recent updates, new developments and status in 2015.
2015,
Pubmed
Liberles,
A second class of chemosensory receptors in the olfactory epithelium.
2006,
Pubmed
Lv,
Genome-Wide Identification and Characterization of Olfactory Receptor Genes in Chinese Perch, Siniperca chuatsi.
2019,
Pubmed
Marquet,
Chemicals released by male sea cucumber mediate aggregation and spawning behaviours.
2018,
Pubmed
,
Echinobase
Matsunami,
A multigene family encoding a diverse array of putative pheromone receptors in mammals.
1997,
Pubmed
Mombaerts,
Seven-transmembrane proteins as odorant and chemosensory receptors.
1999,
Pubmed
Mombaerts,
The human repertoire of odorant receptor genes and pseudogenes.
2001,
Pubmed
Mondragón-Palomino,
Patterns of positive selection in the complete NBS-LRR gene family of Arabidopsis thaliana.
2002,
Pubmed
Niimura,
Evolutionary dynamics of olfactory receptor genes in chordates: interaction between environments and genomic contents.
2009,
Pubmed
,
Echinobase
Niimura,
Evolutionary dynamics of olfactory receptor genes in fishes and tetrapods.
2005,
Pubmed
Niimura,
On the origin and evolution of vertebrate olfactory receptor genes: comparative genome analysis among 23 chordate species.
2009,
Pubmed
Niimura,
Extreme expansion of the olfactory receptor gene repertoire in African elephants and evolutionary dynamics of orthologous gene groups in 13 placental mammals.
2014,
Pubmed
Niimura,
Olfactory receptor multigene family in vertebrates: from the viewpoint of evolutionary genomics.
2012,
Pubmed
Niimura,
Evolution of olfactory receptor genes in the human genome.
2003,
Pubmed
Niimura,
Comparative evolutionary analysis of olfactory receptor gene clusters between humans and mice.
2005,
Pubmed
Nordström,
The amphioxus (Branchiostoma floridae) genome contains a highly diversified set of G protein-coupled receptors.
2008,
Pubmed
Nordström,
Independent HHsearch, Needleman--Wunsch-based, and motif analyses reveal the overall hierarchy for most of the G protein-coupled receptor families.
2011,
Pubmed
,
Echinobase
Pierron,
Current relaxation of selection on the human genome: tolerance of deleterious mutations on olfactory receptors.
2013,
Pubmed
Raible,
Opsins and clusters of sensory G-protein-coupled receptors in the sea urchin genome.
2006,
Pubmed
,
Echinobase
Ramasamy,
The Evolution of Olfactory Gene Families in Drosophila and the Genomic Basis of chemical-Ecological Adaptation in Drosophila suzukii.
2016,
Pubmed
Rivière,
Formyl peptide receptor-like proteins are a novel family of vomeronasal chemosensors.
2009,
Pubmed
Roberts,
Identification of putative olfactory G-protein coupled receptors in Crown-of-Thorns starfish, Acanthaster planci.
2017,
Pubmed
,
Echinobase
Roberts,
Putative chemosensory receptors are differentially expressed in the sensory organs of male and female crown-of-thorns starfish, Acanthaster planci.
2018,
Pubmed
,
Echinobase
Rosenbaum,
The structure and function of G-protein-coupled receptors.
2009,
Pubmed
Ryba,
A new multigene family of putative pheromone receptors.
1997,
Pubmed
Saraiva,
A novel olfactory receptor gene family in teleost fish.
2007,
Pubmed
Sarkar,
The G protein-coupled receptors in the pufferfish Takifugu rubripes.
2011,
Pubmed
Sato,
Insect olfactory receptors are heteromeric ligand-gated ion channels.
2008,
Pubmed
Silva,
Vomeronasal Receptors in Vertebrates and the Evolution of Pheromone Detection.
2017,
Pubmed
Spehr,
Olfactory receptors: G protein-coupled receptors and beyond.
2009,
Pubmed
Suyama,
PAL2NAL: robust conversion of protein sequence alignments into the corresponding codon alignments.
2006,
Pubmed
Thomas,
The Caenorhabditis chemoreceptor gene families.
2008,
Pubmed
Touhara,
Sensing odorants and pheromones with chemosensory receptors.
2009,
Pubmed
VandenSpiegel,
Fine structure of the dorsal papillae in the holothurioid Holothuria forskali (Echinodermata).
1995,
Pubmed
,
Echinobase
Yang,
PAML 4: phylogenetic analysis by maximum likelihood.
2007,
Pubmed
Zhang,
The sea cucumber genome provides insights into morphological evolution and visceral regeneration.
2017,
Pubmed
,
Echinobase