| Literature DB >> 18803863 |
Nikolay N Kolmakov1, Michael Kube, Richard Reinhardt, Adelino V M Canario.
Abstract
BACKGROUND: The goldfish (Carassius auratus) uses steroids and prostaglandins as pheromone cues at different stages of the reproductive cycle to facilitate spawning synchronization. Steroid progestin pheromone binding has been detected in goldfish olfactory membranes but the receptors responsible for this specific binding remain unknown. In order to shed some light on the olfactory epithelium transcriptome and search for possible receptor candidates a large set of EST from this tissue were analysed and compared to and combined with a similar zebrafish (Danio rerio) resource.Entities:
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Year: 2008 PMID: 18803863 PMCID: PMC2556351 DOI: 10.1186/1471-2164-9-429
Source DB: PubMed Journal: BMC Genomics ISSN: 1471-2164 Impact factor: 3.969
Summary of goldfish EST sequences analysis
| Total ESTs sequenced | 6144 |
| Sequences passed quality control | 4797 |
| Average length per good quality EST (bp) | 608 |
| Number of contigs | 668 |
| Number of singletons | 3211 |
| Total of unigenes | 3879 |
| Unigenes with database hits | 3243 (83.6%) |
| Unigenes with a known function | 1464 (37.7%) |
Figure 1Frequency of common transcripts between goldfish and zebrafish olfactory EST libraries. Semi-logarithmic plot of counts of each transcript present in both the goldfish normalized and zebrafish non-normalized EST library. The almost uniform relationship (R = 0.009) is a strong indication of absence of amplification bias during normalization.
Unigenes from the Glucose Metabolism category (GO:006006) in goldfish and zebrafish olfactory epithelium collections
| cAMP responsive element modulator | Activating transcription factor 4 | 3-hydroxyisobutyrate dehydrogenase |
| Hexokinase 1 | Aldolase 2, B isoform | 6-phosphofructo-2-kinase/fructose-2,6-biphosphatase 3 |
| Nuclear receptor subfamily 3, group C, member 1 | Glycerol-3-phosphate dehydrogenase 1 (soluble) | 6-phosphogluconolactonase |
| Phosphofructokinase, platelet | Leptin | Adiponectin, C1Q and collagen domain containing |
| Ribose 5-phosphate isomerase A (predicted) | Phosphoglucomutase 3 | Aldhehyde dehydrogenase family 5, subfamily A1 |
| Solute carrier family 2, (facilitated glucose transporter), member 8 | Ribulose-5-phosphate-3-epimerase (predicted) | Calcium channel, voltage-dependent, P/Q type, alpha 1A |
| Transketolase | Transaldolase 1 | cAMP-regulated phosphoprotein 19 |
| Triosephosphate isomerase 1 | Carbonic anhydrase 5a, mitochondrial | |
| Carnitine palmitoyltransferase 1a, liver | ||
| Enolase 1, alpha | ||
| Fatty acid binding protein 5, epidermal | ||
| Glucose phosphate isomerase 1 | ||
| Glucose-6-phosphate dehydrogenase X-linked | ||
| Glyceraldehyde-3-phosphate dehydrogenase, spermatogenic | ||
| Insulin-like growth factor binding protein 1 | ||
| Myelocytomatosis oncogene | ||
| Protein kinase, AMP-activated, alpha 1 catalytic subunit | ||
| Pyruvate dehydrogenase (lipoamide) beta | ||
| Pyruvate kinase, muscle | ||
| Tumor necrosis factor | ||
| Total number of Glucose Metabolism genes | 75 | 100% |
| Positive matches to goldfish OE library | 15 | 20% |
| Positive matches to zebrafish OE library | 29 | 37.3% |
| Unmatched genes | 40 | 53.3% |
Positive matches include counts of genes present in both libraries. For this reason the sum of present and absent genes exceeds the total number of genes used in analysis.
Genes highly represented in the zebrafish olfactory library
| Percentage | Copies | ||
| 1.48 | 512 | Elongation factor 1-alpha.* | |
| 1.39 | 482 | Apolipoprotein Eb* | |
| 1.38 | 480 | n/a | Unknown protein |
| 1.25 | 433 | Invariant chain-like protein 1* | |
| 1.20 | 416 | Beta-actin 2 | |
| 1.14 | 395 | n/a | Zgc:112103 |
| 1.06 | 368 | Similar to solute carrier family 25 (mitochondrial carrier; adenine nucleotide translocator), member 4* | |
| 1.06 | 368 | Ribosomal protein, large, P0* | |
| 1.02 | 354 | Ferritin, heavy polypeptide 1* | |
| 1.00 | 349 | Beta-2-microglobulin* | |
| 0.98 | 341 | Tyrosinase-related protein 1 | |
| 0.89 | 309 | Guanine nucleotide binding protein (G protein), beta polypeptide 2-like 1(RACK1)* | |
| 0.85 | 296 | Similar to HLA-B associated transcript 5, rat orthologue* | |
| 0.82 | 286 | n/a | Unknown protein |
| 0.74 | 257 | Invariant chain-like protein 2* | |
| 0.72 | 250 | Similar to translationally-controlled tumor protein | |
| 0.67 | 232 | Ribosomal protein L4 | |
| 0.60 | 208 | Similar to tubulin alpha 6 | |
| 0.57 | 198 | Ribosomal protein L8* | |
| 0.53 | 185 | n/a | Wu:fc48a12* |
Twenty most represented ESTs in zebrafish olfactory epithelium. Stars indicate matches to goldfish olfactory epithelium.
Figure 2Classification of EST according to Gene Ontology. Distribution of goldfish olfactory epithelium unigenes classified using GeneOntology categories of (A) Molecular Function and (B) Biological Process.
Known function of immune system GPCRs
| Chemokine (C-C motif) receptor 5 | Stimulates leukocyte chemotactic activity |
| Chemokine (C-C motif) receptor 6 | Associated with mature memory B cells |
| Chemokine (C-X-C motif) receptor 3 splice 2 | Transduction of angiostatic effect of cytokines in microvascular endothelial cells |
| Chemokine (C-X-C motif) receptor 4 | Neuronal survival; maintaining of highly differentiated neurons; axon guidance |
| Chemokine (C-X-C motif) receptor 7 | Co-receptor for CXCR4 in B-, T-cells and monocytes |
| Chemokine (C-X-C motif) receptor 5 | B-cell activation and chemoattraction |
| EBV-induced G-protein coupled receptor 2 | B-lymphocyte and promyelocytic (glial precursor) cell line regulation |
| GPR34 | Lysophosphatidylserine receptor in mast cells; wound healing |
| GPR81 | Exclusively expressed in T-cells; neurotensin-related |
| GPR132 | Mitosis delay under control of lysophosphatidylcholine in lymphocytes and macrophages |
| Leukotriene B(4) receptor 2 | Chemotaxis of mononuclear lymphocytes |
| Prostaglandin E2 receptor EP4 (PTGER4) | Stimulates immune response in B-cells and monocytes |
| P2Y10 (putative nucleotide receptor) | Monocyte development |
GPCRs related to immune system expressed in fish olfactory epithelium.
Figure 3Alignment of membrane progestin receptor splice variants from the fish olfactory epithelium. Exon composition of PAQR5b and mPRγ-1 (A, alternating colours) and alignment of two mPRγ-2 splice variants from goldfish olfactory epithelium (B, colours represent corresponding exons 5 and 6 in PAQR5b).
Figure 4Predicted secondary structure of membrane progestin receptors from the fish olfactory epithelium. Snake-plot of complete PAQR5b and two mPRγ-2 splice variants from fish olfactory epithelia built using SOSUI prediction. Note that TM architecture remains despite significant rearrangement of transmembrane helices in case of mPRγ2b.