Abstract
Guanine nucleotide binding protein (G-protein)-coupled receptors (GPCRs) are eukaryotic transmembrane proteins found in all living organisms. Their versatility and roles in several physiological processes make them the single largest family of drug targets. Comparative genomic studies using various model organisms have provided useful information about target receptors. The similarity of the genetic makeup of teleosts to that of humans and other vertebrates aligns with the study of GPCRs. Gonadotropin-releasing hormone (GnRH) represents a critical step in the reproductive process through its cognate GnRH receptors (GnRHRs). Kisspeptin (Kiss1) and its cognate GPCR, GPR54 (=kisspeptin receptor, Kiss-R), have recently been identified as a critical signaling system in the control of reproduction. The Kiss1/Kiss-R system regulates GnRH release, which is vital to pubertal development and vertebrate reproduction. This review highlights the physiological role of kisspeptin-Kiss-R signaling in the reproductive neuroendocrine axis in teleosts through the modulation of GnRH release. Moreover, we also review the recent developments in GnRHR and Kiss-R with respect to their structural variants, signaling mechanisms, ligand interactions, and functional significance. Finally, we discuss the recent progress in identifying many teleost GnRH-GnRHR and kisspeptin-Kiss-R systems and consider their physiological significance in the control of reproduction.
Introduction
Guanine nucleotide binding protein (G-protein)-coupled receptors (GPCRs) play a pivotal role in various physiological processes (Marinissen and Gutkind, ), and GPCRs are now recognized as major pharmaceutical drug targets (Shoichet and Kobilka, 2012). GPCR sequencing in model organisms has proven vital for identifying novel GPCRs and their ligands with potential therapeutic value (Metpally and Sowdhamini, ). Evolutionary comparisons of GPCR sequences may allow for the identification of conserved motifs and the recognition of key functional residues (Attwood, ; Bjarnadottir et al., ). As research models, fish have been used largely to exploit their aquaculture potential. However, in recent years, there has been a trend toward using them in biomedical research as models of human disease. Because fish are phylogenetically diverse, they can be used to understand the fundamental principles of vertebrate evolution and disease processes. Therefore, the teleost genome provides an additional model to study the evolution and function of GPCRs (Metpally and Sowdhamini, ).
The hypothalamic-pituitary-gonadal (HPG) axis regulates puberty in vertebrates, primarily through the hypothalamic secretion of gonadotropin-releasing hormone (GnRH). This decapeptide hormone stimulates the release of the following gonadotropins from the anterior pituitary: follicle-stimulating hormone (FSH) for gamete growth and luteinizing hormone (LH) for gamete maturation and release (Ankley and Johnson, ; Weltzien et al., 2004). Recently, kisspeptin, a novel neuropeptide encoded by the metastasis suppressor gene, Kiss1/KISS1 (rodents/human), and its cognate GPCR, kisspeptin receptor (Kiss-R) (=GPR54), have been identified as potent regulators of reproduction, particularly for the onset of puberty (de Roux et al., ; Seminara et al., 2003). The kisspeptin-GPR54 system is vital to the onset of puberty, as it is critical to the activation of GnRH neurons. In 2004, we were the first to report the expression of GPR54 mRNA in GnRH neurons in a cichlid fish, tilapia, which strongly supports this concept (Parhar et al., 2004). Following this discovery, the presence of GPR54 in GnRH neurons has been demonstrated in several mammalian and non-mammalian species (Irwig et al., ; Han et al., ; Messager et al., ; Grone et al., ). Moreover, the innervation of kisspeptin fibers to GnRH neurons has been illustrated in several vertebrates (Clarkson and Herbison, ; Ramaswamy et al., 2008; Servili et al., 2011). The HPG axis is regulated by a number of GPCRs that play important roles in reproduction and sex hormone-dependent diseases (Heitman and Ijzerman, ). These receptors are therefore referred to as “reproductive” GPCRs. Numerous GPCRs with roles in reproduction have been discovered in recent years (Millar and Newton, ). In this review, we focus on the GnRH receptor (GnRHR), the recently deorphanized Kiss-R, and the regulation of GnRH secretion by an intricate interplay between the two in the teleosts.
GnRH Receptor Types
Structural variants
Gonadotropin-releasing hormone is the hypothalamic decapeptide, which is mainly responsible for reproductive function. It is secreted from the hypothalamus into the hypophyseal portal circulation via the median eminence, which binds and activates the GnRHR that is expressed on the surface of the pituitary gonadotrope cells in mammals (Neill, ). In teleosts, the equivalent of the median eminence is incorporated into the rostral neurohypophysis of the pituitary (Batten and Ingleton, ). GnRH fibers have been observed to directly innervate the neurohypophysis in the pituitary (Kah et al., ; Parhar et al., 2002). In the pituitary, GnRH interacts with high-affinity GnRHRs in cell membranes of gonadotrophs, leading to biosynthesis and secretion of LH and FSH (Karges et al., ). To date, more than 20 forms of GnRH and the corresponding genes have been identified (Tsai, 2006; Chen and Fernald, ; Okubo and Nagahama, 2008; Roch et al., 2011; Tostivint, 2011; Kochman, ). These have a broad range of functions, including neuroendocrine, neurotransmitter/neuromodulatory, paracrine and autocrine functions (Millar et al., ), and each GnRH type is capable of serving all these roles. Structural and phylogenetic analysis of the GnRH genes classifies GnRH types into three forms (White and Fernald, 1998). Most vertebrate species possess at least two or three GnRH forms (Sherwood, 1987; Sherwood et al., 1993; Sealfon et al., 1997; Millar, ). GnRH-II (=GnRH2) is ubiquitously found in the most vertebrates, which was first isolated from the chicken (cGnRH-II) (Miyamoto et al., ). Because GnRH2 structure is highly conserved in the vertebrate species, it most likely serves critical functions and evolved the earliest (Millar et al., ). The hypothalamic form is designated GnRH type I (GnRH1) (Troskie et al., 1998), which is the species-specific form and regulates pituitary LH release (Parhar, 2002), and most of which have been identified in fish (Okubo and Nagahama, 2008). A third GnRH type (salmon GnRH-III = GnRH3) is only exhibited in the forebrain of teleost fish. A recent gene synteny analysis of the genomic regions comprising fish GnRH3 has found similar arrangement of GnRH3 gene cluster in the tetrapod genomes (Roch et al., 2011), which indicates that tetrapod GnRH3 was lost after divergence of fish and tetrapod lineages (Kim et al., ; Tostivint, 2011). Lamprey GnRH-I and -III, have recently been categorized as GnRH type IV (GnRH4), exclusive to the jawless fish (Roch et al., 2011).
GnRH receptor gene sequence was first identified from the mouse αT3 gonadotrope cell line (Tsutsumi et al., 1992; Millar et al., ). The ligand binding pocket of the GnRHR is formed by residues in the extracellular loops and the interior of transmembrane helices, indicating that GnRH partially enters the transmembrane core (Forfar and Lu, ). Mammalian GnRHR homologs have been isolated from non-mammalian species such as reptile, amphibians, birds, teleosts, and invertebrate species (Millar, ). The first teleost GnRHR was isolated from the African catfish (Tensen et al., 1997), and piscine GnRHR homologous sequences have been isolated from various teleosts such as the goldfish (Illing et al., ), Japanese eel (Okubo et al., 2000), trout (Madigou et al., ), striped bass (Alok et al., ), cichlid (Robison et al., 2001; Parhar et al., 2005a), medaka (Okubo et al., 2001), salmon (Jodo et al., ), fugu (Moncaut et al., ), and cobia (Mohamed et al., ). In some teleosts, there are four or five GnRHR isoforms (Jodo et al., ; Moncaut et al., ). Recent phylogenetic analyses based on amino acid sequence identity have classified teleosts GnRHR isoforms into three major groups (Mollusk et al., ; Roch et al., 2011). Furthermore, a recent classification based on genome synteny analysis has also revealed three major lineages of fish GnRHR types that further subdivide into five classes: non-mammalian type I (GnRHRn1 and GnRHRn1b), non-mammalian type II (GnRHRn2), and non-mammalian type III (GnRHRn3 and GnRHRn3b) (Kim et al., ) (Table 1). The genome synteny-based classification has clearly demonstrated high conservation of neighboring genes of GnRHR types, which are also found in tetrapod GnRHR containing genome fragments (Kim et al., ). The neighboring gene sets of fish GnRHRn1, found in GnRHRn1b are probably generated by the teleost-specific third round genome duplication (Kim et al., ).
Table 1
| Type | Species | Original name | Accession number/ensembl ID | Ligand selectivity | Localization | Reference | |
|---|---|---|---|---|---|---|---|
| Brain | Pituitary | ||||||
| GnRHRn1 | Medaka | GnRHR3 | NP_001098393 | GnRH2 = GnRH3 > GnRH1 | + | + | Okubo et al. (2003) |
| Zebrafish | GnRHR4 | NP_001091663 | ND | ND | ND | ||
| Green pufferfish | GnRHR1/III-3 | BAE45698 | ND | ND | ND | ||
| Fugu | GnRHR-II-like | XP_003967097 | ND | ND | ND | ||
| Stickleback | GnRHR | ENSGACP00000014249 | ND | ND | ND | ||
| European seabass | GnRHR2B | CAE54807 | ND | + | − | Moncaut et al. () | |
| Platyfish | GnRHR | ENSXMAP00000002818 | ND | ND | ND | ||
| Cod | GnRHR | ENSGMOP00000013942 | ND | ND | ND | ||
| Tilapia | GnRHR-II-like | XP_003440455 | ND | + | + | Soga et al. (2005) | |
| Coelacanth | GnRHR | ENSLACP00000020711 | ND | ND | ND | ||
| Astatotilapia | GnRHR1 | AAK29745 | GnRH2 > GnRH3 > GnRH1 | + | + | Robison et al. (2001) | |
| GnRHRn1b | Medaka | GnRHR1 | NP_001098352 | GnRH2 ≥ GnRH3 = GnRH1 | ND | ND | Okubo et al. (2001) |
| Green pufferfish | GnRHR1/III-1 | BAE45694 | ND | ND | ND | ||
| Fugu | GnRHR | ENSTRUP00000018665 | ND | ND | ND | ||
| Stickleback | GnRHR | ENSGACP00000019583 | ND | ND | ND | ||
| European seabass | GnRHR2C | CAE54805 | ND | + | + | Moncaut et al. () | |
| Platyfish | GnRHR | ENSXMAP00000011787 | ND | ND | ND | ||
| GnRHRn2 | Zebrafish | GnRH-R2 | NP_001138451 | ND | ND | ND | |
| Medaka | GnRHR | ENSORLP00000015859 | ND | ND | ND | ||
| Green pufferfish | GnRHR1/III-2 | BAE45696 | ND | ND | ND | ||
| Fugu | GnRHR | ENSTRUP00000014430 | ND | ND | ND | ||
| Stickleback | GnRHR | ENSGACP00000021774 | ND | ND | ND | ||
| European seabass | GnRHR | CAD11992 | ND | + | + | Madigou et al. () | |
| Cod | GnRHR | ENSGMOP00000000888 | ND | ND | ND | ||
| Platyfish | GnRHR | ENSXMAP00000018201 | ND | ND | ND | ||
| GnRHRn3 | Zebrafish | GnRHR3 | NP_001170921 | ND | ND | ND | |
| Medaka | GnRH-R2 | NP_001098392 | GnRH2 > GnRH3 > GnRH1 | ND | ND | Okubo et al. (2001) | |
| Green pufferfish | GnRH-R2/nmI-2 | BAE45702 | ND | ND | ND | ||
| Fugu | GnRHR | ENSTRUP00000014399 | ND | ND | ND | ||
| Stickleback | GnRHR | ENSGACP00000004101 | ND | ND | ND | ||
| European seabass | GnRHRII | AAS49921 | ND | + | + | Moncaut et al. () | |
| Coelacanth | GnRHR | ENSLACP00000018841 | ND | ND | ND | ||
| Tilapia | GnRHR | ENSONIP00000001826 | ND | ND | ND | ||
| Astatotilapia | GnRH-R2 | AAU89433 | ND | + | + | Chen and Fernald () | |
| GnRHRn3b | Zebrafish | GnRHR1 | NP_001138452 | ND | ND | ND | |
| Green pufferfish | GnRH-R2/nmI-1 | BAE45702 | ND | ND | ND | ||
| Fugu | GnRHR | ENSTRUP00000014399 | ND | ND | ND | ||
| Stickleback | GnRHR | ENSGACP00000000651 | ND | ND | ND | ||
| European seabass | GnRHR1A | CAE54804 | ND | + | + | Moncaut et al. () | |
| Cod | GnRH-R1b | ADD92008 | ND | ND | ND | ||
| Goldfish | GnRHRA | AAD20001 | GnRH2 > GnRH3 > mGnRH1 | + | + | Illing et al. () | |
| Goldfish | GnRHRB | AAD20002 | GnRH2 > GnRH3 > mGnRH1 | + | + | Illing et al. () | |
GnRH receptors in teleosts.
ND, not determined.
Localization and function of GnRHR types
Localization of the various GnRHRs may provide some insight into their role in the physiology of reproduction. Five teleost GnRHR types (GnRHRn1, GnRHRn1b, GnRHRn2, GnRHRn3, and GnRHRn3b) have been localized in various reproductive organs including the gonads, brain, and pituitary (Lethimonier et al., ). In the European sea bass, five GnRHR genes show differential expression in various tissues, in which GnRHR1A (GnRHRn3b) and GnRHR (GnRHRn2) are widely distributed in reproductive and non-reproductive tissues including the eye, kidney, gills, gut, and liver, whereas GnRHRII (GnRHRn3), GnRHR2B (GnRHRn1), and GnRHR2C (GnRHRn1b) are more restricted to the central nervous system (Moncaut et al., ). This finding suggests multiple neuroendocrine and neuromodulatory roles of GnRH types throughout the body of teleosts (Jodo et al., ).
In the brain, the distribution of GnRHR types has been studied by RT-PCR, in situ hybridization and immunohistochemical approaches (Table 1). In situ hybridization studies in the European seabass have demonstrated the expression of GnRHR (GnRHRn2) in the forebrain, and the midbrain (Gonzalez-Martinez et al., ). In Astatotilapia burtoni, GnRHR1 (classified as GnRHRn1 based on sequence homology) is expressed in restricted brain regions including the telencephalon, preoptic area, ventral hypothalamus, and thalamus, whereas GnRH-R2 (GnRHRn3) is expressed in many more brain areas (Chen and Fernald, ). In the tilapia, GnRHR1 (GenBank accession number: XM_003437572) and/or GnRHR3 (XM_003437677) (both are classified as GnRHRn1) immunoreactive cells have been shown in the forebrain and midbrain (Soga et al., 2005). Most GnRHR types are found in brain areas involved in reproductive functions (Volkoff and Peter, 1999), and several GnRHR types are also found in the brain region that is known to be involved in appetite control, feeding, and stress responses (Chandroo et al., ; Volkoff et al., 2005).
In situ hybridization studies have demonstrated the expression offish GnRHR in the pituitary: GnRHRn1 [A. burtoni GnRHR1, striped seabass GnRHR (AF218841)], GnRHRn1b (European seabass GnRHR2C), GnRHRn2 (European seabass GnRHR, African catfish GnRHR1), GnRHRn3 (A. burtoni GnRH-R2, European seabass GnRHRII), and GnRHRn3b [European seabass GnRHR1A, Rainbow Trout GnRHR (NP_001117823), African catfish GnRHR1 (X97497), Goldfish GnRHRA, and Goldfish GnRHRB] (Illing et al., ; Alok et al., ; Madigou et al., ; Gonzalez-Martinez et al., ; Moncaut et al., ; Chen and Fernald, ) (Figure 1A). Within the pituitary cells, most GnRHR types have mainly been localized in the proximal pars distal is of the pituitary where the gonadotrophs (LH and FSH) are exist, which includes GnRHRn1: Tilapia GnRHR1/R3, A. burtoni GnRHR1; GnRHRn2: European seabass GnRHR; GnRHRn3/3b: A. burtoni GnRH-R2, Rainbow trout GnRHR, Goldfish GnRHRA and GnRHRB (Madigou et al., ; Parhar et al., 2002; Gonzalez-Martinez et al., ). In some teleosts, the presence of multiple GnRHR types have also been demonstrated in other pituitary cell types such as lactotropes, somatotropes, thyrotropes, melanotropes, corticotropes, and somatolactin cells (Illing et al., ; Parhar et al., 2002).
Figure 1
GnRHR signaling, cycling, and desensitization
A recent review by Levavi-Sivan and Avitan (
Figure 2

Schematic representation of GnRHR (A) and Kiss-R (B) signaling. (A) GnRH binds to the Gq/11-coupled membrane receptors. Activation of Gq/11 proteins stimulates phospholipase C (PLC) activity to generate inositol triphosphate (IP3) and diacylglycerol (DAG). Increases of these signal messengers lead to the activation of protein kinase C (PKC) and an increase in intracellular Ca2+ concentration from the endoplasmic reticulum (ER). The PKC and Ca2+ pathways are involved in the GnRH regulation of GTH subunit gene expression, while GTH secretion is mainly mediated by the GnRH-induced increase in intracellular calcium through the calmodulin (CaM). It has also been proposed that GnRH caused GTP loading on Gs and increased intracellular cAMP via activation of adenylyl cyclase (AC), which elevates GnRH release via the cAMP-dependent protein kinase (PKA) (Liu et al.,
Regulation of fish GnRHR
GnRH receptor is known to be regulated by several factors. In the tilapia, GnRHR3 has been shown to be up-regulated by its own ligand in the pituitary (Levavi-Sivan et al.,
GPR54
Kisspeptin, encoded by the KISS1/Kiss1 gene, is an endogenous ligand for GPR54 (thus called Kiss-R) and promotes GnRH secretion (Kotani et al.,
Kisspeptin receptor types in teleosts
Kisspeptin receptor was first identified as an orphan GPCR (Lee et al.,
Two Kiss-R types have been identified in the Senegalese sole (Mechaly et al.,
The nomenclature for two Kiss-R types has been classified based on phylogenetic analysis (Um et al., 2010). Recent genome synteny-based classification studies have clearly demonstrated high conservation of neighboring genes of four fish Kiss-R types (Lee et al.,
Distribution
Two Kiss-R genes are highly expressed in various reproductive tissues including the brain, pituitary, and gonads and partially in other peripheral tissues (Nocillado et al.,
Table 2
| Type | Species | Original name | Accession number/ensembl ID | Ligand selectivity | Localization | Reference | |
|---|---|---|---|---|---|---|---|
| Brain | Pituitary | ||||||
| Kiss-R1a | Coelacanth | Kiss-R1a | ENSLACP00000018620 | ND | ND | ||
| Kiss-R1b | Goldfish | GRP54b | ACK77793 | Kiss1 > Kiss2 (SRE) | + | + | Li et al. ( |
| Zebrafish | GPR54-2/Kiss1Rb | EU047918/ENSDARP00000088021 | Kiss1 > Kiss2 | + | + | Lee et al. ( | |
| Medaka | GPR54-1/Kiss1Rb | ENSORLP00000002102 | ND | ND | Lee et al. ( | ||
| Coelacanth | Kiss-R1b | ENSLACP00000000327 | ND | ND | |||
| Kiss-R2a | Goldfish | GPR54a | ACK77792 | Kiss2 > Kiss1 (CRE) | + | + | Li et al. ( |
| Zebrafish | GPR54-1/Kiss1Ra | EU047917/ENSDARP00000011859 | Kiss1 = Kiss2 | + | − | Lee et al. ( | |
| Cod | Kiss1R | ENSGMOP00000011986 | ND | ND | |||
| Coelacanth | Kiss-R2a | ENSLACP00000019382 | ND | ND | |||
| Fugu | Kiss1R | ENSTRUP00000035136 | ND | ND | |||
| Stickleback | Kiss-R | ENSGACP00000022743 | ND | ND | |||
| Tetraodon | Kiss1R | ENSTNIP00000017204 | ND | ND | |||
| Tilapia | Kiss1R | ENSONIP00000011710 | ND | ND | |||
| Medaka | GPR54-2/Kiss1Ra | ENSORLP00000022191 | ND | ND | Lee et al. ( | ||
| Platyfish | Kiss1R | ENSXMAP00000017086 | ND | ND | |||
| Kiss-R2b | Coelacanth | Kiss-R2b | ENSLACP00000001512 | ND | ND | ||
| Green anole | GPR54-like | XP_003217188 | ND | ND | |||
| Platypus | GPR54b | XP_001507133 | ND | ND | |||
Kisspeptin receptors in teleosts.
ND, not determined. SRE, binding response shown with serum response element; CRE, binding response shown with cAMP response element.
The distinct expression patterns of two Kiss-R types indicate their specific roles in reproductive and non-reproductive functions in fish. The habenula, a conserved structure in the brain of vertebrates has been shown to play important roles in various brain functions and behaviors, which include circadian rhythmicity, feeding, stress, sleep, affective states, and maternal and sexual behaviors (Teitelbaum and Epstein, 1962; Modianos et al.,
In some teleosts, Kiss-R is also expressed in the pituitary (Filby et al.,
Expression of Kiss-R in GnRH neurons
Our group (Parhar et al., 2004) was the first to report Kiss-R (Kiss-R2) and GnRH co-localization in tilapia using single-cell gene profiling coupled with laser-captured microdissection. This finding has established the concept that kisspeptin directly regulates GnRH neurons. We demonstrated expression of Kiss-R2 mRNA transcripts in all three GnRH neuronal types in tilapia (Parhar et al., 2004), which has also been confirmed in another cichlid by in situ hybridization (Grone et al.,
Kiss-R signaling in teleosts
The ligand specificity of the piscine Kiss/Kiss-R system has previously been demonstrated by analyzing PKC-MAPK activation in several teleosts species (Biran et al.,
The cAMP/PKA pathway is activated more potently by Kiss-R1 than Kiss-R2 in zebrafish, goldfish, and sea bass (Tena-Sempere et al., 2012). Maximum activation of Kiss-R1 in goldfish is achieved with Kiss2–10 (Li et al.,
Independent function of two kisspeptin-Kiss-R systems
In several teleost species, the onset of puberty marks a significant increase in Kiss-R mRNA expression (Biran et al.,
A recent study in zebrafish has managed to demonstrate an independent function of two kisspeptin-Kiss-R systems (Ogawa et al.,
Evolutionary significance of the kisspeptin-Kiss-R system
The fishes provide excellent animal models to study the principles that underlie the vertebrate kisspeptin and Kiss-R systems from an evolutionary viewpoint (Akazome et al.,
Figure 3

Proposed molecular evolutionary history of the Kiss-R genes. Four Kiss-R types originated from two common ancestral Kiss-R genes (Kiss-R1 and Kiss-R2), diversified through gene or chromosome duplication and gene modification and deletion. Four Kiss-R types are still conserved in the Coelacanth genome.
The alternating actions and importance of both Kiss1 and Kiss2 were very recently demonstrated in the Morone species (Zmora et al., 2012). They concluded that the organization of the kisspeptin system suggests a transitional evolutionary state between early to late evolving vertebrates. The evolutionary transition between multiple forms of kisspeptin, present in evolutionarily older vertebrates such as frogs and some fish, to a single form, as evident in higher vertebrates, is exemplified in the kisspeptin systems of the various fish species studied thus far (Um et al., 2010; Zmora et al., 2012). In the Coelacanth genome, only one kisspeptin-homologous sequence (ENSLACP00000010201, FNFNPFGLRF) was identified, which is close to fish Kiss2. Genes surrounding the Coelacanth Kiss1 (LDHB, GYS2, SLC25A3, STRAP, and GOLT1B) were found in the Stickleback Kiss2, Xenopus Kiss2, and Zebrafish Kiss2, but not in the human Kiss1. Therefore, in the Coelacanth, Kiss1 lineage could have been lost, although genes rounding the human Kiss1 such as REN, ETNK2, and SNRPE are still conserved in the Coelacanth genome. The complete disappearance of Kiss1 and its functional relocation in different fish species clearly shows its evolutionary transition (Zmora et al., 2012). However, the physiological significance of two or loss of one Kiss system in fish species still remains unknown. The evolution of kisspeptin-Kiss-R system may be closely related to the evolution of reproductive traits. It is hence crucial to examine kisspeptin-Kiss-R system in fish species with one-Kiss and those with two-Kiss systems from the viewpoint of diversity of reproductive physiology, i.e., single- or multiple-spawner, seasonal breeder, social or non-social species, viviparous or non-viviparous fish, lifespan, and sex changing fish.
Concluding Remarks
The hypothalamic GnRH system has been well studied, and the specific functional roles of the various receptor-ligand pairs have been delineated for both mammalian and non-mammalian vertebrates. However, research on the kisspeptin/GnRH relationship in non-mammalian vertebrates, including fish, is still in its infancy. Studies have so far shown in fish that kisspeptins directly regulate GnRH neurons and GnRH release via interactions with Kiss-Rs. However, there are numerous unknown or unconfirmed (confirmed in mammals but not in fish) matters regarding the GPCRs in fish reproduction. Understanding the precise mechanism of endocrine regulation of fish reproduction based on GPCRs is necessary to determine the precise physiological roles of kisspeptin-GnRH pathways.
Statements
Acknowledgments
We thank Dr. Takashi Kitahashi for his contractive comments. This work was supported by grants from Malaysian Ministry of Higher Education, FRGS/2/2010/ST/MUSM/03/2 (to Satoshi Ogawa and Ishwar S. Parhar), Malaysian Ministry of Science, Technology, and Innovation, 02-02-10-SF0044 (to Ishwar S. Parhar and Satoshi Ogawa), and Monash University Sunway Campus, M-2-2-06 and M-2-07 (to Satoshi Ogawa), MM-2-5-06 and MM-7-07 (to Ishwar S. Parhar) and Neuroscience Research Strength grant (to Ishwar S. Parhar).
Conflict of interest
The authors declare that the research was conducted in the absence of any commercial or financial relationships that could be construed as a potential conflict of interest.
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Summary
Keywords
GnRH receptor, kisspeptin receptor, GPR54, reproduction, teleost fish
Citation
Gopurappilly R, Ogawa S and Parhar IS (2013) Functional Significance of GnRH and Kisspeptin, and Their Cognate Receptors in Teleost Reproduction. Front. Endocrinol. 4:24. doi: 10.3389/fendo.2013.00024
Received
15 October 2012
Accepted
22 February 2013
Published
08 March 2013
Volume
4 - 2013
Edited by
Hubert Vaudry, University of Rouen, France
Reviewed by
Vincent Prevot, INSERM, France; Jae Young Seong, Korea University, South Korea
Copyright
© 2013 Gopurappilly, Ogawa and Parhar.
This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits use, distribution and reproduction in other forums, provided the original authors and source are credited and subject to any copyright notices concerning any third-party graphics etc.
*Correspondence: Ishwar S. Parhar, Brain Research Institute, School of Medicine and Health Sciences, Monash University Sunway Campus, Petaling Jaya 46150, Selangor, Malaysia. e-mail: ishwar@monash.edu
†Present address: Renjitha Gopurappilly, Manipal Institute of Regenerative Medicine, Manipal University, GKVK Post, Bellary Road, Allalasandra, Yelahanka, Bangalore 560 065, India.
This article was submitted to Frontiers in Neuroendocrine Science, a specialty of Frontiers in Endocrinology.
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