The field of fish gonadotropin-releasing hormones (GnRHs) is also celebrating its 50th anniversary this year. This review provides a chronological history of fish GnRH biology over the past five decades. It demonstrates how discoveries in fish regarding GnRH and GnRH receptor multiplicity, dynamic interactions between GnRH neurons, and additional neuroendocrine factors acting alongside GnRH, amongst others, have driven a paradigm shift in our understanding of GnRH systems and functions in vertebrates, including mammals. The role of technological innovations in enabling scientific discoveries is portrayed, as well as how fundamental research in fish GnRH led to translational outcomes in aquaculture. The interchange between fish and mammalian GnRH research is discussed, as is the value and utility of using fish models for advancing GnRH biology. Current challenges and future perspectives are presented, with the hope of expanding the dialogue and collaborations within the neuroendocrinology scientific community at large, capitalizing on diversifying model animals and the use of comparative strategies.
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http://dx.doi.org/10.1111/jne.13069 | DOI Listing |
Elife
December 2024
Department of Animal Sciences, The Robert H. Smith Faculty of Agriculture, Food, and Environment, Hebrew University of Jerusalem, Rehovot, Israel.
Life histories of oviparous species dictate high metabolic investment in the process of gonadal development leading to ovulation. In vertebrates, these two distinct processes are controlled by the gonadotropins follicle-stimulating hormone (FSH) and luteinizing hormone (LH), respectively. While it was suggested that a common secretagogue, gonadotropin-releasing hormone (GnRH), oversees both functions, the generation of loss-of-function fish challenged this view.
View Article and Find Full Text PDFCell Stress Chaperones
December 2024
Unit for Reproductive Medicine - Clinic for Small Animals, University of Veterinary Medicine Hannover, Foundation, Hannover, Germany. Electronic address:
Endocrinology
October 2024
Institute of Marine & Environmental Technology, Department of Marine Biotechnology, University of Maryland Baltimore County, Baltimore, MD 21202, USA.
GnRH governs reproduction by regulating pituitary gonadotropins. Unlike most vertebrates, gnrh-/- zebrafish are fertile. To elucidate the role of the hypophysiotropic-Gnrh3 and other mechanisms regulating pituitary gonadotropes, we profiled the gene expression of all individual pituitary cells of wild-type and gnrh3-/- adult female zebrafish.
View Article and Find Full Text PDFComp Biochem Physiol A Mol Integr Physiol
October 2023
Fisheries Technology Institute Minamiizu Field Station, Japan Fisheries Research and Education Agency, 183-2 Irouzaki, Minamiizu, Kamo, Shizuoka 415-0156, Japan. Electronic address:
Pituitary gonadotropins, follicle-stimulating hormone (Fsh) and luteinizing hormone (Lh), control oogenesis in all vertebrates. In particular, Lh plays a key role in stimulating the final oocyte maturation and subsequent ovulation. The biosynthesis and secretion of Lh are regulated by several neurohormones, including gonadotropin-releasing hormone (GnRH) and dopamine.
View Article and Find Full Text PDFBraz J Biol
October 2024
Universidade Federal de São João Del Rei - UFSJ, Laboratório de Recursos Genéticos, Programa de Pós-graduação em Biotecnologia, São João Del Rei, MG, Brasil.
The technological development of tools that enable the spawning of different native species is paramount to enable ex situ conservation initiatives, as well as providing means for commercial hatchery of threatened fish which, in turn, relieve fisheries pressure over wild stocks. Neotropical migratory freshwater fish depend on hormonal induction for spawning in hatcheries, through expensive methods of limited efficiency. Salminus brasiliensis is one of the largest Neotropical freshwater fish, a piscivorous top-predator, prized in angling, highly valued in the market, and appreciated in gastronomy.
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