Effects of age and seasonal temperatures on cortisol levels and GHR, IGF-I, and IGF-II expressions in rainbow trout (Oncorhynchus mykiss)


Published: Jul 9, 2023
Updated: 2023-07-09
Versions:
2023-07-09 (2)
Keywords:
Seasonal temperature age COR GHR IGF’s
H Tekeli
https://orcid.org/0000-0002-9004-5696
A Bildik
https://orcid.org/0000-0003-4570-2156
Abstract

The growth hormone (GH)/insulin-like growth factor (IGF) endocrine axis regulates the cellular growth and organ development in related to changing environmental conditions and age. The aim of this study is to determine growth factor genes, which are biological markers of growth in muscle and liver of rainbow trout (Oncorhynchus mykiss) in different seasonal temperatures and age ranges and the reveal of the relationship between serum cortisol (COR) levels from stress parameters. No difference was found in serum COR levels between the groups with respect to temperature and age. Serum GH levels were found to be higher in the summer juvenile trout compared to the winter juvenile and adult trouts. There was no difference in liver growth hormone receptor (GHR) mRNA levels of juvenile and adult trouts in winter while insulin-like growth factor-I (IGF-I) and insulin-like growth factor-II (IGF-II) mRNA levels in liver and muscle tissues were found to be higher in juvenile trout compared to adults. Among trout of different ages, GHR, IGF-I and IGF-II mRNA levels in liver in summer were higher for juvenile trout compared to adults. Muscle IGF-I mRNA levels in summer were higher in adult trout compared to juveniles. IGF-II mRNA levels in liver and muscle tissues of juvenile trout showed an increase in winter compared to in summer. While the GHR and IGF-II mRNA levels in the liver tissue of adult trout were observed to higher in winter compared to summer, IGF-I mRNA levels were found to be higher in summer. GHR, IGF-I and IGF-II mRNA levels in muscle tissue of adult trout were found to be higher in summer than in winter. This study indicated that juvenile and adult rainbow trout (Oncorhynchus mykiss) are adapted to both winter and summer temperature and that GHR, IGF-I and IGF-II genes are highly expressed.

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Author Biographies
H Tekeli, Department of Pharmacy Service, Golhisar Vocational School of Health Service, Burdur Mehmet Akif Ersoy University, Burdur, Turkey

Department of Pharmacy Service, Golhisar Vocational School of Health Service

A Bildik, Department of Biochemistry, Faculty of Veterinary Medicine, Aydın Adnan Menderes University, Aydın, Turkey

Department of Biochemistry, Faculty of Veterinary Medicine

References
Akhtar MS, Pal AK, Sahu NP, Ciji A, Mahanta PC (2013) Thermal tolerance, oxygen consumption and haemato biochemical variables of ‘Tor putitora’ juveniles acclimated to five temperatures. Fish Physiol Biochem 39:1387-1398.
Beckman BR, Shimizu M, Gadberry BA, Parkins PJ, Cooper KA (2004) The effect of temperature change on the relations among plasma IGF-I, 41 kDA IGFBP and growth rate in postsmolt Coho Salmon. Aquaculture 241:601-619.
Biga PR, Cain KD, Hardy RW, Schelling GT, Overturf K, Roberts SB, Goetz FW, Ott T, (2004a) Growth hormone differentially regulates muscle myostatin 1 and 2 and increases circulating cortisol in Rainbow trout (Oncorhynchus mykiss). Gen Comp Endocrinol 138:32-41.
Breau C, Cunjak RA, Peake SJ (2011) Behaviour during elevated water temperatures: Can physiology explain movement of juvenile Atlantic salmon to cool water? J Anim Ecol 80: 844-853.
Canosa LF, Chang JP (2007) Neuroendocrine control of growth hormone in fish. Gen Comp Endocrinol 151:1-26.
Costas B, Aragao C, Ruiz-Jarabo I, Vargas-Chacoff L, Arjona FJ, Mancera JM, Dinis MT, Conceic LEC (2012) Different environmental temperatures affect amino acid metabolism in the eurytherm teleost Senegalese sole (Solea senegalensis Kaup, 1858) as indicated by changes in plasma metabolites. Amino Acids 43:327-335.
Davis KB, Peterson BC (2006) The effect of temperature, stress, and cortisol on plasma IGF-I and IGFBPs in sunshine bass. Gen Comp Endocrinol 149:219-225.
Deane EE, Woo NY (2009) Modulation of fish growth hormone levels by salinity, temperature, pollutants and aquaculture related stress. Rev Fish Biol Fisheries 19:97-120.
Dehkhoda F, Lee CMM, Medina J, Brooks AJ (2018) The growth hormone receptor: Mechanism of receptor activation, cell signaling and physiological aspects. Front Endocrinol 9:35.
Eppler E, Berishvili G, Mazel P, Caelers A, Hwang G, Maclean N, Reinecke M (2010) Distinct organ-specific up and down regulation of IGF-I and IGF-II mRNA in various organs of GH overexpressing transgenic Nile tilapia. Transgenic Res 19:231-240.
Figueroa J, Martín RS, Flores C, Grothusen H, Kausel G (2005) Seasonal modulation of growth hormone mRNA and protein levels in carp pituitary: Evidence for two expressed genes. J Comp Physiol B 175:185-192.
Fürtbauer I, Heistermann M (2016) Cortisol coregulation in fish. Sci Rep 6:1-7.
Gabillard JC, Weil C, Rescan PY, Navarro I, Gutiérrez J, Le Bail PY (2003b) Environmental temperature increases plasma GH levels independently of nutritional status in Rainbow trout (Oncorhynchus mykiss). Gen Comp Endocrinol 133:17-26.
Gabillard JC, WeiL C, Rescan PY, Navarro I, Gutierrez J, Le Bail, PY (2005) Does the GH/IGF system mediate the effect of water temperature on fish growth? Cybium 29(2): 107-117.
Haimes J, Kelley M (2010) Demonstration of a ΔΔCq calculation method to compute relative gene expression from qPCR data. GE Healthcare Tech Note 1-4.
Harbili S (2008) İnsülin benzeri büyüme faktörleri (IGF): Egzersiz metabolizması ve kas dokusu üzerine etkileri. Genel Tıp Derg 18(4):177-184.
Hevrøy EM, Christine H, Gelder S, Shimizu M, Waagbø R, Breck O, Takle H, Sussort S, Hansen T (2013) GH-IGF system regulation of attenuated muscle growth and lipolysis in Atlantic salmon reared at elevated sea temperatures. J Comp Physiol B 183:243-259.
Hevrøy EM, Christian K, Remø SC, Hansen T, Fukuda M, Thomas T, Vikeså V, Olsvik PA, Waagbø R, Shimizu M (2015) Role of the GH-IGF-1 system in Atlantic salmon and Rainbow trout (Oncorhynchus mykiss) postsmolts at elevated water temperature. Comp Biochem Physiol A Mol Integr Physiol 188:127-138.
Huang JF, Xu QY, Chang YM (2016) Effects of temperature and dietary protein on the growth performance and IGF-I mRNA expression of juvenile mirror carp (Cyprinus carpio). Aquac Nutr 22:283-292.
Jaxion-Harm J, Ladich F (2014) Effects of temperature change on cortisol release by common carp (Cyprinus carpio). J Fish Biol 84:1221-1227.
Kamangar BB, Rasaee MJ, Amiri BM (2007) Correlations between circulating insülin like growth factor-I and thyroxine and cortisol hormone levels, and some biometrical traits in female brood stocks during the late stages of sex maturation and in juvenile Persian sturgeon (Acipenser persicus). Fish Physiol Biochem 33:249-257.
Koakoski G, Oliveira TA, Rosa JGS, Fagundes M, Kreutz LC, Barcellos LJG (2012) Divergent time course of cortisol response to stress in fish of different ages. Physiol Beha 106:129-32.
Le Blanc S, Höglund E, Gilmour KM, Currie S (2012) Hormonal modulation of the heat shock response: Insights from fish. Am J Physiol Regul Integr Comp Physiol 302:184-192.
Li M, Greenaway J, Raine J, Petrik J, Hahnel A, Leatherland J (2006) Growth hormone and insülin like growth factor gene expression prior to the development of the pituitary gland in Rainbow trout (Oncorhynchus mykiss) embryos reared at two temperatures. Physiol A Mol Integr Physiol 143:514-522.
Moriyama S, Yamaguchi K, Takasawa T, Chiba H, Kawauchi H (2006) Insulin like growth factor-I of Japanese eel, Anguilla japonica: cDNA cloning, tissue distribution and expression after treatment with growth hormone and seawater acclimation. Fish Physiol Biochem 32:189-201.
Myers MJ, Litz B, Shannon A (2010) The effects of age, sex, season and geographic region on circulating serum cortisol concentrations in threatened and endangered Steller sea lions (Eumetopias jubatus). Gen Comp Endocrinol 165:72-77.
Narum SR, Campbell NR, Kozfkay CC, Meyer KA (2010) Adaptation of redband trout in desert and montane environments. Mol Ecol Res 19:4622-4637.
Oz M (2018a) Effects of garlic (Allium sativum) supplemented fish diet on sensory, chemical and microbiological properties of rainbow trout during storage at - 18°C. LWT-Food Science and Technology 92:155-160.
Panicz R, Sadowski J, Schütze H, Bergmann SM (2015) Temperature influence on key players of the somatotropic axis of tench, Tinca tinca (Actinopterygiı:cypriniformes:cyprinidae). Acta Ichthyol Piscat 4:335-342.
Pankhurst NW, King HR (2010) Temperature and salmonid reproduction: Implications for aquaculture. J Fish Biol 76:69-85.
Picha ME, Turano MJ, Beckman BR, Borski RJ (2008) Endocrine biomarkers of growth and applications to aquaculture: A minireview of growth hormone, ınsulin like growth factor-I (IGF-1) and IGFBP as potential growth indicators in fish. N Am J Aquacult 70:196-211.
Reindl K, Sheridan MA (2012) Peripheral regulation of the growth hormone insülin like growth factor system in fish and other vertebrates. Comp Biochem Physiol A Mol Integr Physiol 163:231-245.
Reinecke M, Björnsson BT, Walton W, Dickho V, Agustsson SD, Navarro I, Power DB, Gutiérrez J (2005) Growth hormone and insülin like growth factors in fish: Where we are and where to go. Gen Comp Endocrinol 142:20-24.
Reinecke M (2010) Influences of the environment on the endocrine and paracrine fish growth hormone insülin like growth factor-I system. J Fish Biol 76:1233-1254.
Rius-Francino M, Acerete L, Jiménez-Amilburu V, Capilla E, Navarro I, Gutiérrez J (2011) Differential effects on proliferation of GH and IGFs in sea bream (Sparus aurata) cultured myocytes. Gen Comp Endocrinol 172:44-49.
Saera-Vila A, Calduch-Giner JA, Pe´rez-Sa´nchez J (2007) Co-expression of IGFs and GH receptors (GHRs) in gilthead sea bream (Sparus aurata): Sequence analysis of the GHR flanking region. J Endocrinol 194:361-372.
Shrimpton JM, Björnsson BTH, McCormick SD (2000) Can Atlantic salmon smolt twice? Endocrine and biochemical changes during smolting. Can J Fish Aquat Sci 57:1969-1976.
Tietz NW, Burtis CA, Ashwood ER (1994) Tietz textbook of clinical chemistry. Philadelphia Saunders pp 2326.
Valdes JA, Einarsdottir IE, Fuentes EN, Alvarez M, Molina A, Björnsson BTH (2012a) Inherent growth hormone resistance in the skeletal muscle of the fine flounder is modulated by nutritional status and is characterized by high contents of truncated GHR, impairment in the JAK2/STAT5 signaling pathway and low IGF-I expression. Endocrinol 153:283-294.
Vera Cruz EM, Brown CL (2009) Influence of the photoperiod on growth rate and insülin like growth factor‐I gene expression in Nile tilapia, Oreochromis niloticus. J Fish Biol 75:130-141.
Wenger M (2014) Developmental oestrogen exposure differentially modulates IGF-I and TNF-α expression levels in immune organs of Yersinia ruckeri challenged young adult Rainbow trout (Oncorhynchus mykiss). Gen Comp Endocrinol 205:168-175.
Won ET, Borski RJ (2013) Endocrine regulation of compensatory growth in fish. Front Endocrinol 4:74.
Yilmaz HA, Turkmen S, Kumlu M, Eroldogan OT, Perker N (2020) Alteration of growth and temperature tolerance of european sea bass (Dicentrarchus labrax linnaeus 1758) in different temperature and salinity combinations. Turk J Fisher Aquat Sci 20:331-340.
Zarejabad AM, Pouralimotlagh SM, Bastami KD (2010) Effects of rearing temperature on hematological and biochemical parameters of great sturgeon (Huso huso) juvenile. Comp Clin Pathol 19:367-371.