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Kisspeptin-10 and gonadotropin inhibiting hormone during pregnancy in dairy cows
VetIt.2216.15160.1

Keywords

Cortisol
Dairy cow
GnIH
Kisspeptin‑10
Pregnancy

How to Cite

Rizzo, A., Maresca, L., Ceci, E., Guaricci, A., & Sciorsci, R. L. (2022). Kisspeptin-10 and gonadotropin inhibiting hormone during pregnancy in dairy cows: Kisspeptina-10 e GnIH nella gravidanza della bovina. Veterinaria Italiana, 58(1), 111–116. https://doi.org/10.12834/VetIt.2216.15160.1

Abstract

Recently, two different molecules have been discovered to play an important role in reproduction: kisspeptin (Kp) and gonadotropin inhibiting hormone (GnIH). The aim of this study was to establish the trend of kisspeptin 10 (Kp‑10) and GnIH concentrations, during all phases of pregnancy in cattle, in order to understand their possible role in the physiology of pregnancy. To examine the correlation between these hormones and steroid hormones, cortisol and oestradiol 17β (E2) were also analyzed. Eighty pregnant cows were enrolled and the pregnancy was divided into 8 periods of 30 days each (from 30‑60 days to 240‑270 days). Blood samples were collected from all cows, once only for cow. Kp‑10, GnIH, cortisol and E2 were measured in sera. After an initial plateau, Kp‑10 concentrations increased at 90‑120 days and then decreased until 180‑210 days, undergoing a further increase until 240‑270 days. GnIH concentrations decreased until 90‑120 days, then increased until the end of gestation. These trends were opposing until 180‑210 days, whereat concentrations of both increased until the end of gestation. Cortisol concentrations were homogenous at all times, except at the final period, in which they were higher. E2 showed two peaks, at 90‑120 days and 240‑270 days. The trends in Kp‑10 and GnIH concentrations suggest that these two hormones might act to maintain the delicate endocrine equilibrium of pregnancy.

https://doi.org/10.12834/VetIt.2216.15160.1
VetIt.2216.15160.1

References

Benton N.A., Russo K.A., Brozek J.M., Andrews R., Kim V. & Kriegsfeld L.J. 2018. Food restriction-induced changes in motivation differ with stages of the estrous cycle and are closely linked to RFamide-related peptide-3 but not kisspeptin in Syrian hamsters. Physiol Behav, 190, 43-60.

Clarke I.J., Bartolini D., Conductier G. & Henry B.A. 2016. Stress Increases Gonadotropin Inhibitory Hormone Cell Activity and Input to GnRH Cells in Ewes. Endocrinology, 157, 4339 – 4350.

Clarke I.J., Sari I.P., Qi Y., Smith J.T., Parkington H.C., Ubuka T., Iqbal J., Li Q., Tilbrook A., Morgan K., Pawson A.J. & Tsutsui K. 2008. Potent action of RFamide-related peptide-3 on pituitary gonadotropes indicative of a hypophysiotropic role in the negative regulation of gonadotropin secretion. Endocrinology, 149, 5811–5821.

De Roux N., Genin E., Carel J.C., Matsuda F., Chaussain J.L. & Milgrom E. 2003. Hypogonadotropic hypogonadism due to loss of function of the KiSS1-derived peptide receptor GPR54. PNAS, 100(19), 10972-10976.

Gingerich S., Wang X., Lee P., Dhillon S., Chalmers J. & Koletar M. 2009. The generation of an array of clonal, immortalized cell models from the rat hypo-thalamus: analysis of melatonin effects on kisspeptin and gonadotropin-in-hibitory hormone neurons. Neuroscience, 162, 1134–40.

Hinuma S., Shintani Y., Fukusumi S., Iijima N., Matsumoto Y. & Hosoya M. 2000. New neuropeptides containing carboxyterminal RFamide and their receptor in mammals. Nature Cell Biol, 2(10), 703-708.

Horikoshi Y., Matsumoto H., Takatsu Y., Ohtaki T., Kitada C., Usuki S. & Fujino M. 2003. Dramatic elevation of plasma metastin concentrations in human pregnancy: metastin as a novel placenta-derived hormone in humans. J Clin Endocrinol Metab, 88, 914–919.

Hughes E. & Davies D. 1989. Practical uses of ultrasound in early pregnancy in cattle. Vet Rec, 124, 456.

Iwasa T., Matsuzaki T., Yano K. & Irahara M. 2017. Gonadotropin- Inhibitory Hormone Plays Roles in Stress-Induced Reproductive Dysfunction. Front Endocrinol, 8, 62.

Kadokawa K., Shibata M., Tanaka Y., Kojima T., Matsumoto K., Oshima K. & Yamamoto N. 2009. Bovine C-terminal octapeptide of RFamide-related peptide3 suppresses luteinizing hormone (LH) secretion from the pituitary as well as pulsatile LH secretion in bovines. Dom An Endocrinol, 36, 219–224.

Kirby E.D., Geraghty A.C., Ubuka T., Bentley G.E. & Kaufer D. 2009. Stress increases putative gonadotropin inhibitory hormone and decreases luteinizing hor-mone in male rats. PNAS, 106, 11324–11329.

Martino N.A., Rizzo A., Pizzi F., Dell’Aquila M.E. & Sciorsci R.L. 2015. Effects of Kisspetin-10 on in vitro proliferation and Kisspeptin receptor expression in primary epithelial cell cultures isolated from bovine placental cotyledons of fetus at the first trimester of pregnancy. Theriogenology, 83, 978-987.

Mastorakos G. & Ilias I. 2003. Maternal and Fetal Hypothalamic– Pituitary–Adrenal Axes During Pregnancy and Postpartum. Ann NY Acad Sci, 997, 136–149.

Minoia P., Leopold A., Lacalandra G.M., Matteuzzi A. & Sciorsci R.L. 1987. PMSG treatment of pregnant cows. Clinical and endocrinological remarks. In Proc. 11th International Congress on Animal Reproduction and Artificial Insemination Dublin, Ireland, 49-51.

Mondal M., Baruah K.K. & Prakash B.S. 2015. Determination of plasma kisspeptin concentrations during reproductive cycle and different phases of pregnancy in crossbred cows using bovine specific enzyme immunoassay. Gen Comp Endocr, 224, 168-175.

Noakes D., Parkinson T. & England G. 2019. Veterinary reproduction and obstetrics. 10 ed., The Netherland, Elsevier.

Patel O.V., Takahashi T., Takenouchi N., Hirako M., Sasaki N. & Domeki I. 1996. Peripheral cortisol levels throughout gestation in the cow: effect of stage of gestation and foetal number. Br Vet J, 152(4), 425-32.

Piccinno M., Rizzo A., Roncetti M. & Sciorsci R.L. 2016. In vitro study of bovine uterine contractility during the different age of pregnancy. LAR, 22, 173-178.

Poling M.C., Kim J., Dhamija S. & Kauffman A.S. 2012. Development, sex steroid regula-tion, and phenotypic characterization of RFamide-related peptide (Rfrp) gene expression and RFamide receptors in the mouse hypothalamus. Endocrinology, 153, 1827–40.

Reynolds R.M., Logie J.J., Roseweir A.K., McKnight A.J. & Millar R.P. 2009. A role for kisspeptins in pregnancy: facts and speculations. Reproduction, 138(1), 1–7.

Rizzo A., Ceci E., Guaricci A.C. & Sciorsci R.L. 2019. Kisspeptin in the early post-partum of the dairy cow. Reprod Dom Anim, 54(2), 195-198.

Rizzo A., Piccinno M., Ceci E., Pantaleo M., Mutinati M., Roncetti M. & Sciorsci R.L. 2018. Kisspeptin and bovine follicular cysts. Vet Ital, 54(1), 29-31.

Rizzo A., Spedicato M., Cosola C., Minoia G., Roscino M.T., Punzi S. & Sciorsci R.L. 2009. Effects of rosiglitazone, a PPAR-gamma agonist on the contractility of bovine uterus in vitro. J Vet Pharmacol Ther, 32(6), 548-551.

Romero R., Scoccia B., Mazor M., Wu Y.K. & Benveniste R. 1988. Evidence for a local change in the progesterone/estrogen ratio in human parturition. Am J Ob Gynecol, 159, 657–660.

Sabet Sarvestani F., Tamadon A., Koohi-Hosseinabadi O., Mohammadi Nezhad S., Rahmanifar F., Jafarzadeh Shirazi M.R., Tanideh N., Moghadam A. & Niazi A. 2014. Expression of RFamide-related peptide-3 (RFRP-3) mRNA in dorsomedial hypothalamic nucleus and KiSS-1 mRNA in arcuate nucleus of rat during pregnancy. Int J Fertil Steril, 8(3), 333340.

Senger P.L. 1999. Pathways to pregnancy and parturition. Pullman, WA.

Tsutsui K., Saigoh E., Ukena K., Teranishi H., Fujisawa Y., Kikuchi M., Ishii S. & Sharp P.J. 2000. A novel avian hypothalamic peptide inhibiting gonadotropin release. Bioch Bioph Res Comm, 275, 661–667.

Wang H., Khoradmehr A., Jalali M., Salehi M.S., Tsutsui K., Jafarzadeh Shirazi M.R. & Tamadon A. 2018. The roles of RFamide-related peptides (RFRPs), mammalian gonadotropin-inhibitory hormone (GnIH) orthologues in female reproduction. Iran J Basic Med Sci, 21(12), 1210-1220.

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