scholarly journals VGF in the Medial Preoptic Nucleus Increases Sexual Activity Following Sexual Arousal Induction in Male Rats

Endocrinology ◽  
2018 ◽  
Vol 159 (12) ◽  
pp. 3993-4005 ◽  
Author(s):  
Sho Maejima ◽  
Yuta Abe ◽  
Shohei Yamaguchi ◽  
Sergei Musatov ◽  
Sonoko Ogawa ◽  
...  
2014 ◽  
Vol 307 (2) ◽  
pp. R158-R166 ◽  
Author(s):  
Boris Monge-Roffarello ◽  
Sebastien M. Labbe ◽  
Christophe Lenglos ◽  
Alexandre Caron ◽  
Damien Lanfray ◽  
...  

The present study was designed to investigate the role of the medial preoptic nucleus (MPO) as a site of the thermogenic and metabolic effects of the α-melanocyte-stimulating hormone analog melanotan II (MTII). We also assessed the involvement of the dorsomedial hypothalamic nucleus (DMH) by investigating the effects of the MPO infusion of MTII in rats with DMH lesions produced by kainic acid. Infusion of MTII in the MPO led to increases in interscapular brown adipose tissue (iBAT) temperature and iBAT uptake of 14C-bromopalmitate. Both increases were blocked by DMH lesions. iBAT temperature increase (area under curve) and 14C-bromopalmitate uptake emerged as two correlated variables ( r = 0.63, P < 0.001). DMH lesions also blocked MTII-induced expression of mRNAs coding for proteins involved in 1) thermogenesis [type II iodothyronine deiodinase ( Dio2) and peroxisome proliferator-activated receptor gamma coactivator 1-α ( Pgc1α)], 2) lipolysis [hormone-sensitive lipase ( Hsl)], and 3) lipogenesis [diacylglycerol-O-acyltransferase 2 ( Dgat2), fatty acid synthase ( Fas)], in iBAT of rats killed 1 h after MPO infusion of MTII. MTII also stimulated expression of genes in iWAT but only in rats with DMH lesions. These genes included glucose transporter member 4 ( Glut4), glycerol-3-phosphate acyltransferase 3 ( Gpat3), Dgat1, Dgat2, triglyceride lipase ( Atgl), Hsl, and carnitine palmitoyltransferase 1β ( Cpt1β). Altogether, the present results reveal the MPO as a site of the thermogenic and metabolic actions of MTII. They also contribute to establish the MPO-DMH duet as a significant target for melanocortins to modulate energy homeostasis.


1996 ◽  
Vol 148 (2) ◽  
pp. 291-301 ◽  
Author(s):  
S-K Park ◽  
D A Strouse ◽  
M Selmanoff

Abstract Central catecholaminergic neurones projecting to specific hypothalamic structures are involved in stimulating and inhibiting the activity of the GnRH-containing neurosecretory neurones. Both testosterone and elevated circulating prolactin (PRL) levels inhibit postcastration LH release. Three groups of adult male rats were orchidectomized and adrenalectomized, received corticosterone replacement and were: (i) administered purified ovine PRL (oPRL; 2400 μg/s.c. injection) or (ii) its diluent, polyvinylpyrrolidone (PVP), every 12 h, or (iii) received physiological testosterone replacement for 2 days. At 0, 2 and 6 days postcastration, norepinephrine (NE), epinephrine (E) and dopamine (DA) turnover were estimated by the α-methyl-p-tyrosine method in three micro-dissected hypothalamic structures: the diagonal band of Broca at the level of the organum vasculosum of the lamina terminalis (DBB(ovlt)), the medial preoptic nucleus (MPN) and the median eminence (ME). In control (PVP-treated) rats, serum LH concentrations increased eightfold at 2 and 6 days postcastration and this rise was prevented by testosterone. oPRL treatment transiently suppressed LH secretion at 2 but not 6 days postcastration. Castration significantly decreased basal rat PRL (rPRL) levels at 2 and 6 days and testosterone administration partially prevented this effect. NE turnover in the ME and E turnover in the MPN increased markedly at 2 and 6 days postcastration, and testosterone replacement for 2 days prevented these increases. Thus, noradrenergic neurones innervating the ME and adrenergic neurones innvervating the MPN may drive postcastration LH secretion by providing stimulatory afferent input to the GnRH neurones. It was striking to observe that oPRL blocked the increases in both ME NE and MPN E turnover at 2 but not 6 days postcastration. Hence, oPRL may transiently suppress LH release by an inhibitory action on these NE and E neurones. DA turnover in the DBB(ovlt) was significantly decreased by 6 days postcastration. Testosterone-treated (2 days postcastration) and oPRL-treated (2 and 6 days postcastration) rats exhibited turnover values indistinguishable from day 0 controls. Hence, the A14 dopaminergic neurones, which synapse on GnRH neurones in the rostral preoptic area and may exert an inhibitory effect on them, are positively regulated by PRL and perhaps by testosterone as well. Autoregulatory feedback suppression of endogenous rPRL secretion by oPRL was observed both 2 and 6 days postcastration. In contrast to the A14 dopaminergic neurones, turnover in the A12 tuberoinfundibular dopaminergic (TIDA) neurones innervating the ME increased significantly by 6 days postcastration in control rats while oPRL administration further increased ME DA turnover at both 2 and 6 days. Hence, autofeedback regulation of rPRL secretion persists through at least 6 days of oPRL exposure temporally associated with markedly increased turnover in the TIDA neurones. In summary, our results support the hypothesis that the inhibitory effect of PRL on postcastration LH release is mediated by suppression of the activity of NE neurones innervating the ME and E neurones terminating in the MPN which, with time, become refractory to continued PRL exposure. Journal of Endocrinology (1996) 148, 291–301


Author(s):  
Alexander Reznikov ◽  
Olha Sachynska ◽  
Аnna Lymareva ◽  
Lyubov Polyakova

Aim: To study the long-term effects of exposure of pregnant Wistar rats to low dose of bisphenol A (BPA) by measuring to the level of steroid hormones and sexual behavior of adult male offspring of the first generation. Material and research methods: BPA as part of the Dorfman gel was gavaged during the last week of pregnancy, when androgen-dependent sexual brain differentiation occurs, in a daily dose of 25 mcg/kg b.w. (threshold teratogenic dose). Male sexual behavior was evaluated by proceptive reactions, the duration of latent and refractory periods, the number of mounts, intromissions and ejaculations in the presence of a receptive female. Female sexual behavior was assessed by lordosis reactions of orchidectomized and activated by the introduction of estradiol and progesterone males in the presence of a normal male. A neuromorphological analysis of the sex-dimorphic area of the brain, the medial preoptic nucleus of the hypothalamus, was performed by histological examination and karyometry of neurons. Results: Prenatally administered BPA caused a very slight increase in the anogenital distance in newborn animals and did not affect the terms of puberty. The levels of testosterone and corticosterone in the blood plasma of males of 6 months of age did not differ from the control indices. At 10 months of age, all experimental males showed sharply weakened sexual motivation for mating with females, and in 4 from 5 animals, copulative components of sexual behavior were absent. There was no ejaculations in the 5th male as well, while numbers of the mounts without intromissions and ones with intromissions significantly reduced. In the BPA group, all descendants showed active female behavior in the presence of a normal male, which manifested in lordosis reactions and a high lordosis index. According to the histological study of medial preoptic nucleus, the activity of neurocytes in the male offspring of BPA-exposed females was significantly reduced, and their nuclei volume distribution was some different from the control. Conclusions: The data obtained indicate epigenetic disorders of the sexual brain differentiation program due to the prenatal exposure to BPA in dose that does not cause significant teratogenic effects. This should be taken into account when evaluating the potential hazard of BPA for reproductive health. Key words: bisphenol A, prenatal effect, male rats, sexual behavior, corticosterone, testosterone.


1986 ◽  
Vol 42 (5) ◽  
pp. 368-375 ◽  
Author(s):  
Paul C. Doherty ◽  
Michael J. Baum ◽  
Roberta B. Todd

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