Serotonin (5-HT) has been long recognized to modulate the stress response, and dysfunction of 5-HT has been implicated in numerous stress disorders. Accordingly, the 5-HT system has been targeted for the treatment of stress disorders. Tryptophan hydroxylase (TPH) is the rate-limiting enzyme in 5-HT synthesis, and the recent identification of a second, neuron-specific TPH isoform (TPH2) opened up a new area of research. With a decade of extensive investigation, it is now recognized that: (1) TPH2 exhibits a highly flexible gene expression that is modulated by an increasing number of internal and external environmental factors including the biological clock, stressors, endogenous hormones, and antidepressant therapies; and (2) genetically determined TPH2 activity is linked to a growing body of stress-related neuronal correlates and behavioral traits. These findings reveal an active role of TPH2 in the stress response and provide new insights into the long recognized but not yet fully understood 5-HT–stress interaction. As a major modulator of 5-HT neurotransmission and the stress response, TPH2 is of both pathophysiological and pharmacological significance, and is emerging as a new therapeutic target for the treatment of stress disorders. Given that numerous antidepressant therapies influence TPH2 gene expression, TPH2 is already inadvertently targeted for the treatment of stress disorders. With increased understanding of the regulation of TPH2 activity we can now purposely utilize TPH2 as a target to develop new or optimize current therapies, which are expected to greatly improve the prevention and treatment of a wide variety of stress disorders.
Serotonin [5-hydroxytryptamine (5-HT)] biosynthesis depends on two rate-limiting tryptophan hydroxylases (Tph): Tph1, which is expressed in peripheral organs, and Tph2, which is expressed in neurons. Because 5-HT is involved in pulmonary hypertension (PH), we investigated whether genetic variations in Tph1 and/or Tph2 affected PH development in mice. To examine the functional impact of peripheral Tph1 deficiency on hypoxic PH, we used Tph1(-/-) mice characterized by very low 5-HT synthesis rates and contents in the gut and lung and increased 5-HT synthesis in the forebrain. With chronic hypoxia, 5-HT synthesis in the forebrain increased further. Hypoxic PH, right ventricular hypertrophy, and distal pulmonary artery muscularization were less severe (P < 0.001) than in wild-type controls. The Tph inhibitor p-chlorophenylalanine (100 mgxkg(-1)xday(-1)) further improved these parameters. We then investigated whether mouse strains harboring the C1473G polymorphism of the Tph2 gene showed different PH phenotypes during hypoxia. Forebrain Tph activity was greater and hypoxic PH was more severe in C57Bl/6 and 129X1/SvJ mice homozygous for the 1473C allele than in DBA/2 and BALB/cJ mice homozygous for the 1473G allele. p-Chlorophenylalanine reduced PH in all groups and abolished the difference in PH severity across mouse strains. Hypoxia increased 5-hydroxytryptophan accumulation but decreased 5-HT contents in the forebrain and lung, suggesting accelerated 5-HT turnover during hypoxia. These results provide evidence that dysregulation of 5-HT synthesis is closely linked to the hypoxic PH phenotype in mice and that Tph1 and Tph2 may contribute to PH development.
BACKGROUND:The mechanism of pulmonary artery smooth muscle cell (PA-SMC) hyperplasia in idiopathic pulmonary artery hypertension (iPH) may involve both an inherent characteristic of PA-SMCs and abnormal control by external stimuli. We investigated the role of pulmonary microvascular endothelial cells (P-ECs) in controlling PA-SMC growth. METHODS AND RESULTS:Serum-free medium of quiescent P-ECs elicited marked PA-SMC proliferation, and this effect was greater with P-ECs from patients with iPH than from control subjects and greater with PA-SMCs from these patients than from control subjects. Fluoxetine, which inhibits serotonin-induced mitogenesis by blocking the serotonin transporter, and p-chlorophenylalanine, which inhibits serotonin synthesis by blocking tryptophan hydroxylase (TPH), caused a similar 60% reduction in the growth-promoting effect of P-EC media, whereas endothelin receptor blockers had no effect. Assays of TPH activity in P-EC medium based on p-chlorophenylalanine-sensitive 5-hydroxytryptophan accumulation or serotonin determination indicated serotonin synthesis by P-ECs and an increase in this TPH-dependent process in iPH. Expression of the tph1 gene encoding the peripheral form of the TPH enzyme was increased in lungs and P-ECs from patients with iPH. Lung TPH1 immunostaining was confined to the pulmonary vessel intima. CONCLUSIONS:P-ECs produce paracrine factors governing PA-SMC growth. Serotonin, the main P-EC-derived growth factor, is overproduced in iPH and contributes to PA-SMC hyperplasia.
The gene coding for the 5-HT transporter (5-HTT) is considered as a candidate gene for schizophrenia, because this transporter plays a key role in serotonin neurotransmission. Previous genetic studies focusing on this gene yielded conflicting results, presumably because of stratification biases linked to the case-control association study approach, and the potential genetic and phenotypic heterogeneity of schizophrenia. We investigated the 5-HTTLPR and 17-bp VNTR (variable number of tandem repeats) polymorphisms of this gene in 103 trios using the transmission disequilibrium test. No preferential transmission of either allele of the 17-bp VNTR was observed, but an excess of transmission of the L allele of the 5-HTTLPR polymorphism was detected (p = 0.03). As the haplotype analyses did not improve the strength of the association, our data provide convergent evidence for a significant role of the 5-HTTLPR promoter polymorphism of the 5-HTT gene in the vulnerability to schizophrenia.
Fluctuations in steroid hormones (glucocorticoids and estradiol) levels during pregnancy and after delivery are thought to contribute to the etiology of postpartum depression. Such changes may be exacerbated by stressful events, which constitute a predisposing factor for postpartum mood disorders. In the present study, blood hormonal variations associated with prepartum Chronic Ultramild Stress (CUMS) exposure were assessed at two times (15th day of pregnancy and 3rd day postpartum) in mice stressed from day 1 of pregnancy to termination of pregnancy. Litter weight and litter size were determined in both groups whereas the duration of pregnancy was determined in the 3-day postpartum group. CUMS increased estradiol and corticosterone levels during pregnancy, but such effects were no longer observed in the postpartum period, where cortisol levels were decreased in control and stressed mice and estradiol levels were reduced in previously stressed mothers. No effects of the CUMS procedure were observed on gestational parameters. Given the link between hormonal variations during pregnancy and subsequent postpartum depression, these results suggest that CUMS applied to gestating female may provide a useful model for the study of the mechanisms of stress, which may lead to postpartum mood disorders.
Background— Serotonin (5-hydroxytryptamine; 5-HT) overproduction is responsible for cardiac valvular disease in patients with carcinoid tumors. Reduced 5-HT inactivation is one proposed mechanism of the valvulopathy observed in individuals treated with the appetite suppressants fenfluramine and phentermine. One key protein limiting systemic availability of 5-HT is the 5-HT transporter (5-HTT) expressed by platelets and pulmonary vascular cells; 5-HTT is responsible for 5-HT uptake and subsequent inactivation of the amine passing through the lung. Here we investigated whether 5-HTT–deficient (5-HTT-KO) mice developed structural and/or functional cardiac abnormalities and valvulopathy. Methods and Results— Cardiac endothelial cells expressed large amounts of 5-HTT in wild-type mice. 5-HTT deficiency appeared to be associated with marked interstitial, perivascular, and valvular fibrosis as evidenced by staining of cardiac collagen in 5-HTT-KO mice. Histological analysis provided evidence for valvulopathy characterized by valvular hyperplasia and prominent fibrosis at the attachment site and base of the leaflets. Echocardiography revealed an increase in left ventricular lumen diameter and a decrease in left ventricular diameter fractional shortening. Although 5-HT 1B receptors mediated the 5-HT–induced collagen secretion by human cardiac myofibroblasts, the contribution of this receptor type to valvulopathy was ruled out because double-KO mice deficient in both 5-HTT and 5-HT 1B receptors showed the same cardiac alterations as 5-HTT-KO mice. Conclusions— The present results establish a link between 5-HTT and the development of cardiac fibrosis and valvulopathy in vivo. 5-HTT-KO mice represent an especially relevant model for studying the mechanisms by which 5-HT induces valvulopathy.
Serotonin 5‐HT 1A and 5‐HT 1B receptors and the 5‐HT transporter are key regulators of the serotoninergic neuronal phenotype. We show here that genetic deletion of any of these elements differentially regulates 5‐HT neuronal number in rostral raphe cultures from E14 mice. Serotonin neuronal number was increased by almost four‐fold and 1.8‐fold in cultures from 5‐HT 1A R−/− and 5‐HT 1B R−/− mice, respectively. In contrast, the lack of serotonin transporter expression was associated with a 50% decrease in 5‐HT neuronal number. In raphe cultures from the rat, BDNF and cAMP have been shown to up‐regulate the neuronal serotoninergic phenotype through TrkB‐dependent mechanisms [Rumajogee et al . (2002) J. Neurochem. , 83, 1525–1528]. Similar tyrosine kinase‐dependent up‐regulating effects, in the absence of serotoninergic key‐elements are reported here, on both 5‐HT neuronal number and neurites length. However, the extents of BDNF‐triggered and cAMP‐triggered effects on serotoninergic neuritic length were approximately 1.5‐fold higher in 5‐HT 1A R−/− mutants. These findings show that the up‐regulatory mechanisms triggered by BDNF on serotoninergic neuronal number and neurite extension are different and that the latter are partially linked to 5‐HT, probably through 5‐HT 1A autoreceptors. Together, these data suggest that serotonin autoreceptors, mainly 5‐HT 1A but also 5‐HT 1B , may be responsible for a tonic auto‐inhibitory effect of 5‐HT itself on the serotoninergic neuronal phenotype during embryonic development, particularly marked in the absence of the 5‐HT transporter.
In this study, we compared the effects of chronic ultramild stress (CUMS) exposure on decision-making behavior in a validated test, and on the stress responsive serotoninergic and dopaminergic systems in four age groups of B6D2F1 female mice (5-6, 11-12, 17-18 and 23-24 months old). The levels of serotonin (5-HT) and its metabolite 5-hydroxyindolacetic acid (5-HIAA) were measured in the brain stem, the cortex, the striatum and the hippocampus; the levels of dopamine (DA) and its metabolite dihydroxyphenylacetic acid (DOPAC) were measured in the brain stem and the striatum. The influence of a long-term treatment with the extract of Ginkgo biloba leaves EGb 761 (Tanakan) on age- and stress-related changes was also investigated in the two oldest age groups. In the absence of drug treatment, middle-age mice were the least efficient in making a decision, and senescent mice exhibited reduced levels of both 5-HT and DA and their metabolites in all the brain areas examined. CUMS facilitated evaluation and choice behavior in all age groups, but induced age-dependent reduction of hesitation, acceleration of information processing and reduction in serotoninergic neurotransmission. In senescent mice, EGb 761 reduced the impact of stress on evaluation and hesitation, and restored some stress-related neurobehavioral changes that were only seen in young mice, i.e. acceleration of information processing and reduction in brain 5-HIAA levels. Restoration of some plasticity of the serotoninergic systems might contribute to the stress alleviating influence of EGb 761 in old age.
Previous studies showed that the cardiac response of the baroreceptor reflex (bradycardia) is inhibited during the defense reaction evoked by direct electrical or chemical stimulation of the periaqueductal gray (dPAG) in the rat. Whether central serotonin and nucleus tractus solitarius (NTS) serotonin 3 (5-HT 3 ) receptors might participate in this inhibition was investigated in urethane-anesthetized and atenolol-pretreated rats. Our results showed that both electrical and chemical stimulation of the dPAG produced a drastic reduction of the cardiovagal component of the baroreceptor reflex triggered by either intravenous administration of phenylephrine or aortic nerve stimulation. This inhibitory effect of dPAG stimulation on the baroreflex bradycardia was not observed in rats that had been pretreated with p-chlorophenylalanine (300 mg/kg ip daily for 3 days) to inhibit serotonin synthesis. Subsequent 5-hydroxytryptophan administration (60 mg/kg ip), which was used to restore serotonin synthesis, allowed the inhibitory effect of dPAG stimulation on both aortic and phenylephrine-induced cardiac reflex responses to be recovered in p-chlorophenylalanine-pretreated rats. On the other hand, in nonpretreated rats, the inhibitory effect of dPAG stimulation on the cardiac baroreflex response could be markedly reduced by prior intra-NTS microinjection of granisetron, a 5-HT 3 receptor antagonist, or bicuculline, a GABA A receptor antagonist. These results show that serotonin plays a key role in the dPAG stimulation-induced inhibition of the cardiovagal baroreceptor reflex response. Moreover, they support the idea that 5-HT 3 and GABA A receptors in the NTS contribute downstream to the inhibition of the baroreflex response caused by dPAG stimulation.
Agomelatine (S 20098) is a novel antidepressant drug with melatonin receptor agonist and 5-HT2C receptor antagonist properties, but actual mechanisms underlying its antidepressant action are unknown. Because functional desensitization of 5-HT1A autoreceptors in the dorsal raphe nucleus (DRN) occurs after chronic administration of several classes of antidepressants, we investigated whether this adaptive change could also be induced by agomelatine. Neither acute nor chronic treatment with agomelatine (10 mg/kg i.p. for 14 days or 50 mg/kg i.p. for 21 days) changed the density of 5-HT1A receptors and their coupling with G proteins in the DRN and the hippocampus in rats. Moreover, these treatments did not affect the basal electrophysiological characteristics and the responses to 5-HT1A receptor stimulation of DRN and hippocampal neurons in brain slices. Parallel experiments with melatonin (10 mg/kg i.p. for 14 days) and fluoxetine (5 mg/kg i.p. for 14 days) as reference compounds showed that the former was unable to affect 5-HT1A receptors whereas the latter decreased both the 5-HT1A receptor-mediated [35S]GTP-γ-S binding and the potency of ipsapirone, a 5-HT1A receptor agonist, to inhibit neuronal firing in the DRN. These data indicate that the antidepressant action of agomelatine is not mediated through the same mechanisms as SSRIs or tricyclics.
Background. Pharmacological and neurodevelopmental data support the idea that the gene, which codes for the 5-HT5A receptor is an important candidate gene for schizophrenia susceptibility. However, previous genetic studies focusing on this gene yielded conflicting results, potentially because of. (i) stratification biases of case-control association studies, (ii) genetic and phenotypic heterogeneity of schizophrenia, and (iii) variability in the loci analyzed (the 5-HT5A gene having many polymorphic sites)Methods. A transmission disequilibrium test was used in the present study aimed at investigating two polymorphisms in exon I of the 5-HT5A gene, the A12T silent substitution and the C43T transversion leading to a (15)Pro --> Ser substitution, in 103 patients with DSM-IV diagnosis of schizophrenia, and their 206 parents.Results. We found an excess of transmission of the 12T allele from the parents to their affected children (P = 0.02), with evidence for linkage disequilibrium between the 12T-43C haplotype and schizophrenia (P = 0.002). Furthermore, patients with the 12T allele had a significantly later age at onset (P = 0.003), and the Q-TDT approach confirmed that this allele was transmitted with an older age at onset (P = 0.01).Conclusions. These data provided convergent evidence for a significant role of the 5-HT5A gene in schizophrenia and more specifically in patients with later age at onset. (C) 2004 Elsevier Ltd. All rights reserved.
The expression of serotonin type 6 receptor (5-HT(6)) in limbic and cortical regions of the brain, and its high affinity for atypical antipsychotics suggest that its encoding gene may play a role in the pathogenesis of schizophrenia. We firstly performed a meta-analysis of the C267T polymorphism of the 5-HT(6) gene in schizophrenia, based on four different case/control studies, and showed that the allelic distribution is not significantly different between patients and controls, even when taking into account the role of between samples heterogeneity. We then recruited 103 trios (patients with Diagnostic and Statistical Manual Mental Disorders, 4th ed. (DSM-IV) diagnosis of schizophrenia and their parents), and investigated the C267T polymorphism of the 5-HT(6) receptor gene with regard to family-based association study approach (haplotype relative risk (HRR) and transmission disequilibrium test (TDT)). We found no excess of transmission of one allele from the parents to their affected children, using the HRR (P = 0.60), as well as no evidence for linkage between C267T polymorphism and schizophrenia, using the TDT (P = 0.71). Furthermore, the 267T allele frequency was comparable in the different subgroups defined on age at onset, family history of schizophrenia, treatment response, and subtypes of patients based on positive versus negative predominant symptoms. These data do not support the idea that the 5-HT(6) receptor gene plays a major role in the etiopathogenesis of schizophrenia.
The 32-kDa dopamine- and adenosine 3′,5′-monophosphate-regulated phosphoprotein (DARPP-32) is recognized to be critical to the pathogenesis of drug addiction. Opiates via the μ-receptor act on the dopaminergic system in the brain and modulates the expression of DARPP-32 phosphoprotein which is an important mediator of the activity of the extracellular signal-regulated kinase (ERK) signaling cascades, the activation of which represents an exciting nexus for drug-induced changes in neural long-term synaptic plasticity. Silencing of DARPP-32 using an siRNA against DARPP-32 may provide a novel gene therapy strategy to overcome drug addiction. In this study, we investigated the effect of the opiate (heroin) on D1 receptor (D1R) and DARPP-32 expression and additionally, evaluated the effects of DARPP-32-siRNA gene silencing on protein phosphatase-1 (PP-1), ERK, and cAMP response element-binding (CREB) gene expression in primary normal human astrocytes (NHA) cells in vitro. Our results indicate that heroin significantly upregulated both D1R and DARPP-32 gene expression, and that DARPP-32 silencing in the NHA cells resulted in the significant modulation of the activity of downstream effector molecules such as PP-1, ERK, and CREB which are known to play an important role in opiate abuse-induced changes in long-term neural plasticity. These findings have the potential to facilitate the development of DARPP32 siRNA-based therapeutics against drug addiction.
The aim of the present study was to analyse the role of beta(1)- and beta(2)-adrenoceptors in the catecholamine-induced myocardial remodeling, especially the interstitial fibrosis. Wistar rats were subjected to a 2-week chronic isoprenaline administration (30 microg/kg/h). Rats received a concomitant treatment with the selective beta(1)-adrenoceptor antagonist, bisoprolol (50 mg/kg/day p.o.) or were chronically pretreated with the selective beta(2)-adrenoceptor agonist salbutamol (40 microg/kg/h) for 1 week to induce beta(2)-adrenoceptor desensitization. The pretreatment with salbutamol induced a 59% down-regulation of left ventricular beta(2)-adrenoceptors compared to control. The extent of the isoprenaline-induced left ventricular fibrosis was significantly reduced in both the bisoprolol and salbutamol groups compared with the control isoprenaline-treated group especially in the apical region (1.7+/-0.6% and 1.4+/-0.3% versus 6.0+/-1.3%, respectively, P<0.005). beta(1)-adrenoceptor blockade and beta(2)-adrenoceptors down-regulation provided similar protection against isoprenaline-induced cardiac interstitial fibrosis suggesting that both beta-adrenoceptors are involved in such cardiac remodeling process.
The gene coding for the D2 dopamine receptor (DRD2) is considered as one of the most relevant candidate genes in schizophrenia. Previous genetic studies focusing on this gene yielded conflicting results, for example because of differences in methodology (linkage versus association studies) and variability in the loci analyzed (the DRD2 gene having many polymorphic sites). We used a progressive strategy with two different approaches (case-control and transmission disequilibrium test) and investigated six genetic polymorphisms spanning the DRD2 gene in 103 patients with DSM-IV criteria of schizophrenia, their 206 parents and 83 matched healthy control subjects. We found a significant excess of the A2 allele in subject with schizophrenia compared to unaffected controls. An excess of transmission of the A2 allele (and haplotypes containing this marker) from the parents to the affected children was also observed. Interestingly, the TaqI A1/A2 polymorphism, located 9.5 kb downstream from the DRD2 gene, maps in a novel gene, untitled "X-kinase", and leads to a 713Glu-->Lys substitution in exon 8. As the analysis of the other markers within the DRD2 gene does not improve the strength of the association, our data are in favor of a specific role of the 3' chromosomic region of the DRD2 gene in the vulnerability to schizophrenia.