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Cortisol is a stress hormone that acts on the central nervous system in order to support adaptation and time-adjusted coping processes. Whereas previous research has focused on slow emerging, genomic effects of cortisol likely mediated by protein synthesis, there is only limited knowledge about rapid, non-genomic cortisol effects on in vivo neuronal cell activity in humans. Three independent placebo-controlled studies in healthy men were conducted to test effects of 4 mg cortisol on central nervous system activity, occurring within 15 minutes after intravenous administration. Two of the studies (N = 26; N = 9) used continuous arterial spin labeling as a magnetic resonance imaging sequence, and found rapid bilateral thalamic perfusion decrements. The third study (N = 14) revealed rapid cortisol-induced changes in global signal strength and map complexity of the electroencephalogram. The observed changes in neuronal functioning suggest that cortisol may act on the thalamic relay of non-relevant background as well as on task specific sensory information in order to facilitate the adaptation to stress challenges. In conclusion, these results are the first to coherently suggest that a physiologically plausible amount of cortisol profoundly affects functioning and perfusion of the human CNS in vivo by a rapid, non-genomic mechanism.
Studien zeigen, dass sowohl die genetische Prädisposition als auch Umweltfaktoren zu häufigen Erkrankungen - wie Schmerzerkrankungen oder psychiatrischen Störungen - beitragen. Molekulargenetische Studien legen nahe, dass ein Teil der Erblichkeit in häufigen genetischen Varianten zu finden ist. Die Untersuchung des Zusammenwirkens dieser Faktoren kann das Verständnis der Ätiologie dieser Erkrankungen erweitern, und neue Präventions- und Behandlungsansätze hervorbringen. In der vorliegenden Arbeit werden vier Studien präsentiert, in denen Umwelt- und genetische Risikofaktoren für psychische Erkrankungen und Schmerz untersucht wurden: In der ersten Studie (Kapitel II) wurden mögliche Wirkmechanismen von etablierten Risikofaktoren für psychiatrische Störungen " das Aufwachsen und Leben in städtischer Umgebung " mit bildgebenden Verfahren untersucht. Einen möglichen Mechanismus stellt der erhöhte soziale Stress in städtischer Umgebung dar. In dieser Studie unterliefen zwei Stichproben von gesunden Probanden zwei verschiedene soziale Stressparadigmen für die Anwendung im fMRT, wovon eines im Rahmen dieser Doktorarbeit entwickelt wurde (ScanSTRESS). Hierbei zeigte sich eine erhöhte Amygdalaaktivität bei Probanden, welche aktuell in der Stadt lebten, während die Aktivität des perigenualen anterioren Cingulums mit dem Aufwachsen in der Stadt assoziiert war. Diese Befunde legen nahe, dass die akute Stressverarbeitung durch Umweltfaktoren in sensiblen Phasen der Entwicklung des Nervensystems beeinflusst wird. In der zweiten Studie (Kapitel III), wurde die Modulierung des Einflusses der städtischen Umwelt auf die Stressverarbeitung durch eine Einzelnukleotid-Polymorphismus (SNP; rs324981) im Gen, welches für den Neuropeptid S (NPS) Rezeptor kodiert (NPSR1), untersucht. In einer Stichprobe, welche das ScanSTRESS-Paradigma absolvierte, konnte gezeigt werden, dass rs324981 " in Interaktion mit städtischem Aufwachsen " die Aktivität der rechten Amygdala beeinflusste. Diese Resultate legen nahe, dass das NPS-System in der menschlichen Stressreaktion involviert ist, und diese in Interaktion mit Umweltfaktoren beeinflusst. In der dritten Studie (Kapitel IV), wurde der Effekt der genetischen Variation von NPSR1 auf die zentralnervöse und endokrine Stressverarbeitung weitergehend untersucht. Da sowohl die Stressregulation, als auch psychiatrische Störungen stark geschlechtsspezifische Ausprägungen aufweisen, wurde die Interaktion von genetischer Variation in NPSR1 mit dem Geschlecht berücksichtigt. Hierfür wurde eine Stichprobe von 277 Probanden mit dem Trierer Sozialen Stresstest (TSST) und eine Stichprobe von 65 Probanden mit dem ScanSTRESS-Paradigma untersucht. Die Analyse zeigte die geschlechtsspezifische Assoziation einer Allel-Kombination (Haplotyp) von drei funktionalen SNPs (rs2530547, rs324981 und rs727162) mit der Cortisolantwort auf den TSST, und einen geschlechtsspezifischen Effekt von rs324981 auf die zentralnervösen Aktivierungsmuster. Diese Ergebnisse legen nahe, dass das Geschlecht die Effekte von genetischer Variation im NPS-System auf die Stressregulation moduliert. In der vierten Studie (Kapitel V), wurde der Einfluss der genetischen Prädisposition und Umweltfaktoren auf chronischen Schmerz nach einer Amputation untersucht. Hierfür wurde eine Studie an 122 Individuen durchgeführt, bei welchen zwei Gliedmaßen amputiert wurden. Das Auftreten und die Intensität von sowohl Phantom- als auch Stumpfschmerzen zeigten einen starken Zusammenhang mit der Ausprägung des selben Schmerztyps zwischen den beiden amputierten Körpergliedern, es waren aber nur moderate Zusammenhänge zwischen den beiden Schmerzarten zu beobachten. Dieses Ergebnis legt den Einfluss von sowohl spezifischen, als auch gemeinsamen (potentiell genetischen) Risikofaktoren für beide Schmerztypen nahe.
Das Stresshormon Cortisol zeigt einen starken zirkadianen Rhythmus mit hohen Cortisolwerten nach dem morgendlichen Erwachen und niedrigen Werten am Abend. Die vorliegende Arbeit legt die Grundlagen dafür, dass der Cortisolspiegel nach dem Erwachen (Cortisol Awakening Response) zukünftig Bestandteil einer multimodalen Diagnostik stressbezogener Erkrankungen werden kann. Zu diesem Zweck werden besonders messmethodische Aspekte des Cortisol Awakening Response (CAR) dargestellt und eingehend diskutiert. Der Einfluss verschiedener konfundierender Variablen wurde in einer quantitativen Metaanalyse untersucht. Ein gesonderter Abschnitt beschreibt verschiedene Möglichkeiten der statistischen Analyse des CAR. Zu diesem Zweck wurden verschiedene statistische Kennwerte generiert und deren Reliabilitäten und Interkorrelationen an einem empirischen Datensatz untersucht. In dieser Arbeit werden auch Normwerte für die einzelnen statistischen Kennwerte des CAR angegeben.
Memory consists of multiple anatomically and functionally distinct systems. Animal studies suggest that stress modulates multiple memory systems in a manner that favors nucleus caudatus-based stimulus-response learning at the expense of hippocampus-based spatial learning. The present work aimed (i) to translate these findings to humans, (ii) to determine the involvement of the stress hormone cortisol in this effect, and (iii) to assess whether the use of stimulus-response and spatial strategies is a long lasting person characteristic. To address these issues we developed a new paradigm that differentiates the use of spatial and stimulus-response learning in humans. Our findings indicate that (i) psychosocial stress (Trier Social Stress Test) modulates the use of spatial and stimulus-response learning in humans, (ii) cortisol plays a key role in this modulatory effect of stress, and (iii) the use of spatial and stimulus-response learning is affected by situational rather than long lasting person factors.
The present thesis addresses the validity of Binge Eating Disorder (BED) as well as underlying mechanisms of BED from three different angles. Three studies provide data discriminating obesity with BED from obesity without BED. Study 1 demonstrates differences between obese individuals with and without BED regarding eating in the natural environment, psychiatric comorbidity, negative affect as well as self reported tendencies in eating behavior. Evidence for possible psychological mechanisms explaining increased intake of BED individuals in the natural environment was given by analyzing associations of negative affect, emotional eating, restrained eating and caloric intake in obese BED compared to NBED controls. Study 2 demonstrated stress-induced changes in the eating behavior of obese individuals with BED. The impact of a psychosocial stressor, the Trier Social Stress Test (TSST, Kirschbaum, Pirke, & Hellhammer, 1993), on behavioral patterns of eating behavior in laboratory was investigated. Special attention was given to stress-induced changes in variables that reflect mechanisms of appetite regulation in obese BED individuals compared to controls. To further explore by which mechanisms stress might trigger binge eating, study 3 investigated differences in stress-induced cortisol secretion after a socially evaluated cold pressure test (SECPT, Schwabe, Haddad, & Schachinger, 2008) in obese BED as compared to obese NBED individuals.
In this psycho-neuro-endocrine study the molecular basis of different variants of steroid receptors as well as highly conserved non steroidal receptors was investigated. These nuclear receptors (NRs) are important key regulators of a wide variety of different physiological and pathophysiological challenges ranging from inflammation and stress to complex behaviour and disease. NRs control gene transcription in a ligand dependent manner and are embedded in the huge interaction network of the neuroendocrine and immune system. Two receptors, the glucocorticoid receptor (GR) and the chicken ovalbumin upstream promoter-transcription factorII (Coup-TFII), both expressed in the immune and nervous system, were investigated regarding possible splice variants and their implication in the control of gene transcription. Both NRs are known to interact and modulate each other- target gene regulation. This study could be shown that both NRs have different splice variants that are expressed in a tissue specific manner. The different 5-´alternative transcript variants of the human GR were in silico identified in other species and evidence for a highly conserved and tightly controlled function was provided. Investigations of the N-terminal transactivation domain of the GR showed a deletion suggesting an altered glucocorticoid-dependent transactivation profile. The newly identified alternative transcript variant of Coup-TFII leads to a DNA binding deficient Coup-TFII isoform that is highly expressed in the brain. This Coup-TFII isoform alters Coup-TFII target gene expression and is suggested to interact with GR via its ligand binding domain resulting in an impaired GR target gene regulation in the nervous system. In this thesis it was demonstrated that NR variants are important for the understanding of the enormous regulatory potential of this receptor family and have to be taken into account for the development of therapeutic strategies for complex diseases such as stress related and neurodegenerative disorders.
Background: Hyperhidrosis (excessive sweating, OMIM %114110) is a complex disorder with multifactorial causes. Emotional strains and social stress increase symptoms and lead to a vicious circle. Previously, we showed significantly higher depression scores, and normal cortisol awakening responses in patients with primary focal hyperhidrosis (PFH). Stress reactivity in response to a (virtual) Trier Social Stress Test (TSST-VR) has not been studied so far. Therefore, we measured sweat secretion, salivary cortisol and alpha amylase (sAA) concentrations, and subjective stress ratings in affected and non-affected subjects in response to a TSST-VR.
Method: In this pilot study, we conducted TSST-VRs and performed general linear models with repeated measurements for salivary cortisol and sAA levels, heart rate, axillary sweat and subjective stress ratings for two groups (diagnosed PFH (n = 11), healthy controls (n = 16)).
Results: PFH patients showed significantly heightened sweat secretion over time compared to controls (p = 0.006), with highest quantities during the TSST-VR. In both groups, sweating (p < 0.001), maximum cortisol levels (p = 0.002), feelings of stress (p < 0.001), and heart rate (p < 0.001) but not sAA (p = 0.068) increased significantly in response to the TSST-VR. However, no differences were detected in subjective ratings, cortisol concentrations and heart rate between PFH patients and controls (pall > 0.131).
Conclusion: Patients with diagnosed PFH showed stress-induced higher sweat secretion compared to healthy controls but did not differ in the stress reactivity with regard to endocrine or subjective markers. This pilot study is in need of replication to elucidate the role of the sympathetic nervous system as a potential pathway involved in the stress-induced emotional sweating of PFH patients.
Im querschnittlichen Vergleich zwischen 10- bis 18-jährigen Mädchen mit Major Depression und gleichaltrigen gesunden Probandinnen wiesen die depressiven Mädchen mehr Probleme, mehr körperliche und psychische Stresssymptome, erhöhte Cortisolsekretion sowie eine ungünstigere Stressverarbeitung auf. Im Längsschnitt zeigte sich die Bedeutsamkeit von psychischer Stressbelastung und der Einfluss von Bewältigungsstrategien auf den Verlauf der Depression.
Fast and Slow Effects of Cortisol on Several Functions of the Central Nervous System in Humans
(2014)
Cortisol is one of the key substances released during stress to restore homeostasis. Our knowledge of the impact of this glucocorticoid on cognition and behavior in humans is, however, still limited. Two modes of action of cortisol are known, a rapid, nongenomic and a slow, genomic mode. Both mechanisms appear to be involved in mediating the various effects of stress on cognition. Here, three experiments are presented that investigated fast and slow effects of cortisol on several functions of the human brain. The first experiment investigated the interaction between insulin and slow, genomic cortisol effects on resting regional cerebral blood flow (rCBF) in 48 young men. A bilateral, locally distinct increase in rCBF in the insular cortex was observed 37 to 58 minutes after intranasal insulin admission. Cortisol did not influence rCBF, neither alone nor in interaction with insulin. This finding suggests that cortisol does not influence resting cerebral blood flow within a genomic timeframe. The second experiment examined fast cortisol effects on memory retrieval. 40 participants (20 of them female) learned associations between neutral male faces and social descriptions and were tested for recall one week later. Cortisol administered intravenously 8 minutes before retrieval influenced recall performance in an inverted U-shaped dose-response relationship. This study demonstrates a rapid, presumably nongenomic cortisol effect on memory retrieval in humans. The third experiment studied rapid cortisol effects on early multisensory integration. 24 male participants were tested twice in a focused cross-modal choice reaction time paradigm, once after cortisol and once after placebo infusion. Cortisol acutely enhanced the integration of visual targets and startling auditory distractors, when both stimuli appeared in the same sensory hemi-field. The rapidity of effect onset strongly suggests that cortisol changes multisensory integration by a nongenomic mechanism. The work presented in this thesis highlights the essential role of cortisol as a fast acting agent during the stress response. Both the second and the third experiment provide new evidence of nongenomic cortisol effects on human cognition and behavior. Future studies should continue to investigate the impact of rapid cortisol effects on the functioning of the human brain.
There is a lot of evidence for the impact of acute glucocorticoid treatment on hippocampus-dependent explicit learning and memory (memory for facts and events). But there have been few studies, investigating the effect of glucocorticoids on implicit learning and memory. We conducted three studies with different methodology to investigate the effect of glucocorticoids on different forms of implicit learning. In Study 1, we investigated the effect of cortisol depletion on short-term habituation in 49 healthy subjects. 25 participants received oral metyrapone (1500 mg) to suppress endogenous cortisol production, while 24 controls received oral placebo. Eye blink electromyogram (EMG) responses to 105 dB acoustic startle stimuli were assessed. Effective endogenous cortisol suppression had no effect on short-term habituation of the startle reflex, but startle eye blink responses were significantly increased in the metyrapone group. The latter findings are in line with previous human studies, which have shown that excess cortisol, sufficient to fully occupy central nervous system (CNS) corticosteroid receptors, may reduce startle eye blink. This effect may be mediated by CNS mechanisms controlling cortisol feedback. In Study 2, we investigated delay or trace eyeblink conditioning in a patient group with a relative hypocortisolism (30 patients with fibromyaligia syndrome/FMS) compared to 20 healthy control subjects. Conditioned eyeblink response probability was assessed by EMG. Morning cortisol levels, ratings of depression, anxiety and psychosomatic complaints as well as general symptomatology and psychological distress were assessed. As compared to healthy controls FMS patients showed lower morning cortisol levels, and trace eyeblink conditioning was facilitated whereas delay eyeblink conditioning was reduced. Cortisol measures correlate significantly only with trace eyeblink conditioning. Our results are in line with studies of pharmacologically induced hyper- and hypocortisolism, which affected trace eyeblink conditioning. We suggest that endocrine mechanisms affecting hippocampus-mediated forms of associative learning may play a role in the generation of symptoms in these patients.rnIn Study 3, we investigated the effect of excess cortisol on implicit sequence learning in healthy subjects. Oral cortisol (30 mg) was given to 29 participants, whereas 31 control subjects received placebo. All volunteers performed a 5-choice serial reaction time task (SRTT). The reaction speed of every button-press was determined and difference-scores were calculated as a proof of learning. Compared to the control group, we found a delayed learning in the cortisol group at the very beginning of the task. This study is the first human investigation, indicating impaired implicit memory function after exogenous administration of the stress hormone cortisol. Our findings support a previous neuroimaging study, which suggested that the medial temporal lobe (including the hippocampus) is also active in implicit sequence learning, but our results may also depend on the engagement of other brain structures.