TY - JOUR A1 - Gutknecht, Lise A1 - Araragi, Naozumi A1 - Merker, Sören A1 - Waider, Jonas A1 - Sommerlandt, Frank M. J. A1 - Mlinar, Boris A1 - Baccini, Gilda A1 - Mayer, Ute A1 - Proft, Florian A1 - Hamon, Michel A1 - Schmitt, Angelika G. A1 - Corradetti, Renato A1 - Lanfumey, Laurence A1 - Lesch, Klaus-Peter T1 - Impacts of Brain Serotonin Deficiency following Tph2 Inactivation on Development and Raphe Neuron Serotonergic Specification JF - PLoS One N2 - Brain serotonin (5-HT) is implicated in a wide range of functions from basic physiological mechanisms to complex behaviors, including neuropsychiatric conditions, as well as in developmental processes. Increasing evidence links 5-HT signaling alterations during development to emotional dysregulation and psychopathology in adult age. To further analyze the importance of brain 5-HT in somatic and brain development and function, and more specifically differentiation and specification of the serotonergic system itself, we generated a mouse model with brain-specific 5-HT deficiency resulting from a genetically driven constitutive inactivation of neuronal tryptophan hydroxylase-2 (Tph2). Tph2 inactivation (Tph2-/-) resulted in brain 5-HT deficiency leading to growth retardation and persistent leanness, whereas a sex- and age-dependent increase in body weight was observed in Tph2+/- mice. The conserved expression pattern of the 5-HT neuron-specific markers (except Tph2 and 5-HT) demonstrates that brain 5-HT synthesis is not a prerequisite for the proliferation, differentiation and survival of raphe neurons subjected to the developmental program of serotonergic specification. Furthermore, although these neurons are unable to synthesize 5-HT from the precursor tryptophan, they still display electrophysiological properties characteristic of 5-HT neurons. Moreover, 5-HT deficiency induces an up-regulation of 5-HT\(_{1A}\) and 5-HT\(_{1B}\) receptors across brain regions as well as a reduction of norepinephrine concentrations accompanied by a reduced number of noradrenergic neurons. Together, our results characterize developmental, neurochemical, neurobiological and electrophysiological consequences of brain-specific 5-HT deficiency, reveal a dual dose-dependent role of 5-HT in body weight regulation and show that differentiation of serotonergic neuron phenotype is independent from endogenous 5-HT synthesis. KW - lacking KW - knock-out mice KW - energy expenditure KW - locomotor activity KW - 5-HT transporter KW - anxiety like KW - receptors KW - behavior KW - tryptophan KW - nucleus Y1 - 2012 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-133728 VL - 7 IS - 8 ER - TY - JOUR A1 - Araragi, Naozumi A1 - Mlinar, Boris A1 - Baccini, Gilda A1 - Gutknecht, Lise A1 - Lesch, Klaus-Peter A1 - Corradetti, Renato T1 - Conservation of 5-HT1A receptor-mediated autoinhibition of serotonin (5-HT) neurons in mice with altered 5-HT homeostasis JF - Frontiers in Neuropharmacology N2 - Firing activity of serotonin (5-HT) neurons in the dorsal raphe nucleus (DRN) is controlled by inhibitory somatodendritic 5-HT1A autoreceptors. This autoinhibitory mechanism is implicated in the etiology of disorders of emotion regulation, such as anxiety disorders and depression, as well as in the mechanism of antidepressant action. Here, we investigated how persistent alterations in brain 5-HT availability affect autoinhibition in two genetically modified mouse models lacking critical mediators of serotonergic transmission: 5-HT transporter knockout (Sert-/-) and tryptophan hydroxylase-2 knockout (Tph2-/-) mice. The degree of autoinhibition was assessed by loose-seal cell-attached recording in DRN slices. First, application of the 5-HT1A-selective agonist R(+)-8-hydroxy-2-(di-n-propylamino)tetralin showed mild sensitization and marked desensitization of 5-HT1A receptors in Tph2-/- mice and Sert-/- mice, respectively. While 5-HT neurons from Tph2-/- mice did not display autoinhibition in response to L-tryptophan, autoinhibition of these neurons was unaltered in Sert-/- mice despite marked desensitization of their 5-HT1A autoreceptors. When the Tph2-dependent 5-HT synthesis step was bypassed by application of 5-hydroxy-L-tryptophan (5-HTP), neurons from both Tph2-/- and Sert-/- mice decreased their firing rates at significantly lower concentrations of 5-HTP compared to wildtype controls. Our findings demonstrate that, as opposed to the prevalent view, sensitivity of somatodendritic 5-HT1A receptors does not predict the magnitude of 5-HT neuron autoinhibition. Changes in 5-HT1A receptor sensitivity may rather be seen as an adaptive mechanism to keep autoinhibition functioning in response to extremely altered levels of extracellular 5-HT resulting from targeted inactivation of mediators of serotonergic signaling. KW - serotonin transporter KW - tryptophan hydroxylase-2 KW - knockout KW - dorsal raphe nucleus KW - autoinhibition KW - 5-HT1A receptor Y1 - 2013 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-97098 ER - TY - THES A1 - Araragi, Naozumi T1 - Electrophysiological investigation of two animal models for emotional disorders - serotonin transporter knockout mice and tryptophan hydroxylase 2 knockout mice T1 - Elektrophysiologische Untersuchung bei zwei Tiermodellen für emotionale Störungen - Serotonin Transporter knockout Mäuse und Tryptophan Hydroxylase 2 knockout Mäuse N2 - Serotonin (5-HT) has been implicated in the regulation of emotions as well as in its pathological states, such as anxiety disorders and depression. Mice with targeted deletion of genes encoding various mediators of central serotonergic neurotransmission therefore provides a powerful tool in understanding contributions of such mediators to homeostatic mechanisms as well as to the development of human emotional disorders. Within this thesis a battery of electrophysiological recordings were conducted in the dorsal raphe nucleus (DRN) and the hippocampus of two murine knockout lines with deficient serotonergic systems. Serotonin transporter knockout mice (5-Htt KO), which lack protein responsible for reuptake of 5-HT from the extracellular space and tryptophan hydroxylase 2 knockout (Tph2 KO) mice, which lack the gene encoding the neuronal 5-HT-synthesising enzyme. First, 5-HT1A receptor-mediated autoinhibition of serotonergic neuron firing in the DRN was assessed using the loose-seal cell-attached configuration. Stimulation of 5-HT1A receptors by a selective agonist, R-8-hydroxy-2-(di-n-propylamino)tetralin (R-8-OH-DPAT), showed a mild sensitisation and a marked desensitisation of these receptors in Tph2 KO and 5-Htt KO mice, respectively. While application of tryptophan, a precursor of 5-HT and a substrate of Tph2, did not cause autoinhibition in Tph2 KO mice due to the lack of endogenously produced 5-HT, data from 5-Htt KO mice as well as heterozygous mice of both KO mice lines demonstrated the presence of autoinhibitory mechanisms as normal as seen in wildtype (WT) controls. When the Tph2-dependent step in the 5-HT synthesis pathway was bypassed by application of 5-hydroxytryptophan (5-HTP), serotonergic neurons of both Tph2 KO and 5-Htt KO mice showed decrease in firing rates at lower concentrations of 5-HTP than in WT controls. Elevated responsiveness of serotonergic neurons from Tph2 KO mice correspond to mild sensitisation of 5-HT1A receptors, while responses from 5-Htt KO mice suggest that excess levels of extracellular 5-HT, created by the lack of 5-Htt, stimulates 5-HT1A receptors strong enough to overcome desensitisation of these receptors. Second, the whole-cell patch clamp recording data from serotonergic neurons in the DRN showed no differences in basic electrophysiological properties between Tph2 KO and WT mice, except lower membrane resistances of neurons from KO mice. Moreover, the whole-cell patch clamp recording from CA1 pyramidal neurons in the hippocampus of 5-Htt KO mice showed increased conductance both at a steady state and at action potential generation. Lastly, magnitude of long-term potentiation (LTP) induced by the Schaffer collateral/commissural pathway stimulation in the ventral hippocampus showed no differences among Tph2 KO, 5-Htt KO, and WT counterparts. Taken together, lack and excess of extracellular 5-HT caused sensitisation and desensitisation of autoinhibitory 5-HT1A receptors, respectively. However, this may not directly translate to the level of autoinhibitory regulation of serotonergic neuron firing when these receptors are stimulated by endogenously synthesised 5-HT. In general, KO mice studied here showed an astonishing level of resilience to genetic manipulations of the central serotonergic system, maintaining overall electrophysiological properties and normal LTP inducibility. This may further suggest existence of as-yet-unknown compensatory mechanisms buffering potential alterations induced by genetic manipulations. N2 - Serotonin (5-HT) ist an der Regulation von der Emotionen, sowie ihrer pathologischen Zustände, wie Angststörungen und Depressionen beteiligt. Mäuse denen, mittels einer zielgerichteteten Deletion von Genen, die verschiedenste Proteine involviert in der zentralen serotonergen Nerotransmission fehlen, dienen daher als ein nützliches Tiermodell, um die Rolle dieser Mediatoren bei Homöostasemechanismen und der Entwicklung emotionaler Störungen beim Menschen zu verstehen. Im Rahmen dieser Thesis wurde eine Batterie von elektrophysiologischen Ableitungen im Hippocampus sowie in der dorsalen Raphe Nucleus (DRN) zweier Knockout-Mauslinien mit einem defizienten serotonergen Systems durchgeführt. Serotonintransporter Knockout-Mäuse (5-Htt KO), denen das Protein zur Wiederaufnahme von 5-HT aus dem extrazellulären Raum fehlt und Tryptophanhydroxylase 2 Knockout-Mäuse (Tph2 KO), denen das Gen für das 5-HT-synthetisierende Enzym im Gehirn fehlt. Zunächst wurde mittels der “loose-seal cell-attached” Aufnahmemethode die Eigenhemmung der serotonergen Neuronen untersucht, die durch 5-HT1A Rezeptoren in der DRN vermittelt wird. Stimulierung der 5-HT1A Rezeptoren durch einen selektiven Agonist, R-8-hydroxy-2-(di-n-propylamino)tetralin (R-8-OH-DPAT), zeigte eine milde Sensibilisierung und eine deutliche Desensibilisierung dieser Rezeptoren in Tph2 KO bzw. in 5-Htt KO Mäusen. Während die Anwendung von Tryptophan, eine Vorstufe von 5-HT und ein Substrat der Tph2, keine Eigenhemmung, aufgrund des Mangels an endogen produziertem 5-HT, in Tph2 KO Mäusen verursachte, wiesen Daten von 5-Htt KO Mäusen sowie von heterozygoten Mäusen beider KO Mauslinien die Existenz der Eigenhemmungsmechanismen wie in den Wildtypen (WT) nach. Wurde der Tph2-abhängige Schritt im 5-HT Syntheseweg durch Anwendung von 5-Hydroxytryptophan (5-HTP) umgangen, zeigten sowohl Tph2 KO als auch 5-Htt KO Mäuse eine Verminderung der serotonergen neuronalen Feuerungsrate bei niedrigeren Konzentrationen von 5-HTP im Vergleich zu den WT. Die erhöhte Reaktionsfähigkeit der serotonergen Neuronen von Tph2 KO Mäusen entsprechen der milden Sensibilisierung der 5-HT1A Rezeptoren. Stattdessen deuten die Reaktionen der serotonergen Neuronen von 5-Htt KO Mäusen darauf hin, dass das überschüssige Niveau von extrazellularem 5-HT, welches durch den Mangel an 5-Htt verursacht wird, 5-HT1A Rezeptoren stark genug stimuliert, um eine Desensibilisierung dieser Rezeptoren zu überwinden. Zweitens zeigten die Daten der whole-cell Patch Clamp Ableitung von serotonergen Neuronen im DRN keine Unterschiede in grundlegenden elektrophysiologischen Eigenschaften zwischen Tph2 KO und WT, außer niedrigen Membranwiderständen in KO Mäusen. Darüber hinaus zeigte die whole-cell Patch Clamp Ableitungen von CA1 Pyramidenzellen im Hippocampus der 5-Htt KO Mäuse eine erhöhte Leitfähigkeit sowohl bei Ruheständen als auch bei Aktionspotentialerzeugungen. Schließlich zeigte die Stärke der Langzeitpotenzierung (long-term potentiation: LTP) durch die Stimulation der Schaffer-Kollateralen/kommissuralen Fasern im ventralen Hippocampus keine Unterschiede zwischen Tph2 KO, 5-Htt KO, und jeweiligen WT. Zusammengefasst verursachten der Mangel und der Überschuss von extrazellularen 5-HT eine Sensibilisierung bzw. Desensibilisierung der autoinhibitorischen 5-HT1A Rezeptoren. Dies kann jedoch nicht direkt in die Regulierung von serotonergen Neuronen Feuerung umgesetzt werden, wenn die 5-HT1A Rezeptoren durch endogen synthetisiertes 5-HT stimuliert werden. Im Allgemeinen zeigten die hier untersuchten KO Mäuse, ein erstaunliches Maß an Widerstandskraft, die die allgemeinen elektrophysiologischen Eigenschaften und die normale LTP Induzierbarkeit trotz genetischer Manipulationen des zentralen serotonergen Systems aufrechterhielt. Weiterhin deutet dies auf die Existenz noch unbekannter Kompensationsmechanismen hin, die diese potentiellen Veränderungen abzudämpfen scheinen. KW - Serotonin KW - Elektrophysiologie KW - Tryptophan hydroxylase 2 KW - Knockout KW - Serotonin transporter KW - Depression KW - Anxiety KW - Knockout KW - Maus Y1 - 2013 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-83265 ER - TY - JOUR A1 - Waider, Jonas A1 - Popp, Sandy A1 - Mlinar, Boris A1 - Montalbano, Alberto A1 - Bonfiglio, Francesco A1 - Aboagye, Benjamin A1 - Thuy, Elisabeth A1 - Kern, Raphael A1 - Thiel, Christopher A1 - Araragi, Naozumi A1 - Svirin, Evgeniy A1 - Schmitt-Böhrer, Angelika G. A1 - Corradetti, Renato A1 - Lowry, Christopher A. A1 - Lesch, Klaus-Peter T1 - Serotonin deficiency increases context-dependent fear learning through modulation of hippocampal activity JF - Frontiers in Neuroscience N2 - Brain serotonin (5-hydroxytryptamine, 5-HT) system dysfunction is implicated in exaggerated fear responses triggering various anxiety-, stress-, and trauma-related disorders. However, the underlying mechanisms are not well understood. Here, we investigated the impact of constitutively inactivated 5-HT synthesis on context-dependent fear learning and extinction using tryptophan hydroxylase 2 (Tph2) knockout mice. Fear conditioning and context-dependent fear memory extinction paradigms were combined with c-Fos imaging and electrophysiological recordings in the dorsal hippocampus (dHip). Tph2 mutant mice, completely devoid of 5-HT synthesis in brain, displayed accelerated fear memory formation and increased locomotor responses to foot shock. Furthermore, recall of context-dependent fear memory was increased. The behavioral responses were associated with increased c-Fos expression in the dHip and resistance to foot shock-induced impairment of hippocampal long-term potentiation (LTP). In conclusion, increased context-dependent fear memory resulting from brain 5-HT deficiency involves dysfunction of the hippocampal circuitry controlling contextual representation of fear-related behavioral responses. KW - tryptophan hydroxylase 2 KW - knockout KW - fear learning KW - extinction KW - long-term potentiation KW - hippocampus KW - immediate-early gene KW - serotonin deficiency Y1 - 2019 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-196077 SN - 1662-453X VL - 13 IS - 245 ER -