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1.
Neuron ; 112(7): 1165-1181.e8, 2024 Apr 03.
Artículo en Inglés | MEDLINE | ID: mdl-38301648

RESUMEN

Physical exercise is known to reduce anxiety, but the underlying brain mechanisms remain unclear. Here, we explore a hypothalamo-cerebello-amygdalar circuit that may mediate motor-dependent alleviation of anxiety. This three-neuron loop, in which the cerebellar dentate nucleus takes center stage, bridges the motor system with the emotional system. Subjecting animals to a constant rotarod engages glutamatergic cerebellar dentate neurons that drive PKCδ+ amygdalar neurons to elicit an anxiolytic effect. Moreover, challenging animals on an accelerated rather than a constant rotarod engages hypothalamic neurons that provide a superimposed anxiolytic effect via an orexinergic projection to the dentate neurons that activate the amygdala. Our findings reveal a cerebello-limbic pathway that may contribute to motor-triggered alleviation of anxiety and that may be optimally exploited during challenging physical exercise.


Asunto(s)
Ansiolíticos , Animales , Ansiedad/metabolismo , Hipotálamo , Cerebelo , Trastornos de Ansiedad
2.
Biomed Pharmacother ; 153: 113344, 2022 Sep.
Artículo en Inglés | MEDLINE | ID: mdl-35780620

RESUMEN

Betahistine and gastrodin are the first-line medications for vestibular disorders in clinical practice, nevertheless, their amelioration effects on vestibular dysfunctions still lack direct comparison and their unexpected extra-vestibular effects remain elusive. Recent clinical studies have indicated that both of them may have effects on the gastrointestinal (GI) tract. Therefore, we purposed to systematically compare both vestibular and GI effects induced by betahistine and gastrodin and tried to elucidate the mechanisms underlying their GI effects. Our results showed that betahistine and gastrodin indeed had similar therapeutic effects on vestibular-associated motor dysfunction induced by unilateral labyrinthectomy. However, betahistine reduced total GI motility with gastric hypomotility and colonic hypermotility, whereas gastrodin did not influence total GI motility with only slight colonic hypermotility. In addition, betahistine, at normal dosages, induced a slight injury of gastric mucosa. These GI effects may be due to the different effects of betahistine and gastrodin on substance P and vasoactive intestinal peptide secretion in stomach and/or colon, and agonistic/anatgonistic effects of betahistine on histamine H1 and H3 receptors expressed in GI mucosal cells and H3 receptors distributed on nerves within the myenteric and submucosal plexuses. Furthermore, treatment of betahistine and gastrodin had potential effects on gut microbiota composition, which could lead to changes in host-microbiota homeostasis in turn. These results demonstrate that gastrodin has a consistent improvement effect on vestibular functions compared with betahistine but less effect on GI functions and gut microbiota, suggesting that gastrodin may be more suitable for vestibular disease patients with GI dysfunction.


Asunto(s)
Receptores Histamínicos H3 , Vestíbulo del Laberinto , Animales , Alcoholes Bencílicos , Betahistina/farmacología , Betahistina/uso terapéutico , Glucósidos , Ratones , Receptores Histamínicos H3/metabolismo , Núcleos Vestibulares/metabolismo , Vestíbulo del Laberinto/metabolismo
3.
Sheng Li Xue Bao ; 74(2): 135-144, 2022 Apr 25.
Artículo en Chino | MEDLINE | ID: mdl-35503061

RESUMEN

Vestibular compensation is an important model for developing the prevention and intervention strategies of vestibular disorders, and investigating the plasticity of the adult central nervous system induced by peripheral injury. Medial vestibular nucleus (MVN) in brainstem is critical center for vestibular compensation. Its neuronal excitability and sensitivity have been implicated in normal function of vestibular system. Previous studies mainly focused on the changes in neuronal excitability of the MVN in lesional side of the rat model of vestibular compensation following the unilateral labyrinthectomy (UL). However, the plasticity of sensitivity of bilateral MVN neurons dynamically responding to input stimuli is still largely unknown. In the present study, by using qPCR, whole-cell patch clamp recording in acute brain slices and behavioral techniques, we observed that 6 h after UL, rats showed a significant deficit in spontaneous locomotion, and a decrease in excitability of type B neurons in the ipsilesional rather than contralesional MVN. By contrast, type B neurons in the contralesional rather than ipsilesional MVN exhibited an increase in response sensitivity to the ramp and step input current stimuli. One week after UL, both the neuronal excitability of the ipsilesional MVN and the neuronal sensitivity of the contralesional MVN recovered to the baseline, accompanied by a compensation of spontaneous locomotion. In addition, the data showed that the small conductance Ca2+-activated K+ (SK) channel involved in the regulation of type B MVN neuronal sensitivity, showed a selective decrease in expression in the contralesional MVN 6 h after UL, and returned to normal level 1 week later. Pharmacological blockage of SK channel in contralateral MVN to inhibit the UL-induced functional plasticity of SK channel significantly delayed the compensation of vestibular motor dysfunction. These results suggest that the changes in plasticity of the ipsilesional MVN neuronal excitability, together with changes in the contralesional MVN neuronal sensitivity, may both contribute to the development of vestibular symptoms as well as vestibular compensation, and SK channel may be an essential ionic mechanism responsible for the dynamic changes of MVN neuronal sensitivity during vestibular compensation.


Asunto(s)
Núcleos Vestibulares , Vestíbulo del Laberinto , Animales , Locomoción , Neuronas/fisiología , Técnicas de Placa-Clamp , Ratas , Núcleos Vestibulares/metabolismo
4.
J Neurosci ; 39(3): 420-433, 2019 01 16.
Artículo en Inglés | MEDLINE | ID: mdl-30413645

RESUMEN

Vestibular compensation is responsible for the spontaneous recovery of postural, locomotor, and oculomotor dysfunctions in patients with peripheral vestibular lesion or posterior circulation stroke. Mechanism investigation of vestibular compensation is of great importance in both facilitating recovery of vestibular function and understanding the postlesion functional plasticity in the adult CNS. Here, we report that postsynaptic histamine H1 receptor contributes greatly to facilitating vestibular compensation. The expression of H1 receptor is restrictedly increased in the ipsilesional rather than contralesional GABAergic projection neurons in the medial vestibular nucleus (MVN), one of the most important centers for vestibular compensation, in unilateral labyrinthectomized male rats. Furthermore, H1 receptor mediates an asymmetric excitation of the commissural GABAergic but not glutamatergic neurons in the ipsilesional MVN, which may help to rebalance bilateral vestibular systems and promote vestibular compensation. Selective blockage of H1 receptor in the MVN significantly retards the recovery of both static and dynamic vestibular symptoms following unilateral labyrinthectomy, and remarkably attenuates the facilitation of betahistine, whose effect has traditionally been attributed to its antagonistic action on the presynaptic H3 receptor, on vestibular compensation. These results reveal a previously unknown role for histamine H1 receptor in vestibular compensation and amelioration of vestibular motor deficits, as well as an involvement of H1 receptor in potential therapeutic effects of betahistine. The findings provide not only a new insight into the postlesion neuronal circuit plasticity and functional recovery in the CNS, but also a novel potential therapeutic target for vestibular disorders.SIGNIFICANCE STATEMENT Vestibular disorders manifest postural imbalance, nystagmus, and vertigo. Vestibular compensation is critical for facilitating recovery from vestibular disorders, and of great importance in understanding the postlesion functional plasticity in the adult CNS. Here, we show that postsynaptic H1 receptor in the medial vestibular nucleus (MVN) contributes greatly to the recovery of both static and dynamic symptoms following unilateral vestibular lesion. H1 receptor selectively mediates the asymmetric activation of commissural inhibitory system in the ipsilesional MVN and actively promotes vestibular compensation. The findings provide not only a new insight into the postlesion neuronal circuit plasticity and functional recovery of CNS, but also a novel potential therapeutic target for promoting vestibular compensation and ameliorating vestibular disorders.


Asunto(s)
Receptores Histamínicos H1/efectos de los fármacos , Vestíbulo del Laberinto/fisiopatología , Animales , Betahistina/uso terapéutico , Oído Interno , Lateralidad Funcional/efectos de los fármacos , Antagonistas de los Receptores Histamínicos H1/farmacología , Antagonistas de los Receptores Histamínicos H3/uso terapéutico , Locomoción/efectos de los fármacos , Masculino , Red Nerviosa/efectos de los fármacos , Red Nerviosa/fisiopatología , Neuronas/efectos de los fármacos , Nistagmo Fisiológico/efectos de los fármacos , Técnicas de Placa-Clamp , Equilibrio Postural/efectos de los fármacos , Ratas , Ratas Sprague-Dawley , Enfermedades Vestibulares/tratamiento farmacológico , Núcleos Vestibulares/citología , Núcleos Vestibulares/efectos de los fármacos , Núcleos Vestibulares/fisiopatología , Ácido gamma-Aminobutírico
5.
Neurosci Bull ; 34(6): 1029-1036, 2018 Dec.
Artículo en Inglés | MEDLINE | ID: mdl-30143981

RESUMEN

The ventral pallidum (VP) is a crucial component of the limbic loop of the basal ganglia and participates in the regulation of reward, motivation, and emotion. Although the VP receives afferent inputs from the central histaminergic system, little is known about the effect of histamine on the VP and the underlying receptor mechanism. Here, we showed that histamine, a hypothalamic-derived neuromodulator, directly depolarized and excited the GABAergic VP neurons which comprise a major cell type in the VP and are responsible for encoding cues of incentive salience and reward hedonics. Both postsynaptic histamine H1 and H2 receptors were found to be expressed in the GABAergic VP neurons and co-mediate the excitatory effect of histamine. These results suggested that the central histaminergic system may actively participate in VP-mediated motivational and emotional behaviors via direct modulation of the GABAergic VP neurons. Our findings also have implications for the role of histamine and the central histaminergic system in psychiatric disorders.


Asunto(s)
Prosencéfalo Basal/citología , Neuronas GABAérgicas/efectos de los fármacos , Histamina/farmacología , Receptores Histamínicos H1/metabolismo , Receptores Histamínicos H2/metabolismo , Potenciales de Acción/efectos de los fármacos , Animales , Dimaprit/farmacología , Relación Dosis-Respuesta a Droga , Estimulación Eléctrica , Femenino , Agonistas de los Receptores Histamínicos/farmacología , Lisina/análogos & derivados , Lisina/metabolismo , Masculino , Técnicas de Placa-Clamp , Piridinas/farmacología , Ratas , Ratas Sprague-Dawley , Bloqueadores de los Canales de Sodio/farmacología , Tetrodotoxina/farmacología , Ácido gamma-Aminobutírico/metabolismo
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