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1.
Cell ; 186(1): 14-16, 2023 01 05.
Artigo em Inglês | MEDLINE | ID: mdl-36608650

RESUMO

How the neocortex modulates hindbrain and spinal circuits is of fundamental interest for understanding motor control and adaptive behaviors. New work from Yang, Kanodia, and Arber demonstrates that there is an exquisite anatomical organization and functional modulation from the anterior (motor) cortex on downstream medulla populations during forelimb behaviors in mice.


Assuntos
Membro Anterior , Neocórtex , Animais , Camundongos , Córtex Motor/fisiologia , Rombencéfalo/fisiologia , Coluna Vertebral/fisiologia
2.
Cell ; 185(26): 5011-5027.e20, 2022 12 22.
Artigo em Inglês | MEDLINE | ID: mdl-36563666

RESUMO

To track and control self-location, animals integrate their movements through space. Representations of self-location are observed in the mammalian hippocampal formation, but it is unknown if positional representations exist in more ancient brain regions, how they arise from integrated self-motion, and by what pathways they control locomotion. Here, in a head-fixed, fictive-swimming, virtual-reality preparation, we exposed larval zebrafish to a variety of involuntary displacements. They tracked these displacements and, many seconds later, moved toward their earlier location through corrective swimming ("positional homeostasis"). Whole-brain functional imaging revealed a network in the medulla that stores a memory of location and induces an error signal in the inferior olive to drive future corrective swimming. Optogenetically manipulating medullary integrator cells evoked displacement-memory behavior. Ablating them, or downstream olivary neurons, abolished displacement corrections. These results reveal a multiregional hindbrain circuit in vertebrates that integrates self-motion and stores self-location to control locomotor behavior.


Assuntos
Neurônios , Peixe-Zebra , Animais , Peixe-Zebra/fisiologia , Neurônios/fisiologia , Rombencéfalo/fisiologia , Encéfalo/fisiologia , Natação/fisiologia , Homeostase , Mamíferos
3.
Cell ; 180(3): 536-551.e17, 2020 02 06.
Artigo em Inglês | MEDLINE | ID: mdl-31955849

RESUMO

Goal-directed behavior requires the interaction of multiple brain regions. How these regions and their interactions with brain-wide activity drive action selection is less understood. We have investigated this question by combining whole-brain volumetric calcium imaging using light-field microscopy and an operant-conditioning task in larval zebrafish. We find global, recurring dynamics of brain states to exhibit pre-motor bifurcations toward mutually exclusive decision outcomes. These dynamics arise from a distributed network displaying trial-by-trial functional connectivity changes, especially between cerebellum and habenula, which correlate with decision outcome. Within this network the cerebellum shows particularly strong and predictive pre-motor activity (>10 s before movement initiation), mainly within the granule cells. Turn directions are determined by the difference neuroactivity between the ipsilateral and contralateral hemispheres, while the rate of bi-hemispheric population ramping quantitatively predicts decision time on the trial-by-trial level. Our results highlight a cognitive role of the cerebellum and its importance in motor planning.


Assuntos
Cerebelo/fisiologia , Tomada de Decisões/fisiologia , Tempo de Reação/fisiologia , Peixe-Zebra/fisiologia , Animais , Comportamento Animal/fisiologia , Mapeamento Encefálico/métodos , Cérebro/fisiologia , Cognição/fisiologia , Condicionamento Operante/fisiologia , Objetivos , Habenula/fisiologia , Temperatura Alta , Larva/fisiologia , Atividade Motora/fisiologia , Movimento , Neurônios/fisiologia , Desempenho Psicomotor/fisiologia , Rombencéfalo/fisiologia
4.
Cell ; 182(6): 1589-1605.e22, 2020 09 17.
Artigo em Inglês | MEDLINE | ID: mdl-32841600

RESUMO

Hunger and thirst have distinct goals but control similar ingestive behaviors, and little is known about neural processes that are shared between these behavioral states. We identify glutamatergic neurons in the peri-locus coeruleus (periLCVGLUT2 neurons) as a polysynaptic convergence node from separate energy-sensitive and hydration-sensitive cell populations. We develop methods for stable hindbrain calcium imaging in free-moving mice, which show that periLCVGLUT2 neurons are tuned to ingestive behaviors and respond similarly to food or water consumption. PeriLCVGLUT2 neurons are scalably inhibited by palatability and homeostatic need during consumption. Inhibition of periLCVGLUT2 neurons is rewarding and increases consumption by enhancing palatability and prolonging ingestion duration. These properties comprise a double-negative feedback relationship that sustains food or water consumption without affecting food- or water-seeking. PeriLCVGLUT2 neurons are a hub between hunger and thirst that specifically controls motivation for food and water ingestion, which is a factor that contributes to hedonic overeating and obesity.


Assuntos
Regulação do Apetite/fisiologia , Ingestão de Líquidos/fisiologia , Ingestão de Alimentos/fisiologia , Locus Cerúleo/citologia , Rede Nervosa/fisiologia , Neurônios/fisiologia , Rombencéfalo/fisiologia , Análise de Célula Única/métodos , Animais , Apetite/fisiologia , Escala de Avaliação Comportamental , Retroalimentação , Comportamento Alimentar/fisiologia , Feminino , Glutamina/metabolismo , Glutamina/fisiologia , Homeostase/fisiologia , Fome/fisiologia , Masculino , Camundongos , Camundongos Knockout , Motivação/fisiologia , Neurônios/efeitos dos fármacos , Proteínas Recombinantes , Recompensa , Rombencéfalo/citologia , Rombencéfalo/diagnóstico por imagem , Paladar/fisiologia , Sede/fisiologia
5.
Cell ; 183(7): 1913-1929.e26, 2020 12 23.
Artigo em Inglês | MEDLINE | ID: mdl-33333020

RESUMO

Neurons in the cerebral cortex connect through descending pathways to hindbrain and spinal cord to activate muscle and generate movement. Although components of this pathway have been previously generated and studied in vitro, the assembly of this multi-synaptic circuit has not yet been achieved with human cells. Here, we derive organoids resembling the cerebral cortex or the hindbrain/spinal cord and assemble them with human skeletal muscle spheroids to generate 3D cortico-motor assembloids. Using rabies tracing, calcium imaging, and patch-clamp recordings, we show that corticofugal neurons project and connect with spinal spheroids, while spinal-derived motor neurons connect with muscle. Glutamate uncaging or optogenetic stimulation of cortical spheroids triggers robust contraction of 3D muscle, and assembloids are morphologically and functionally intact for up to 10 weeks post-fusion. Together, this system highlights the remarkable self-assembly capacity of 3D cultures to form functional circuits that could be used to understand development and disease.


Assuntos
Córtex Cerebral/fisiologia , Córtex Motor/fisiologia , Organoides/fisiologia , Animais , Cálcio/metabolismo , Diferenciação Celular , Células Cultivadas , Vértebras Cervicais , Regulação da Expressão Gênica , Glutamatos/metabolismo , Humanos , Células-Tronco Pluripotentes Induzidas/citologia , Camundongos , Músculos/fisiologia , Mioblastos/metabolismo , Rede Nervosa/fisiologia , Optogenética , Organoides/ultraestrutura , Rombencéfalo/fisiologia , Esferoides Celulares/citologia , Medula Espinal/citologia
6.
Annu Rev Neurosci ; 42: 67-86, 2019 07 08.
Artigo em Inglês | MEDLINE | ID: mdl-30699050

RESUMO

The genetic approach, based on the study of inherited forms of deafness, has proven to be particularly effective for deciphering the molecular mechanisms underlying the development of the peripheral auditory system, the cochlea and its afferent auditory neurons, and how this system extracts the physical parameters of sound. Although this genetic dissection has provided little information about the central auditory system, scattered data suggest that some genes may have a critical role in both the peripheral and central auditory systems. Here, we review the genes controlling the development and function of the peripheral and central auditory systems, focusing on those with demonstrated intrinsic roles in both systems and highlighting the current underappreciation of these genes. Their encoded products are diverse, from transcription factors to ion channels, as are their roles in the central auditory system, mostly evaluated in brainstem nuclei. We examine the ontogenetic and evolutionary mechanisms that may underlie their expression at different sites.


Assuntos
Vias Auditivas/fisiologia , Regulação da Expressão Gênica no Desenvolvimento , Genes , Neurogênese/genética , Animais , Vias Auditivas/crescimento & desenvolvimento , Evolução Biológica , Cóclea/embriologia , Cóclea/crescimento & desenvolvimento , Cóclea/fisiologia , Ontologia Genética , Células Ciliadas Auditivas/citologia , Células Ciliadas Auditivas/fisiologia , Transtornos da Audição/genética , Humanos , Canais Iônicos/genética , Canais Iônicos/fisiologia , Proteínas do Tecido Nervoso/genética , Proteínas do Tecido Nervoso/fisiologia , Rombencéfalo/embriologia , Rombencéfalo/crescimento & desenvolvimento , Rombencéfalo/fisiologia , Células Receptoras Sensoriais/fisiologia , Fatores de Transcrição/genética , Fatores de Transcrição/fisiologia
7.
Nature ; 578(7795): 413-418, 2020 02.
Artigo em Inglês | MEDLINE | ID: mdl-32051589

RESUMO

The mammalian claustrum, owing to its widespread connectivity with other forebrain structures, has been hypothesized to mediate functions that range from decision-making to consciousness1. Here we report that a homologue of the claustrum, identified by single-cell transcriptomics and viral tracing of connectivity, also exists in a reptile-the Australian bearded dragon Pogona vitticeps. In Pogona, the claustrum underlies the generation of sharp waves during slow-wave sleep. The sharp waves, together with superimposed high-frequency ripples2, propagate to the entire neighbouring pallial dorsal ventricular ridge (DVR). Unilateral or bilateral lesions of the claustrum suppress the production of sharp-wave ripples during slow-wave sleep in a unilateral or bilateral manner, respectively, but do not affect the regular and rapidly alternating sleep rhythm that is characteristic of sleep in this species3. The claustrum is thus not involved in the generation of the sleep rhythm itself. Tract tracing revealed that the reptilian claustrum projects widely to a variety of forebrain areas, including the cortex, and that it receives converging inputs from, among others, areas of the mid- and hindbrain that are known to be involved in wake-sleep control in mammals4-6. Periodically modulating the concentration of serotonin in the claustrum, for example, caused a matching modulation of sharp-wave production there and in the neighbouring DVR. Using transcriptomic approaches, we also identified a claustrum in the turtle Trachemys scripta, a distant reptilian relative of lizards. The claustrum is therefore an ancient structure that was probably already present in the brain of the common vertebrate ancestor of reptiles and mammals. It may have an important role in the control of brain states owing to the ascending input it receives from the mid- and hindbrain, its widespread projections to the forebrain and its role in sharp-wave generation during slow-wave sleep.


Assuntos
Claustrum/anatomia & histologia , Claustrum/fisiologia , Lagartos/anatomia & histologia , Lagartos/fisiologia , Sono/fisiologia , Animais , Claustrum/citologia , Claustrum/lesões , Masculino , Mamíferos/fisiologia , Mesencéfalo/citologia , Mesencéfalo/fisiologia , Vias Neurais , RNA-Seq , Rombencéfalo/citologia , Rombencéfalo/fisiologia , Serotonina/metabolismo , Análise de Célula Única , Transcriptoma , Tartarugas/anatomia & histologia , Tartarugas/fisiologia
8.
Development ; 148(15)2021 08 01.
Artigo em Inglês | MEDLINE | ID: mdl-34323269

RESUMO

During early development, the hindbrain is sub-divided into rhombomeres that underlie the organisation of neurons and adjacent craniofacial tissues. A gene regulatory network of signals and transcription factors establish and pattern segments with a distinct anteroposterior identity. Initially, the borders of segmental gene expression are imprecise, but then become sharply defined, and specialised boundary cells form. In this Review, we summarise key aspects of the conserved regulatory cascade that underlies the formation of hindbrain segments. We describe how the pattern is sharpened and stabilised through the dynamic regulation of cell identity, acting in parallel with cell segregation. Finally, we discuss evidence that boundary cells have roles in local patterning, and act as a site of neurogenesis within the hindbrain.


Assuntos
Padronização Corporal/fisiologia , Rombencéfalo/crescimento & desenvolvimento , Rombencéfalo/fisiologia , Vertebrados/crescimento & desenvolvimento , Vertebrados/fisiologia , Animais , Regulação da Expressão Gênica no Desenvolvimento/fisiologia , Redes Reguladoras de Genes/fisiologia , Humanos
9.
Nat Rev Neurosci ; 19(4): 185-196, 2018 04.
Artigo em Inglês | MEDLINE | ID: mdl-29467468

RESUMO

The CNS regulates body weight; however, we still lack a clear understanding of what drives decisions about when, how much and what to eat. A vast array of peripheral signals provides information to the CNS regarding fluctuations in energy status. The CNS then integrates this information to influence acute feeding behaviour and long-term energy homeostasis. Previous paradigms have delegated the control of long-term energy homeostasis to the hypothalamus and short-term changes in feeding behaviour to the hindbrain. However, recent studies have identified target hindbrain neurocircuitry that integrates the orchestration of individual bouts of ingestion with the long-term regulation of energy balance.


Assuntos
Encéfalo/fisiologia , Metabolismo Energético , Comportamento Alimentar/fisiologia , Homeostase , Sistema Nervoso Periférico/fisiologia , Animais , Derivação Gástrica , Humanos , Hipotálamo/fisiologia , Vias Neurais/fisiologia , Neurônios/fisiologia , Obesidade/fisiopatologia , Obesidade/terapia , Rombencéfalo/fisiologia
10.
Proc Natl Acad Sci U S A ; 117(32): 19544-19555, 2020 08 11.
Artigo em Inglês | MEDLINE | ID: mdl-32747566

RESUMO

Corresponding attributes of neural development and function suggest arthropod and vertebrate brains may have an evolutionarily conserved organization. However, the underlying mechanisms have remained elusive. Here, we identify a gene regulatory and character identity network defining the deutocerebral-tritocerebral boundary (DTB) in Drosophila This network comprises genes homologous to those directing midbrain-hindbrain boundary (MHB) formation in vertebrates and their closest chordate relatives. Genetic tracing reveals that the embryonic DTB gives rise to adult midbrain circuits that in flies control auditory and vestibular information processing and motor coordination, as do MHB-derived circuits in vertebrates. DTB-specific gene expression and function are directed by cis-regulatory elements of developmental control genes that include homologs of mammalian Zinc finger of the cerebellum and Purkinje cell protein 4Drosophila DTB-specific cis-regulatory elements correspond to regulatory sequences of human ENGRAILED-2, PAX-2, and DACHSHUND-1 that direct MHB-specific expression in the embryonic mouse brain. We show that cis-regulatory elements and the gene networks they regulate direct the formation and function of midbrain circuits for balance and motor coordination in insects and mammals. Regulatory mechanisms mediating the genetic specification of cephalic neural circuits in arthropods correspond to those in chordates, thereby implying their origin before the divergence of deuterostomes and ecdysozoans.


Assuntos
Evolução Molecular , Redes Reguladoras de Genes , Mesencéfalo/fisiologia , Animais , Comportamento Animal , Encéfalo/embriologia , Encéfalo/metabolismo , Encéfalo/fisiologia , Drosophila , Fator 8 de Crescimento de Fibroblasto/genética , Fator 8 de Crescimento de Fibroblasto/metabolismo , Regulação da Expressão Gênica no Desenvolvimento , Humanos , Mesencéfalo/embriologia , Mesencéfalo/metabolismo , Camundongos , Proteínas do Tecido Nervoso/genética , Proteínas do Tecido Nervoso/metabolismo , Vias Neurais , Fatores de Transcrição Box Pareados/genética , Fatores de Transcrição Box Pareados/metabolismo , Sequências Reguladoras de Ácido Nucleico , Rombencéfalo/embriologia , Rombencéfalo/metabolismo , Rombencéfalo/fisiologia , Transdução de Sinais
11.
PLoS Comput Biol ; 17(12): e1009654, 2021 12.
Artigo em Inglês | MEDLINE | ID: mdl-34898604

RESUMO

How does the brain process sensory stimuli, and decide whether to initiate locomotor behaviour? To investigate this question we develop two whole body computer models of a tadpole. The "Central Nervous System" (CNS) model uses evidence from whole-cell recording to define 2300 neurons in 12 classes to study how sensory signals from the skin initiate and stop swimming. In response to skin stimulation, it generates realistic sensory pathway spiking and shows how hindbrain sensory memory populations on each side can compete to initiate reticulospinal neuron firing and start swimming. The 3-D "Virtual Tadpole" (VT) biomechanical model with realistic muscle innervation, body flexion, body-water interaction, and movement is then used to evaluate if motor nerve outputs from the CNS model can produce swimming-like movements in a volume of "water". We find that the whole tadpole VT model generates reliable and realistic swimming. Combining these two models opens new perspectives for experiments.


Assuntos
Anuros/fisiologia , Tomada de Decisões/fisiologia , Larva/fisiologia , Modelos Neurológicos , Natação/fisiologia , Animais , Fenômenos Biomecânicos/fisiologia , Biologia Computacional , Técnicas de Patch-Clamp , Rombencéfalo/fisiologia
12.
J Neurosci ; 40(1): 22-36, 2020 01 02.
Artigo em Inglês | MEDLINE | ID: mdl-31896561

RESUMO

In many species, vocal communication is essential for coordinating social behaviors including courtship, mating, parenting, rivalry, and alarm signaling. Effective communication requires accurate production, detection, and classification of signals, as well as selection of socially appropriate responses. Understanding how signals are generated and how acoustic signals are perceived is key to understanding the neurobiology of social behaviors. Here we review our long-standing research program focused on Xenopus, a frog genus which has provided valuable insights into the mechanisms and evolution of vertebrate social behaviors. In Xenopus laevis, vocal signals differ between the sexes, through development, and across the genus, reflecting evolutionary divergence in sensory and motor circuits that can be interrogated mechanistically. Using two ex vivo preparations, the isolated brain and vocal organ, we have identified essential components of the vocal production system: the sexually differentiated larynx at the periphery, and the hindbrain vocal central pattern generator (CPG) centrally, that produce sex- and species-characteristic sound pulse frequencies and temporal patterns, respectively. Within the hindbrain, we have described how intrinsic membrane properties of neurons in the vocal CPG generate species-specific vocal patterns, how vocal nuclei are connected to generate vocal patterns, as well as the roles of neurotransmitters and neuromodulators in activating the circuit. For sensorimotor integration, we identified a key forebrain node that links auditory and vocal production circuits to match socially appropriate vocal responses to acoustic features of male and female calls. The availability of a well supported phylogeny as well as reference genomes from several species now support analysis of the genetic architecture and the evolutionary divergence of neural circuits for vocal communication. Xenopus thus provides a vertebrate model in which to study vocal communication at many levels, from physiology, to behavior, and from development to evolution. As one of the most comprehensively studied phylogenetic groups within vertebrate vocal communication systems, Xenopus provides insights that can inform social communication across phyla.


Assuntos
Comunicação Animal , Rede Nervosa/fisiologia , Rombencéfalo/fisiologia , Vocalização Animal/fisiologia , Xenopus laevis/fisiologia , Estimulação Acústica , Animais , Cartilagem Aritenoide/fisiologia , Evolução Biológica , Geradores de Padrão Central/fisiologia , Feminino , Hormônios Esteroides Gonadais/fisiologia , Técnicas In Vitro , Músculos Laríngeos/fisiologia , Nervos Laríngeos/fisiologia , Masculino , Bulbo/fisiologia , Neurotransmissores/fisiologia , Caracteres Sexuais , Comportamento Sexual Animal/fisiologia , Comportamento Social , Especificidade da Espécie
13.
J Neurophysiol ; 126(5): 1814-1830, 2021 11 01.
Artigo em Inglês | MEDLINE | ID: mdl-34705593

RESUMO

Xenopus laevis has a lateral line mechanosensory system throughout its full life cycle, and a previous study on prefeeding stage tadpoles revealed that it may play a role in motor responses to both water suction and water jets. Here, we investigated the physiology of the anterior lateral line system in newly hatched tadpoles and the motor outputs induced by its activation in response to brief suction stimuli. High-speed videoing showed tadpoles tended to turn and swim away when strong suction was applied close to the head. The lateral line neuromasts were revealed by using DASPEI staining, and their inactivation with neomycin eliminated tadpole motor responses to suction. In immobilized preparations, suction or electrically stimulating the anterior lateral line nerve reliably initiated swimming but the motor nerve discharges implicating turning was observed only occasionally. The same stimulation applied during ongoing fictive swimming produced a halting response. The anterior lateral line nerve showed spontaneous afferent discharges at rest and increased activity during stimulation. Efferent activities were only recorded during tadpole fictive swimming and were largely synchronous with the ipsilateral motor nerve discharges. Finally, calcium imaging identified neurons with fluorescence increase time-locked with suction stimulation in the hindbrain and midbrain. A cluster of neurons at the entry point of the anterior lateral line nerve in the dorsolateral hindbrain had the shortest latency in their responses, supporting their potential sensory interneuron identity. Future studies need to reveal how the lateral line sensory information is processed by the central circuit to determine tadpole motor behavior.NEW & NOTEWORTHY We studied Xenopus tadpole motor responses to anterior lateral line stimulation using high-speed videos, electrophysiology and calcium imaging. Activating the lateral line reliably started swimming. At high stimulation intensities, turning was observed behaviorally but suitable motor nerve discharges were seen only occasionally in immobilized tadpoles. Suction applied during swimming produced a halting response. We analyzed afferent and efferent activities of the tadpole anterior lateral line nerve and located sensory interneurons using calcium imaging.


Assuntos
Larva/fisiologia , Sistema da Linha Lateral/fisiologia , Atividade Motora/fisiologia , Rombencéfalo/fisiologia , Animais , Comportamento Animal/fisiologia , Interneurônios/fisiologia , Larva/crescimento & desenvolvimento , Neurônios Aferentes/fisiologia , Neurônios Eferentes/fisiologia , Xenopus laevis
14.
J Neurophysiol ; 125(4): 993-1005, 2021 04 01.
Artigo em Inglês | MEDLINE | ID: mdl-33566745

RESUMO

Swallow is a primitive behavior regulated by medullary networks, responsible for movement of food/liquid from the oral cavity to the esophagus. To investigate how functionally heterogeneous networks along the medullary intermediate reticular formation (IRt) and ventral respiratory column (VRC) control swallow, we electrically stimulated the nucleus tractus solitarius to induce fictive swallow between inspiratory bursts, with concurrent optical recordings using a synthetic Ca2+ indicator in the neonatal sagittally sectioned rat hindbrain (SSRH) preparation. Simultaneous recordings from hypoglossal nerve rootlet (XIIn) and ventral cervical spinal root C1-C2 enabled identification of the system-level correlates of 1) swallow (identified as activation of the XIIn but not the cervical root) and 2) Breuer-Hering expiratory reflex (BHE; lengthened expiration in response to stimuli during expiration). Optical recording revealed reconfiguration of respiration-modulated networks in the ventrolateral medulla during swallow and the BHE reflex. Recordings identified novel spatially compact networks in the IRt near the facial nucleus (VIIn) that were active during fictive swallow, suggesting that the swallow network is not restricted to the caudal medulla. These findings also establish the utility of using this in vitro preparation to investigate how functionally heterogeneous medullary networks interact and reconfigure to enable a repertoire of orofacial behaviors.NEW & NOTEWORTHY For the first time, medullary networks that control breathing and swallow are recorded optically. Episodic swallows are induced via electrical stimulation along the dorsal medulla, in and near the NTS, during spontaneously occurring fictive respiration. These findings establish that networks regulating both orofacial behaviors and breathing are accessible for optical recording at the surface of the sagittally sectioned rodent hindbrain preparation.


Assuntos
Geradores de Padrão Central/fisiologia , Deglutição/fisiologia , Respiração , Formação Reticular/fisiologia , Rombencéfalo/fisiologia , Animais , Animais Recém-Nascidos , Estimulação Elétrica , Bulbo/fisiologia , Imagem Óptica , Ratos , Ratos Sprague-Dawley
15.
Nutr Neurosci ; 24(9): 688-696, 2021 Sep.
Artigo em Inglês | MEDLINE | ID: mdl-31581905

RESUMO

Objectives: Dried bonito dashi, a traditional Japanese fish broth made from dried bonito tuna, enhances food palatability due to its specific umami flavor characteristics. However, the pattern of brain activation following dashi ingestion has not been previously investigated.Methods: We mapped activation sites of the rat brain after intragastric loads of dried bonito dashi by measuring neuronal levels of the Fos protein, a functional marker of neuronal activation.Results: Compared to intragastric saline, intragastric dashi administration produced enhanced Fos expression in four forebrain regions: the medial preoptic area, subfornical organ, habenular nucleus, and central nucleus of the amygdala. Interestingly, the medial preoptic area was found to be the only feeding-related hypothalamic area responsive to dashi administration. Moreover, dashi had no effect in the nucleus accumbens and ventral tegmental area, two connected sites known to be activated by highly palatable sugars and fats. In the hindbrain, dashi administration produced enhanced Fos expression in both visceral sensory (caudal nucleus of the solitary tract, dorsal part of the lateral parabrachial nucleus, and area postrema) and autonomic (rostral ventrolateral medulla, and caudal ventrolateral medulla) sites.Discussion: The results demonstrate the activation of discrete forebrain and hindbrain regions following intragastric loads of dried bonito dashi. Our data suggest that the gut-brain axis is the principal mediator of the postingestive effects associated with the ingestion of dashi.


Assuntos
Eixo Encéfalo-Intestino/fisiologia , Encéfalo/fisiologia , Produtos Pesqueiros , Proteínas Proto-Oncogênicas c-fos/análise , Atum , Animais , Química Encefálica , Alimentos em Conserva , Expressão Gênica , Masculino , Prosencéfalo/fisiologia , Proteínas Proto-Oncogênicas c-fos/genética , Ratos , Ratos Sprague-Dawley , Rombencéfalo/fisiologia , Soluções/administração & dosagem
16.
J Neurosci ; 39(7): 1182-1194, 2019 02 13.
Artigo em Inglês | MEDLINE | ID: mdl-30578342

RESUMO

During many behaviors in vertebrates, the CNS generates asymmetric activities between the left and right sides to produce asymmetric body movements. For asymmetrical activations of the CNS, reciprocal inhibition between the left and right sides is believed to play a key role. However, the complexity of the CNS makes it difficult to identify the reciprocal inhibition circuits at the level of individual cells and the contribution of each neuron to the asymmetric activity. Using larval zebrafish, we examined this issue by investigating reciprocal inhibition circuits between a pair of Mauthner (M) cells, giant reticulospinal neurons that trigger fast escapes. Previous studies have shown that a class of excitatory neurons, called cranial relay neurons, is involved in the reciprocal inhibition pathway between the M cells. Using transgenic fish, in which two of the cranial relay neurons (Ta1 and Ta2) expressed GFP, we showed that Ta1 and Ta2 constitute major parts of the pathway. In larvae in which Ta1/Ta2 were laser-ablated, the amplitude of the reciprocal IPSPs dropped to less than one-third. Calcium imaging and electrophysiological recording showed that the occurrence probability of bilateral M-cell activation upon sound/vibration stimuli was greatly increased in the Ta1/Ta2-ablated larvae. Behavioral experiments revealed that the Ta1/Ta2 ablation resulted in shallower body bends during sound/vibration-evoked escapes, which is consistent with the observation that increased occurrence of bilateral M-cell activation impaired escape performance. Our study revealed major components of the reciprocal inhibition circuits in the M cell system and the behavioral importance of the circuits.SIGNIFICANCE STATEMENT Reciprocal inhibition between the left and right side of the CNS is considered imperative for producing asymmetric movements in animals. It has been difficult, however, to identify the circuits at the individual cell level and their role in behavior. Here, we address this problem by examining the reciprocal inhibition circuits of the hindbrain Mauthner (M) cell system in larval zebrafish. We determined that two paired interneurons play a critical role in the reciprocal inhibition between the paired M cells and that the reciprocal inhibition prevents bilateral firing of the M cells and is thus necessary for the full body bend during M cell-initiated escape. Further, we discussed the cooperation of multiple reciprocal inhibitions working in the hindbrain and spinal cord to ensure high-performance escapes.


Assuntos
Reação de Fuga/fisiologia , Vias Neurais/citologia , Vias Neurais/fisiologia , Neurônios/fisiologia , Rombencéfalo/citologia , Rombencéfalo/fisiologia , Medula Espinal/citologia , Medula Espinal/fisiologia , Peixe-Zebra/fisiologia , Estimulação Acústica , Animais , Animais Geneticamente Modificados , Potenciais Pós-Sinápticos Excitadores/fisiologia , Interneurônios/fisiologia , Larva , Desempenho Psicomotor/fisiologia
17.
J Anat ; 237(5): 861-869, 2020 11.
Artigo em Inglês | MEDLINE | ID: mdl-32648601

RESUMO

Neuroanatomical reconstructions of extinct animals have long been recognized as powerful proxies for palaeoecology, yet our understanding of the endocranial anatomy of dromaeosaur theropod dinosaurs is still incomplete. Here, we used X-ray computed microtomography (µCT) to reconstruct and describe the endocranial anatomy, including the endosseous labyrinth of the inner ear, of the small-bodied dromaeosaur, Velociraptor mongoliensis. The anatomy of the cranial endocast and ear were compared with non-avian theropods, modern birds, and other extant archosaurs to establish trends in agility, balance, and hearing thresholds in order to reconstruct the trophic ecology of the taxon. Our results indicate that V. mongoliensis could detect a wide and high range of sound frequencies (2,368-3,965 Hz), was agile, and could likely track prey items with ease. When viewed in conjunction with fossils that suggest scavenging-like behaviours in V. mongoliensis, a complex trophic ecology that mirrors modern predators becomes apparent. These data suggest that V. mongoliensis was an active predator that would likely scavenge depending on the age and health of the individual or during prolonged climatic events such as droughts.


Assuntos
Dinossauros/anatomia & histologia , Orelha Interna/anatomia & histologia , Comportamento Predatório/fisiologia , Rombencéfalo/anatomia & histologia , Animais , Dinossauros/fisiologia , Orelha Interna/fisiologia , Fósseis/anatomia & histologia , Percepção/fisiologia , Rombencéfalo/fisiologia
18.
BMC Biol ; 17(1): 110, 2019 12 29.
Artigo em Inglês | MEDLINE | ID: mdl-31884959

RESUMO

BACKGROUND: The oculomotor integrator (OI) in the vertebrate hindbrain transforms eye velocity input into persistent position coding output, which plays a crucial role in retinal image stability. For a mechanistic understanding of the integrator function and eye position control, knowledge about the tuning of the OI and other oculomotor nuclei is needed. Zebrafish are increasingly used to study integrator function and sensorimotor circuits, yet the precise neuronal tuning to motor variables remains uncharacterized. RESULTS: Here, we recorded cellular calcium signals while evoking monocular and binocular optokinetic eye movements at different slow-phase eye velocities. Our analysis reveals the anatomical distributions of motoneurons and internuclear neurons in the nucleus abducens as well as those of oculomotor neurons in caudally adjacent hindbrain volumes. Each neuron is tuned to eye position and/or velocity to variable extents and is only activated after surpassing particular eye position and velocity thresholds. While the abducens (rhombomeres 5/6) mainly codes for eye position, in rhombomeres 7/8, a velocity-to-position coding gradient exists along the rostro-caudal axis, which likely corresponds to the oculomotor structures storing velocity and position, and is in agreement with a feedforward mechanism of persistent activity generation. Position encoding neurons are recruited at eye position thresholds distributed across the behaviourally relevant dynamic range, while velocity-encoding neurons have more centred firing thresholds for velocity. In the abducens, neurons coding exclusively for one eye intermingle with neurons coding for both eyes. Many of these binocular neurons are preferentially active during conjugate eye movements and less active during monocular eye movements. This differential recruitment during monocular versus conjugate tasks represents a functional diversification in the final common motor pathway. CONCLUSIONS: We localized and functionally characterized the repertoire of oculomotor neurons in the zebrafish hindbrain. Our findings provide evidence for a mixed but task-specific binocular code and suggest that generation of persistent activity is organized along the rostro-caudal axis in the hindbrain.


Assuntos
Movimentos Oculares/fisiologia , Rombencéfalo/fisiologia , Visão Binocular , Peixe-Zebra/fisiologia , Animais
19.
J Neurosci ; 38(23): 5325-5337, 2018 06 06.
Artigo em Inglês | MEDLINE | ID: mdl-29875228

RESUMO

To identify mechanisms of behavioral evolution, we investigated the hindbrain circuit that generates distinct vocal patterns in two closely related frog species. Male Xenopus laevis and Xenopus petersii produce courtship calls that include a fast trill: trains of ∼60 Hz sound pulses. Although fast trill rates are similar, X. laevis fast trills have a longer duration and period than those of X. petersii To pinpoint the neural basis of these differences, we used whole-cell patch-clamp recordings in a key premotor hindbrain nucleus (the Xenopus parabrachial area, PBX) in ex vivo brains that produce fictive vocalizations, vocal nerve activity corresponding to advertisement call patterns. We found two populations of PBX neurons with distinct properties: fast trill neurons (FTNs) and early vocal neurons (EVNs). FTNs, but not EVNs, appear to be intrinsically tuned to produce each species' call patterns because: (1) X. laevis FTNs generate longer and slower depolarizations than X. petersii FTNs during their respective fictive vocalizations, (2) current steps in FTNs induce burst durations that are significantly longer in X. laevis than X. petersii, and (3) synaptically isolated FTNs oscillate in response to NMDA in a species-specific manner: longer and slower in X. laevis than in X. petersii Therefore, divergence of premotor neuron membrane properties is a strong candidate for generating vocal differences between species.SIGNIFICANCE STATEMENT The vertebrate hindbrain includes multiple neural circuits that generate rhythmic behaviors including vocalizations. Male African clawed frogs produce courtship calls that are unique to each species and differ in temporal patterns. Here, we identified two functional subtypes of neurons located in the parabrachial nucleus: a hindbrain region implicated in vocal and respiratory control across vertebrates. One of these neuronal subtypes exhibits distinct properties across species that can account for the evolutionary divergence of song patterns. Our results suggest that changes to this group of neurons during evolution may have had a major role in establishing novel behaviors in closely related species.


Assuntos
Evolução Biológica , Neurônios/fisiologia , Rombencéfalo/fisiologia , Vocalização Animal/fisiologia , Animais , Masculino , Especificidade da Espécie , Xenopus
20.
Dev Biol ; 444 Suppl 1: S14-S24, 2018 12 01.
Artigo em Inglês | MEDLINE | ID: mdl-29447907

RESUMO

Wilhelm His (1831-1904) provided lasting insights into the development of the central and peripheral nervous system using innovative technologies such as the microtome, which he invented. 150 years after his resurrection of the classical germ layer theory of Wolff, von Baer and Remak, his description of the developmental origin of cranial and spinal ganglia from a distinct cell population, now known as the neural crest, has stood the test of time and more recently sparked tremendous advances regarding the molecular development of these important cells. In addition to his 1868 treatise on 'Zwischenstrang' (now neural crest), his work on the development of the human hindbrain published in 1890 provided novel ideas that more than 100 years later form the basis for penetrating molecular investigations of the regionalization of the hindbrain neural tube and of the migration and differentiation of its constituent neuron populations. In the first part of this review we briefly summarize the major discoveries of Wilhelm His and his impact on the field of embryology. In the second part we relate His' observations to current knowledge about the molecular underpinnings of hindbrain development and evolution. We conclude with the proposition, present already in rudimentary form in the writings of His, that a primordial spinal cord-like organization has been molecularly supplemented to generate hindbrain 'neomorphs' such as the cerebellum and the auditory and vestibular nuclei and their associated afferents and sensory organs.


Assuntos
Crista Neural/citologia , Rombencéfalo/citologia , Rombencéfalo/embriologia , Animais , Evolução Biológica , Padronização Corporal , Diferenciação Celular , Cerebelo , Gânglios Espinais , Camadas Germinativas , História do Século XVII , História do Século XVIII , Humanos , Crista Neural/embriologia , Tubo Neural , Neurônios , Organogênese , Rombencéfalo/fisiologia
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