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1.
Nature ; 627(8003): 374-381, 2024 Mar.
Artigo em Inglês | MEDLINE | ID: mdl-38326616

RESUMO

Memory encodes past experiences, thereby enabling future plans. The basolateral amygdala is a centre of salience networks that underlie emotional experiences and thus has a key role in long-term fear memory formation1. Here we used spatial and single-cell transcriptomics to illuminate the cellular and molecular architecture of the role of the basolateral amygdala in long-term memory. We identified transcriptional signatures in subpopulations of neurons and astrocytes that were memory-specific and persisted for weeks. These transcriptional signatures implicate neuropeptide and BDNF signalling, MAPK and CREB activation, ubiquitination pathways, and synaptic connectivity as key components of long-term memory. Notably, upon long-term memory formation, a neuronal subpopulation defined by increased Penk and decreased Tac expression constituted the most prominent component of the memory engram of the basolateral amygdala. These transcriptional changes were observed both with single-cell RNA sequencing and with single-molecule spatial transcriptomics in intact slices, thereby providing a rich spatial map of a memory engram. The spatial data enabled us to determine that this neuronal subpopulation interacts with adjacent astrocytes, and functional experiments show that neurons require interactions with astrocytes to encode long-term memory.


Assuntos
Astrócitos , Comunicação Celular , Perfilação da Expressão Gênica , Memória de Longo Prazo , Neurônios , Astrócitos/citologia , Astrócitos/metabolismo , Astrócitos/fisiologia , Complexo Nuclear Basolateral da Amígdala/citologia , Complexo Nuclear Basolateral da Amígdala/metabolismo , Complexo Nuclear Basolateral da Amígdala/fisiologia , Fator Neurotrófico Derivado do Encéfalo/metabolismo , Proteína de Ligação ao Elemento de Resposta ao AMP Cíclico/metabolismo , Memória de Longo Prazo/fisiologia , Proteínas Quinases Ativadas por Mitógeno/metabolismo , Neurônios/citologia , Neurônios/metabolismo , Neurônios/fisiologia , Análise de Sequência de RNA , Imagem Individual de Molécula , Análise da Expressão Gênica de Célula Única , Ubiquitinação
2.
Front Neural Circuits ; 17: 1167825, 2023.
Artigo em Inglês | MEDLINE | ID: mdl-37180762

RESUMO

Introduction: Threatening environmental cues often generate enduring fear memories, but how these are formed and stored remains actively investigated. Recall of a recent fear memory is thought to reflect reactivation of neurons, in multiple brain regions, activated during memory formation, indicating that anatomically distributed and interconnected neuronal ensembles comprise fear memory engrams. The extent to which anatomically specific activation-reactivation engrams persist during long-term fear memory recall, however, remains largely unexplored. We hypothesized that principal neurons in the anterior basolateral amygdala (aBLA), which encode negative valence, acutely reactivate during remote fear memory recall to drive fear behavior. Methods: Using adult offspring of TRAP2 and Ai14 mice, persistent tdTomato expression was used to "TRAP" aBLA neurons that underwent Fos-activation during contextual fear conditioning (electric shocks) or context only conditioning (no shocks) (n = 5/group). Three weeks later, mice were re-exposed to the same context cues for remote memory recall, then sacrificed for Fos immunohistochemistry. Results: TRAPed (tdTomato +), Fos +, and reactivated (double-labeled) neuronal ensembles were larger in fear- than context-conditioned mice, with the middle sub-region and middle/caudal dorsomedial quadrants of aBLA displaying the greatest densities of all three ensemble populations. Whereas tdTomato + ensembles were dominantly glutamatergic in context and fear groups, freezing behavior during remote memory recall was not correlated with ensemble sizes in either group. Discussion: We conclude that although an aBLA-inclusive fear memory engram forms and persists at a remote time point, plasticity impacting electrophysiological responses of engram neurons, not their population size, encodes fear memory and drives behavioral manifestations of long-term fear memory recall.


Assuntos
Complexo Nuclear Basolateral da Amígdala , Medo , Memória de Longo Prazo , Complexo Nuclear Basolateral da Amígdala/citologia , Complexo Nuclear Basolateral da Amígdala/fisiologia , Neurônios/fisiologia , Medo/fisiologia , Memória de Longo Prazo/fisiologia , Animais , Camundongos , Camundongos Transgênicos , Condicionamento Operante , Rememoração Mental/fisiologia , Proteínas Proto-Oncogênicas c-fos/genética , Técnicas de Introdução de Genes
3.
Nature ; 608(7923): 586-592, 2022 08.
Artigo em Inglês | MEDLINE | ID: mdl-35859170

RESUMO

The ability to associate temporally segregated information and assign positive or negative valence to environmental cues is paramount for survival. Studies have shown that different projections from the basolateral amygdala (BLA) are potentiated following reward or punishment learning1-7. However, we do not yet understand how valence-specific information is routed to the BLA neurons with the appropriate downstream projections, nor do we understand how to reconcile the sub-second timescales of synaptic plasticity8-11 with the longer timescales separating the predictive cues from their outcomes. Here we demonstrate that neurotensin (NT)-expressing neurons in the paraventricular nucleus of the thalamus (PVT) projecting to the BLA (PVT-BLA:NT) mediate valence assignment by exerting NT concentration-dependent modulation in BLA during associative learning. We found that optogenetic activation of the PVT-BLA:NT projection promotes reward learning, whereas PVT-BLA projection-specific knockout of the NT gene (Nts) augments punishment learning. Using genetically encoded calcium and NT sensors, we further revealed that both calcium dynamics within the PVT-BLA:NT projection and NT concentrations in the BLA are enhanced after reward learning and reduced after punishment learning. Finally, we showed that CRISPR-mediated knockout of the Nts gene in the PVT-BLA pathway blunts BLA neural dynamics and attenuates the preference for active behavioural strategies to reward and punishment predictive cues. In sum, we have identified NT as a neuropeptide that signals valence in the BLA, and showed that NT is a critical neuromodulator that orchestrates positive and negative valence assignment in amygdala neurons by extending valence-specific plasticity to behaviourally relevant timescales.


Assuntos
Complexo Nuclear Basolateral da Amígdala , Aprendizagem , Vias Neurais , Neurotensina , Punição , Recompensa , Complexo Nuclear Basolateral da Amígdala/citologia , Complexo Nuclear Basolateral da Amígdala/fisiologia , Cálcio/metabolismo , Sinais (Psicologia) , Plasticidade Neuronal , Neurotensina/metabolismo , Optogenética , Núcleos Talâmicos/citologia , Núcleos Talâmicos/fisiologia
4.
Biochem Biophys Res Commun ; 584: 39-45, 2021 12 20.
Artigo em Inglês | MEDLINE | ID: mdl-34768080

RESUMO

The lateral amygdala (LA) is a main sensory input site from the cortical and thalamic regions. In turn, LA glutamatergic pyramidal neurons strongly project to the basal amygdala (BA). Although it is well known that auditory fear conditioning involves synaptic potentiation in the LA, it is not clear whether the LA-BA synaptic transmission is modified upon auditory fear conditioning. Here we found that high-frequency stimulation ex vivo resulted in long-term potentiation (LTP) with a concomitant enhancement of neurotransmitter release at LA-BA synapses. Auditory fear conditioning also led to the presynaptic facilitation at LA-BA synapses. Meanwhile, AMPA/NMDA current ratio was not changed upon fear conditioning, excluding the involvement of postsynaptic mechanism. Notably, fear conditioning occluded electrically induced ex vivo LTP in the LA-BA pathway, indicating that the conditioning and electrically induced LTP share common mechanisms. Our findings suggest that the presynaptic potentiation of LA-BA synapses may be involved in fear conditioning.


Assuntos
Complexo Nuclear Basolateral da Amígdala/fisiologia , Condicionamento Clássico/fisiologia , Medo/fisiologia , Neurotransmissores/metabolismo , Sinapses/fisiologia , Estimulação Acústica , Tonsila do Cerebelo/metabolismo , Tonsila do Cerebelo/fisiologia , Animais , Complexo Nuclear Basolateral da Amígdala/citologia , Complexo Nuclear Basolateral da Amígdala/metabolismo , Potenciação de Longa Duração/fisiologia , Masculino , Neurônios/citologia , Neurônios/metabolismo , Neurônios/fisiologia , Ratos Sprague-Dawley , Receptores de AMPA/metabolismo , Receptores de AMPA/fisiologia , Sinapses/metabolismo , Transmissão Sináptica/fisiologia
5.
Psychoneuroendocrinology ; 133: 105394, 2021 11.
Artigo em Inglês | MEDLINE | ID: mdl-34474197

RESUMO

Preclinical models of organismal response to traumatic stress (threat of death or serious injury) can be monitored using neuroendocrine, behavioral, and structural metrics. While many rodent models of traumatic stress have provided a glimpse into select components of the physiological response to acute and chronic stressors, few studies have directly examined the potential differences between stressors and their potential outcomes. To address this gap, we conducted a multi-level comparison of the immediate and longer-term effects of two types of acute traumatic stressors. Adult male rats were exposed to either underwater trauma (UWT), predator exposure (PE), or control procedural handling conditions. Over the next 7 days, yoked cohorts underwent either serial blood sampling for neuroendocrine evaluation across the circadian cycle, or repeated behavioral testing in the elevated plus maze. In addition, a subset of brains from the latter cohort were assessed for dendritic spine changes in the prefrontal cortex and basolateral amygdala. We observed stressor-dependent patterns of response and recovery across all measures, with divergence between endocrine responses despite similar behavioral outcomes. These results demonstrate that different stressors elicit unique behavioral, neuroendocrine, and neuro-structural response profiles and suggest that specific stress models can be used to model desired responses for specific preclinical applications, such as evaluations of underlying mechanisms or therapeutic candidates.


Assuntos
Comportamento Animal , Neurônios , Sistemas Neurossecretores , Trauma Psicológico , Estresse Psicológico , Animais , Complexo Nuclear Basolateral da Amígdala/citologia , Ritmo Circadiano , Dendritos , Masculino , Comportamento Predatório , Córtex Pré-Frontal/citologia , Ratos
6.
Nat Commun ; 12(1): 2859, 2021 05 17.
Artigo em Inglês | MEDLINE | ID: mdl-34001873

RESUMO

The basolateral amygdalar complex (BLA) is implicated in behaviors ranging from fear acquisition to addiction. Optogenetic methods have enabled the association of circuit-specific functions to uniquely connected BLA cell types. Thus, a systematic and detailed connectivity profile of BLA projection neurons to inform granular, cell type-specific interrogations is warranted. Here, we apply machine-learning based computational and informatics analysis techniques to the results of circuit-tracing experiments to create a foundational, comprehensive BLA connectivity map. The analyses identify three distinct domains within the anterior BLA (BLAa) that house target-specific projection neurons with distinguishable morphological features. We identify brain-wide targets of projection neurons in the three BLAa domains, as well as in the posterior BLA, ventral BLA, posterior basomedial, and lateral amygdalar nuclei. Inputs to each nucleus also are identified via retrograde tracing. The data suggests that connectionally unique, domain-specific BLAa neurons are associated with distinct behavior networks.


Assuntos
Potenciais de Ação/fisiologia , Complexo Nuclear Basolateral da Amígdala/fisiologia , Medo/fisiologia , Rede Nervosa/fisiologia , Neurônios/fisiologia , Algoritmos , Animais , Complexo Nuclear Basolateral da Amígdala/citologia , Medo/psicologia , Feminino , Masculino , Camundongos Endogâmicos C57BL , Modelos Neurológicos , Rede Nervosa/citologia , Optogenética/métodos
7.
J Comp Neurol ; 529(13): 3292-3312, 2021 09.
Artigo em Inglês | MEDLINE | ID: mdl-33960421

RESUMO

Cortical pyramidal neurons (PNs) containing nonphosphorylated neurofilaments (NNFs) localized with the SMI-32 monoclonal antibody have been shown to be especially vulnerable to degeneration in Alzheimer's disease (AD). The present investigation is the first to study the expression of SMI-32+ NNFs in neurons of the basolateral nuclear complex of the amygdala (BNC), which contains cortex-like PNs and nonpyramidal neurons (NPNs). We observed that PNs in the rat basolateral nucleus (BL), but not in the lateral (LAT) or basomedial (BM) nuclei, have significant levels of SMI-32-ir in their somata with antibody diluents that did not contain Triton X-100, but staining in these cells was greatly attenuated when the antibody diluent contained 0.3% Triton. Using Triton-containing diluents, we found that all SMI-32+ neurons in all three of the BNC nuclei were NPNs. Using a dual-labeling immunoperoxidase technique, we demonstrated that most of these SMI-32+ NPNs were parvalbumin-positive (PV+) or somatostatin-positive NPNs but not vasoactive intestinal peptide-positive or neuropeptide Y-positive NPNs. Using a technique that combines retrograde tracing with SMI-32 immunohistochemistry using intermediate levels of Triton in the diluent, we found that all BNC neurons projecting to the mediodorsal thalamic nucleus (MD) were large NPNs, and most were SMI-32+. In contrast, BNC neurons projecting to the ventral striatum or cerebral cortex were PNs that expressed low levels of SMI-32 immunoreactivity (SMI-32-ir) in the BL, and no SMI-32-ir in the LAT or BM. These data suggest that the main neuronal subpopulations in the BNC that degenerate in AD may be PV+ and MD-projecting NPNs.


Assuntos
Complexo Nuclear Basolateral da Amígdala/citologia , Complexo Nuclear Basolateral da Amígdala/metabolismo , Filamentos Intermediários/metabolismo , Neurônios/metabolismo , Animais , Complexo Nuclear Basolateral da Amígdala/química , Filamentos Intermediários/química , Masculino , Neurônios/química , Fosforilação/fisiologia , Células Piramidais/química , Células Piramidais/metabolismo , Ratos , Ratos Sprague-Dawley
8.
Elife ; 102021 05 21.
Artigo em Inglês | MEDLINE | ID: mdl-34018924

RESUMO

Taste palatability is centrally involved in consumption decisions-we ingest foods that taste good and reject those that don't. Gustatory cortex (GC) and basolateral amygdala (BLA) almost certainly work together to mediate palatability-driven behavior, but the precise nature of their interplay during taste decision-making is still unknown. To probe this issue, we discretely perturbed (with optogenetics) activity in rats' BLA→GC axons during taste deliveries. This perturbation strongly altered GC taste responses, but while the perturbation itself was tonic (2.5 s), the alterations were not-changes preferentially aligned with the onset times of previously-described taste response epochs, and reduced evidence of palatability-related activity in the 'late-epoch' of the responses without reducing the amount of taste identity information available in the 'middle epoch.' Finally, BLA→GC perturbations changed behavior-linked taste response dynamics themselves, distinctively diminishing the abruptness of ensemble transitions into the late epoch. These results suggest that BLA 'organizes' behavior-related GC taste dynamics.


Assuntos
Complexo Nuclear Basolateral da Amígdala/fisiologia , Comportamento Animal , Córtex Cerebral/fisiologia , Neurônios/fisiologia , Percepção Gustatória , Paladar , Potenciais de Ação , Animais , Complexo Nuclear Basolateral da Amígdala/citologia , Córtex Cerebral/citologia , Feminino , Cadeias de Markov , Modelos Neurológicos , Vias Neurais/fisiologia , Optogenética , Ratos Long-Evans
9.
J Comp Neurol ; 529(11): 3062-3075, 2021 08 01.
Artigo em Inglês | MEDLINE | ID: mdl-33797073

RESUMO

The basolateral amygdala (BLA), a region critical for emotional processing, is the limbic hub that is connected with various brain regions. BLA neurons are classified into different subtypes that exhibit differential projection patterns and mediate distinct emotional behaviors; however, little is known about their presynaptic input patterns. In this study, we employed projection-specific monosynaptic rabies virus tracing to identify the direct monosynaptic inputs to BLA subtypes. We found that each neuronal subtype receives long-range projection input from specific brain regions. In contrast to their specific axonal projection patterns, all BLA neuronal subtypes exhibited relatively similar input patterns. This anatomical organization supports the idea that the BLA is a central integrator that associates sensory information in different modalities with valence and sends associative information to behaviorally relevant brain regions.


Assuntos
Complexo Nuclear Basolateral da Amígdala/fisiologia , Mapeamento Encefálico/métodos , Neurônios/fisiologia , Terminações Pré-Sinápticas/fisiologia , Animais , Complexo Nuclear Basolateral da Amígdala/química , Complexo Nuclear Basolateral da Amígdala/citologia , Células HEK293 , Humanos , Masculino , Camundongos , Camundongos Endogâmicos C57BL , Neurônios/química , Terminações Pré-Sinápticas/química
10.
J Neurosci ; 41(21): 4575-4595, 2021 05 26.
Artigo em Inglês | MEDLINE | ID: mdl-33837051

RESUMO

GABAergic neurons are key circuit elements in cortical networks. Despite growing evidence showing that inhibitory cells play a critical role in the lateral (LA) and basal (BA) amygdala functions, neither the number of GABAergic neurons nor the ratio of their distinct types has been determined in these amygdalar nuclei. Using unbiased stereology, we found that the ratio of GABAergic neurons in the BA (22%) is significantly higher than in the LA (16%) in both male and female mice. No difference was observed between the right and left hemispheres in either sex. In addition, we assessed the ratio of the major inhibitory cell types in both amygdalar nuclei. Using transgenic mice and a viral strategy for visualizing inhibitory cells combined with immunocytochemistry, we estimated that the following cell types together compose the vast majority of GABAergic cells in the LA and BA: axo-axonic cells (5.5%-6%), basket cells expressing parvalbumin (17%-20%) or cholecystokinin (7%-9%), dendrite-targeting inhibitory cells expressing somatostatin (10%-16%), NPY-containing neurogliaform cells (14%-15%), VIP and/or calretinin-expressing interneuron-selective interneurons (29%-38%), and GABAergic projection neurons expressing somatostatin and neuronal nitric oxide synthase (5.5%-8%). Our results show that these amygdalar nuclei contain all major GABAergic neuron types as found in other cortical regions. Furthermore, our data offer an essential reference for future studies aiming to reveal changes in GABAergic cell number and in inhibitory cell types typically observed under different pathologic conditions, and to model functioning amygdalar networks in health and disease.SIGNIFICANCE STATEMENT GABAergic cells in cortical structures, as in the lateral and basal nucleus of the amygdala, have a determinant role in controlling circuit operation. In this study, we provide the first estimate for the total number of inhibitory cells in these two amygdalar nuclei. In addition, our study is the first to define the ratio of the major GABAergic cell types present in these cortical networks. Taking into account that hyperexcitability in the amygdala, arising from the imbalance between excitation and inhibition typifies many altered brain functions, including anxiety, post-traumatic stress disorder, schizophrenia, and autism, uncovering the number and ratio of distinct amygdalar inhibitory cell types offers a solid base for comparing the changes in inhibition in pathologic brain states.


Assuntos
Complexo Nuclear Basolateral da Amígdala/citologia , Neurônios GABAérgicos/citologia , Animais , Feminino , Masculino , Camundongos , Camundongos Transgênicos
11.
Behav Brain Res ; 406: 113243, 2021 05 21.
Artigo em Inglês | MEDLINE | ID: mdl-33727049

RESUMO

In this study, apical dendritic spine density of neurons in hippocampal, amygdalar and prefrontal cortical areas was compared in rats that were repeatedly winning or losing social conflicts. Territorial male wild-type Groningen (WTG) rats were allowed multiple daily attacks (>20 times) on intruder males in the resident-intruder paradigm. Frequent winning experiences are known to facilitate uncontrolled aggressive behavior reflected in aggressive attacks on anesthetized males which was also observed in the winners in this study. Both winners and losers were socially housed during the experiments; winners with females to stimulate territorial behavior, and losers with two other losing male rats. Twenty-four hours after the last social encounter, brains from experienced residential winners and repeatedly defeated intruder rats were collected and neuronal morphology in selected brain regions was studied via Golgi-Cox staining. Results indicate that spine density in the apical dendrites of the hippocampal CA1 reduced similarly in both winners and losers. In addition, winners showed increased spine densities at the proximal segments (20-30 µm) of the basolateral amygdala neurons and losers tended to show a decreased spine density at the more proximal segments of the infralimbic region of prefrontal cortex neurons. No effect of winning and losing was observed in the medial amygdala. The atrophic effect of repeated defeats in hippocampal and prefrontal regions was anticipated despite the fact that social housing of the repeatedly losing intruder males may have played a protective role. The reduction of hippocampal spine density in the winners seems surprising but supports previous findings in hierarchical dominant males in rat colonies. The dominants showed even greater shrinkage of the apical dendritic arbors of hippocampal CA3 pyramidal neurons compared to the stressed subordinates.


Assuntos
Comportamento Animal/fisiologia , Região CA1 Hipocampal , Comportamento Competitivo , Espinhas Dendríticas , Plasticidade Neuronal/fisiologia , Células Piramidais , Predomínio Social , Animais , Complexo Nuclear Basolateral da Amígdala/citologia , Complexo Nuclear Basolateral da Amígdala/patologia , Complexo Nuclear Basolateral da Amígdala/fisiologia , Região CA1 Hipocampal/citologia , Região CA1 Hipocampal/patologia , Região CA1 Hipocampal/fisiologia , Espinhas Dendríticas/patologia , Espinhas Dendríticas/fisiologia , Masculino , Córtex Pré-Frontal/citologia , Córtex Pré-Frontal/patologia , Córtex Pré-Frontal/fisiologia , Células Piramidais/patologia , Células Piramidais/fisiologia , Ratos
12.
Behav Brain Res ; 397: 112940, 2021 01 15.
Artigo em Inglês | MEDLINE | ID: mdl-33126115

RESUMO

There are large individual differences in the way animals, including humans, behaviorally and physiologically cope with environmental challenges and opportunities. Rodents with either a proactive or reactive coping style not only differ in their capacity to adapt successfully to environmental conditions, but also have a differential susceptibility to develop stress-related (psycho)pathologies when coping fails. In this study, we explored if there are structural neuronal differences in spine density in brain regions important for the regulation of stress coping styles. For this, the individual coping styles of wild-type Groningen (WTG) rats were determined using their level of offensive aggressiveness assessed in the resident-intruder paradigm. Subsequently, brains from proactive (high-aggressive) and reactive (low-aggressive) rats were Golgi-cox stained for spine quantification. The results reveal that dendritic spine densities in the dorsal hippocampal CA1 region and basolateral amygdala are similar in rats with proactive and reactive coping styles. Interestingly, however, dendritic spine density in the medial amygdala (MeA) is strikingly reduced in the proactive coping rats. This brain region is reported to be strongly involved in rivalry aggression which is the criterion by which the coping styles in our study are dissociated. The possibility that structural differences in spine density in the MeA are involved in other behavioral traits of distinct coping styles needs further investigation.


Assuntos
Adaptação Psicológica/fisiologia , Agressão/fisiologia , Comportamento Animal/fisiologia , Comportamento Competitivo/fisiologia , Complexo Nuclear Corticomedial/citologia , Complexo Nuclear Corticomedial/fisiologia , Espinhas Dendríticas/fisiologia , Animais , Complexo Nuclear Basolateral da Amígdala/citologia , Complexo Nuclear Basolateral da Amígdala/fisiologia , Região CA1 Hipocampal/citologia , Região CA1 Hipocampal/fisiologia , Masculino , Ratos
13.
Curr Biol ; 30(22): 4541-4546.e5, 2020 11 16.
Artigo em Inglês | MEDLINE | ID: mdl-33007245

RESUMO

In mammalian species, the capacity for goal-directed action relies on a process of cognitive-emotional integration, which melds the causal and incentive learning processes that link action-goal associations with the current value of the goal [1]. Recent evidence suggests that such integration depends on a cortical-limbic-striatal circuit centered on the posterior dorsomedial striatum (pDMS) [2]. Learning-related plasticity has been described at both classes of principal neuron in the pDMS, the direct (dSPNs) and indirect (iSPNs) pathway spiny projection neurons [3-5], and is thought to depend on inputs from prelimbic cortex (PL) [6] and the basolateral amygdala (BLA) [7]. Nevertheless, the relative contribution of these structures to the cellular changes associated with goal-directed learning has not been assessed, nor is it known whether any plasticity specific to the PL and BLA inputs to the pDMS is localized to dSPNs, iSPNs, or both cell types. Here, by combining instrumental conditioning with circuit-specific manipulations and ex vivo optogenetics in mice, we discovered that the PL and not the BLA input to pDMS is pivotal for goal-directed learning and that plasticity in the PL-pDMS pathway was bilateral and specific to dSPNs in the pDMS. Subsequent experiments revealed the BLA is critically but indirectly involved in striatal plasticity via its input to the PL; inactivation of the BLA projection to PL blocked goal-directed learning and prevented learning-related plasticity at dSPNs in pDMS.


Assuntos
Complexo Nuclear Basolateral da Amígdala/fisiologia , Corpo Estriado/fisiologia , Aprendizagem/fisiologia , Córtex Pré-Frontal/fisiologia , Animais , Complexo Nuclear Basolateral da Amígdala/citologia , Condicionamento Operante , Corpo Estriado/citologia , Feminino , Objetivos , Masculino , Camundongos , Modelos Animais , Vias Neurais/fisiologia , Plasticidade Neuronal/fisiologia , Neurônios/fisiologia , Optogenética , Córtex Pré-Frontal/citologia
14.
Curr Biol ; 30(23): 4789-4798.e4, 2020 12 07.
Artigo em Inglês | MEDLINE | ID: mdl-33035479

RESUMO

Water intake is crucial for maintaining body fluid homeostasis and animals' survival [1-4]. In the brain, complex processes trigger thirst and drinking behavior [1-5]. The anterior wall of the third ventricle formed by the subfornical organ (SFO), the median preoptic nucleus, and the organum vasculosum of the lamina terminalis (OVLT) constitute the primary structures sensing thirst signals and modulating water intake [6-10]. These subcortical regions are connected with the neocortex [11]. In particular, insular and anterior cingulate cortices (IC and ACC, respectively) have been shown to receive indirect innervations from the SFO and OVLT in rats [11] and to be involved in the control of water intake [12-15]. Type-1 cannabinoid receptors (CB1) modulate consummatory behaviors, such as feeding [16-26]. However, the role of CB1 receptors in the control of water intake is still a matter of debate [27-31]. Here, we show that endogenous activation of CB1 in cortical glutamatergic neurons of the ACC promotes water intake. Notably, presynaptic CB1 receptors of ACC glutamatergic neurons are abundantly located in the basolateral amygdala (BLA), a key area in the regulation of water intake. The selective expression of CB1 receptors in the ACC-to-BLA-projecting neurons is sufficient to stimulate drinking behavior. Moreover, chemogenetic stimulation of these projecting neurons suppresses drinking behavior, further supporting the role of this neuronal population in the control of water intake. Altogether, these data reveal a novel cortico-amygdalar mechanism involved in the regulation of drinking behavior.


Assuntos
Complexo Nuclear Basolateral da Amígdala/fisiologia , Ingestão de Líquidos/fisiologia , Giro do Cíngulo/fisiologia , Receptor CB1 de Canabinoide/metabolismo , Animais , Complexo Nuclear Basolateral da Amígdala/citologia , Genes Reporter , Giro do Cíngulo/citologia , Masculino , Camundongos , Camundongos Transgênicos , Modelos Animais , Vias Neurais/fisiologia , Neurônios/metabolismo , Sede/fisiologia
15.
Biochem Biophys Res Commun ; 533(4): 657-664, 2020 12 17.
Artigo em Inglês | MEDLINE | ID: mdl-33019977

RESUMO

Chronic exposure to stressors can disrupt normal brain function and induce anxiety-like behavior and neurobiological alterations in the basolateral amygdala (BLA). Here, we showed that unpredictable chronic mild stress (UCMS) induced anxiety-like behavior, lowered glutamatergic neuronal activity and reactive astrocytes in the BLA. Using optogenetic tools, we found that activation of BLA glutamatergic neurons did not rescue anxiety-like behavior in stressed mice. In contrast, however, optogenetic activation of the BLA astrocytes relieved stress-induced anxiety, and, interestingly, chronic optogenetic manipulation fully restored the UCMS-induced behavioral and neurobiological dysfunctions, including anxiety-like behavior, lower c-Fos expression in the BLA, S100 overexpression in the BLA, and higher serum corticosterone concentration. Thus, our findings suggest that chronic manipulation of BLA astrocytes is a potential therapeutic intervention target for pathological anxiety.


Assuntos
Ansiedade/fisiopatologia , Astrócitos/efeitos da radiação , Complexo Nuclear Basolateral da Amígdala/efeitos da radiação , Neurônios/fisiologia , Optogenética/métodos , Estresse Psicológico/fisiopatologia , Animais , Astrócitos/metabolismo , Complexo Nuclear Basolateral da Amígdala/citologia , Complexo Nuclear Basolateral da Amígdala/metabolismo , Complexo Nuclear Basolateral da Amígdala/patologia , Corticosterona/sangue , Camundongos , Proteínas Proto-Oncogênicas c-fos/metabolismo , Proteínas S100/metabolismo
16.
Elife ; 92020 08 11.
Artigo em Inglês | MEDLINE | ID: mdl-32779566

RESUMO

Conditioned taste aversion (CTA) is a form of one-trial learning dependent on basolateral amygdala projection neurons (BLApn). Its underlying cellular and molecular mechanisms remain poorly understood. RNAseq from BLApn identified changes in multiple candidate learning-related transcripts including the expected immediate early gene Fos and Stk11, a master kinase of the AMP-related kinase pathway with important roles in growth, metabolism and development, but not previously implicated in learning. Deletion of Stk11 in BLApn blocked memory prior to training, but not following it and increased neuronal excitability. Conversely, BLApn had reduced excitability following CTA. BLApn knockout of a second learning-related gene, Fos, also increased excitability and impaired learning. Independently increasing BLApn excitability chemogenetically during CTA also impaired memory. STK11 and C-FOS activation were independent of one another. These data suggest key roles for Stk11 and Fos in CTA long-term memory formation, dependent at least partly through convergent action on BLApn intrinsic excitability.


Assuntos
Complexo Nuclear Basolateral da Amígdala , Condicionamento Clássico/fisiologia , Memória de Longo Prazo/fisiologia , Proteínas Serina-Treonina Quinases , Proteínas Proto-Oncogênicas c-fos , Proteínas Quinases Ativadas por AMP , Animais , Complexo Nuclear Basolateral da Amígdala/química , Complexo Nuclear Basolateral da Amígdala/citologia , Complexo Nuclear Basolateral da Amígdala/metabolismo , Feminino , Técnicas de Inativação de Genes , Masculino , Camundongos , Neurônios/química , Neurônios/metabolismo , Proteínas Serina-Treonina Quinases/genética , Proteínas Serina-Treonina Quinases/metabolismo , Proteínas Proto-Oncogênicas c-fos/genética , Proteínas Proto-Oncogênicas c-fos/metabolismo , Paladar/fisiologia
17.
Commun Biol ; 3(1): 139, 2020 03 20.
Artigo em Inglês | MEDLINE | ID: mdl-32198461

RESUMO

Findings have shown that anterior insular cortex (aIC) lesions disrupt the maintenance of drug addiction, while imaging studies suggest that connections between amygdala and aIC participate in drug-seeking. However, the role of the BLA â†’ aIC pathway in rewarding contextual memory has not been assessed. Using a cre-recombinase under the tyrosine hydroxylase (TH+) promoter mouse model to induce a real-time conditioned place preference (rtCPP), we show that photoactivation of TH+ neurons induced electrophysiological responses in VTA neurons, dopamine release and neuronal modulation in the aIC. Conversely, memory retrieval induced a strong release of glutamate, dopamine, and norepinephrine in the aIC. Only intra-aIC blockade of the glutamatergic N-methyl-D-aspartate receptor accelerated rtCPP extinction. Finally, photoinhibition of glutamatergic BLA → aIC pathway produced disinhibition of local circuits in the aIC, accelerating rtCPP extinction and impairing reinstatement. Thus, activity of the glutamatergic projection from the BLA to the aIC is critical for maintenance of rewarding contextual memory.


Assuntos
Complexo Nuclear Basolateral da Amígdala/metabolismo , Comportamento Animal , Córtex Cerebral/metabolismo , Ácido Glutâmico/metabolismo , Memória , Vias Neurais/metabolismo , Recompensa , Neurônios Adrenérgicos/metabolismo , Animais , Complexo Nuclear Basolateral da Amígdala/citologia , Córtex Cerebral/citologia , Condicionamento Psicológico , Dopamina/metabolismo , Neurônios Dopaminérgicos/metabolismo , Extinção Psicológica , Feminino , Integrases/genética , Integrases/metabolismo , Masculino , Camundongos Endogâmicos C57BL , Camundongos Transgênicos , Inibição Neural , Vias Neurais/citologia , Norepinefrina/metabolismo , Tirosina 3-Mono-Oxigenase/genética
18.
Brain Struct Funct ; 225(3): 909-923, 2020 Apr.
Artigo em Inglês | MEDLINE | ID: mdl-32144495

RESUMO

Amygdala plays crucial roles in emotional learning. The lateral amygdala (LA) is the input station of the amygdala, where learning related plasticity occurs. The LA is cortical like in nature in terms of its cellular make up, composed of a majority of principal cells and a minority of interneurons with distinct subtypes defined by morphology, intrinsic electrophysiological properties and neurochemical expression profile. The specific functions served by LA interneuron subtypes remain elusive. This study aimed to elucidate the interneuron subtype mediating feedback inhibition. Electrophysiological evidence involving antidromic activation of recurrent LA circuitry via basolateral amygdala stimulation and paired recordings implicate low-threshold spiking interneurons in feedback inhibition. Recordings in somatostatin-cre animals crossed with tdtomato mice have revealed remarkable similarities between a subset of SOM+ interneurons and LTS interneurons. This study concludes that LTS interneurons, most of which are putatively SOM+, mediate feedback inhibition in the LA. Parallels with cortical areas and potential implications for information processing and plasticity are discussed.


Assuntos
Potenciais de Ação , Complexo Nuclear Basolateral da Amígdala/fisiologia , Interneurônios/fisiologia , Animais , Complexo Nuclear Basolateral da Amígdala/citologia , Complexo Nuclear Basolateral da Amígdala/metabolismo , Interneurônios/citologia , Interneurônios/metabolismo , Masculino , Glicoproteínas de Membrana , Parvalbuminas/análise , Receptores de Interleucina-1 , Somatostatina/análise
19.
J Comp Neurol ; 528(5): 772-786, 2020 04 01.
Artigo em Inglês | MEDLINE | ID: mdl-31600841

RESUMO

Nonpyramidal GABAergic interneurons in the basolateral nuclear complex (BNC) of the amygdala are critical for the regulation of emotion. Remarkably, there have been no Golgi studies of these neurons in nonhuman primates. Therefore, in the present study we investigated the morphology of nonpyramidal neurons (NPNs) in the BNC of the baboon and monkey using the Golgi technique. NPNs were scattered throughout all nuclei of the BNC and had aspiny or spine-sparse dendrites. NPNs were morphologically heterogeneous and could be divided into small, medium, large, and giant types based on the size of their somata. NPNs could be further divided on the basis of their somatodendritic morphology into four types: multipolar, bitufted, bipolar, and irregular. NPN axons, when stained, formed dense local arborizations that overlapped their dendritic fields to varying extents. These axons always exhibited varying numbers of varicosities representing axon terminals. Three specialized NPN subtypes were recognized because of their unique anatomical features: axo-axonic cells, neurogliaform cells, and giant cells. The axons of axo-axonic cells formed "axonal cartridges," with clustered varicosities that contacted the axon initial segments of pyramidal neurons (PNs). Neurogliaform cells had small somata and numerous short dendrites that formed a dense dendritic arborization; they also exhibited a very dense axonal arborization that overlapped the dendritic field. Giant cells had very large irregular somata and long, thick dendrites; their distal dendrites often branched extensively and had long appendages. In general, the NPNs of the baboon and monkey BNC, including the specialized subtypes, were similar to those of rodents.


Assuntos
Complexo Nuclear Basolateral da Amígdala/citologia , Neurônios GABAérgicos/citologia , Macaca fascicularis/anatomia & histologia , Papio/anatomia & histologia , Coloração e Rotulagem/métodos , Animais , Masculino
20.
Behav Brain Res ; 379: 112336, 2020 02 03.
Artigo em Inglês | MEDLINE | ID: mdl-31689442

RESUMO

In the central nervous system, certain neurons store zinc within the synaptic vesicles of their axon terminals. This vesicular zinc can then be released in an activity-dependent fashion as an intercellular signal. The functions of vesicular zinc are not entirely understood, but evidence suggests that it is important for some forms of experience-dependent plasticity in the brain. The ability of neurons to store and release vesicular zinc is dependent on expression of the vesicular zinc transporter, ZnT3. Here, we examined the neuronal morphology of mice that lack ZnT3. Brains were collected from mice housed under standard laboratory conditions and from mice housed in enriched environments - large, multilevel enclosures with running wheels, numerous objects and tunnels, and a greater number of cage mates. Golgi-Cox staining was used to visualize neurons for analysis of dendritic length and dendritic spine density. Neurons were analyzed from the barrel cortex, striatum, basolateral amygdala, and hippocampus (CA1). ZnT3 knockout mice, relative to wild type mice, exhibited increased basal dendritic length in the layer 2/3 pyramidal neurons of barrel cortex, independently of housing condition. Environmental enrichment decreased apical dendritic length in these same neurons and increased dendritic spine density on striatal medium spiny neurons. Elimination of ZnT3 did not modulate any of the effects of enrichment. Our results provide no evidence that vesicular zinc is required for the experience-dependent changes that occur in response to environmental enrichment. They are consistent, however, with recent reports suggesting increased cortical volume in ZnT3 knockout mice.


Assuntos
Proteínas de Transporte de Cátions/fisiologia , Corpo Estriado , Espinhas Dendríticas/ultraestrutura , Córtex Somatossensorial , Vesículas Sinápticas/metabolismo , Zinco/metabolismo , Animais , Complexo Nuclear Basolateral da Amígdala/citologia , Complexo Nuclear Basolateral da Amígdala/metabolismo , Região CA1 Hipocampal/citologia , Região CA1 Hipocampal/metabolismo , Proteínas de Transporte de Cátions/deficiência , Corpo Estriado/citologia , Corpo Estriado/metabolismo , Meio Ambiente , Feminino , Abrigo para Animais , Camundongos Endogâmicos C57BL , Camundongos Knockout , Córtex Somatossensorial/citologia , Córtex Somatossensorial/metabolismo
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