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1.
Nature ; 621(7979): 543-549, 2023 Sep.
Artigo em Inglês | MEDLINE | ID: mdl-37558873

RESUMO

External rewards such as food and money are potent modifiers of behaviour1,2. Pioneering studies established that these salient sensory stimuli briefly interrupt the tonic discharge of neurons that produce the neuromodulators dopamine (DA) and acetylcholine (ACh): midbrain DA neurons (DANs) fire a burst of action potentials that broadly elevates DA in the striatum3,4 at the same time that striatal cholinergic interneurons (CINs) produce a characteristic pause in firing5,6. These phasic responses are thought to create unique, temporally limited conditions that motivate action and promote learning7-11. However, the dynamics of DA and ACh outside explicitly rewarded situations remain poorly understood. Here we show that extracellular DA and ACh levels fluctuate spontaneously and periodically at a frequency of approximately 2 Hz in the dorsal striatum of mice and maintain the same temporal relationship relative to one another as that evoked by reward. We show that this neuromodulatory coordination does not arise from direct interactions between DA and ACh within the striatum. Instead, we provide evidence that periodic fluctuations in striatal DA are inherited from midbrain DANs, while striatal ACh transients are driven by glutamatergic inputs, which act to locally synchronize the spiking of CINs. Together, our findings show that striatal neuromodulatory dynamics are autonomously organized by distributed extra-striatal afferents. The dominance of intrinsic rhythms in DA and ACh offers new insights for explaining how reward-associated neural dynamics emerge and how the brain motivates action and promotes learning from within.


Assuntos
Acetilcolina , Corpo Estriado , Dopamina , Animais , Camundongos , Acetilcolina/metabolismo , Potenciais de Ação , Corpo Estriado/citologia , Corpo Estriado/metabolismo , Dopamina/metabolismo , Neurônios Dopaminérgicos/metabolismo , Glutamina/metabolismo , Interneurônios/metabolismo , Motivação , Neostriado/citologia , Neostriado/metabolismo , Recompensa , Vias Aferentes
2.
Nature ; 621(7979): 577-585, 2023 Sep.
Artigo em Inglês | MEDLINE | ID: mdl-37557915

RESUMO

Striatal dopamine and acetylcholine are essential for the selection and reinforcement of motor actions and decision-making1. In vitro studies have revealed an intrastriatal circuit in which acetylcholine, released by cholinergic interneurons (CINs), drives the release of dopamine, and dopamine, in turn, inhibits the activity of CINs through dopamine D2 receptors (D2Rs). Whether and how this circuit contributes to striatal function in vivo is largely unknown. Here, to define the role of this circuit in a living system, we monitored acetylcholine and dopamine signals in the ventrolateral striatum of mice performing a reward-based decision-making task. We establish that dopamine and acetylcholine exhibit multiphasic and anticorrelated transients that are modulated by decision history and reward outcome. Dopamine dynamics and reward encoding do not require the release of acetylcholine by CINs. However, dopamine inhibits acetylcholine transients in a D2R-dependent manner, and loss of this regulation impairs decision-making. To determine how other striatal inputs shape acetylcholine signals, we assessed the contribution of cortical and thalamic projections, and found that glutamate release from both sources is required for acetylcholine release. Altogether, we uncover a dynamic relationship between dopamine and acetylcholine during decision-making, and reveal multiple modes of CIN regulation. These findings deepen our understanding of the neurochemical basis of decision-making and behaviour.


Assuntos
Acetilcolina , Corpo Estriado , Tomada de Decisões , Dopamina , Ácido Glutâmico , Animais , Camundongos , Acetilcolina/metabolismo , Corpo Estriado/citologia , Corpo Estriado/metabolismo , Dopamina/metabolismo , Ácido Glutâmico/metabolismo , Neostriado/citologia , Neostriado/metabolismo , Tomada de Decisões/fisiologia , Recompensa , Receptores de Dopamina D2/metabolismo , Neurônios Colinérgicos/metabolismo , Vias Neurais
3.
Nature ; 619(7970): 606-615, 2023 Jul.
Artigo em Inglês | MEDLINE | ID: mdl-37438521

RESUMO

The specific loss of midbrain dopamine neurons (mDANs) causes major motor dysfunction in Parkinson's disease, which makes cell replacement a promising therapeutic approach1-4. However, poor survival of grafted mDANs remains an obstacle to successful clinical outcomes5-8. Here we show that the surgical procedure itself (referred to here as 'needle trauma') triggers a profound host response that is characterized by acute neuroinflammation, robust infiltration of peripheral immune cells and brain cell death. When midbrain dopamine (mDA) cells derived from human induced pluripotent stem (iPS) cells were transplanted into the rodent striatum, less than 10% of implanted tyrosine hydroxylase (TH)+ mDANs survived at two weeks after transplantation. By contrast, TH- grafted cells mostly survived. Notably, transplantation of autologous regulatory T (Treg) cells greatly modified the response to needle trauma, suppressing acute neuroinflammation and immune cell infiltration. Furthermore, intra-striatal co-transplantation of Treg cells and human-iPS-cell-derived mDA cells significantly protected grafted mDANs from needle-trauma-associated death and improved therapeutic outcomes in rodent models of Parkinson's disease with 6-hydroxydopamine lesions. Co-transplantation with Treg cells also suppressed the undesirable proliferation of TH- grafted cells, resulting in more compact grafts with a higher proportion and higher absolute numbers of TH+ neurons. Together, these data emphasize the importance of the initial inflammatory response to surgical injury in the differential survival of cellular components of the graft, and suggest that co-transplanting autologous Treg cells effectively reduces the needle-trauma-induced death of mDANs, providing a potential strategy to achieve better clinical outcomes for cell therapy in Parkinson's disease.


Assuntos
Terapia Baseada em Transplante de Células e Tecidos , Neurônios Dopaminérgicos , Sobrevivência de Enxerto , Doenças Neuroinflamatórias , Doença de Parkinson , Linfócitos T Reguladores , Tirosina 3-Mono-Oxigenase , Humanos , Dopamina/análogos & derivados , Dopamina/metabolismo , Neurônios Dopaminérgicos/imunologia , Neurônios Dopaminérgicos/metabolismo , Neurônios Dopaminérgicos/transplante , Mesencéfalo/patologia , Doenças Neuroinflamatórias/etiologia , Doenças Neuroinflamatórias/imunologia , Doenças Neuroinflamatórias/prevenção & controle , Doenças Neuroinflamatórias/terapia , Doença de Parkinson/complicações , Doença de Parkinson/patologia , Doença de Parkinson/cirurgia , Doença de Parkinson/terapia , Tirosina 3-Mono-Oxigenase/deficiência , Tirosina 3-Mono-Oxigenase/metabolismo , Linfócitos T Reguladores/imunologia , Linfócitos T Reguladores/transplante , Terapia Baseada em Transplante de Células e Tecidos/métodos , Animais , Camundongos , Ratos , Oxidopamina/metabolismo , Sobrevivência de Enxerto/imunologia , Morte Celular , Células-Tronco Pluripotentes Induzidas/citologia , Células-Tronco Pluripotentes Induzidas/imunologia , Células-Tronco Pluripotentes Induzidas/metabolismo , Células-Tronco Pluripotentes Induzidas/transplante , Neostriado/metabolismo , Fatores de Tempo , Proliferação de Células , Resultado do Tratamento
4.
Nature ; 611(7934): 124-132, 2022 11.
Artigo em Inglês | MEDLINE | ID: mdl-36261520

RESUMO

Chronic stress can have lasting adverse consequences in some individuals, yet others are resilient to the same stressor1,2. Susceptible and resilient individuals exhibit differences in the intrinsic properties of mesolimbic dopamine (DA) neurons after the stressful experience is over3-8. However, the causal links between DA, behaviour during stress and individual differences in resilience are unknown. Here we recorded behaviour in mice simultaneously with DA neuron activity in projections to the nucleus accumbens (NAc) (which signals reward9-12) and the tail striatum (TS) (which signals threat13-16) during social defeat. Supervised and unsupervised behavioural quantification revealed that during stress, resilient and susceptible mice use different behavioural strategies and have distinct activity patterns in DA terminals in the NAc (but not the TS). Neurally, resilient mice have greater activity near the aggressor, including at the onset of fighting back. Conversely, susceptible mice have greater activity at the offset of attacks and onset of fleeing. We also performed optogenetic stimulation of NAc-projecting DA neurons in open loop (randomly timed) during defeat or timed to specific behaviours using real-time behavioural classification. Both open-loop and fighting-back-timed activation promoted resilience and reorganized behaviour during defeat towards resilience-associated patterns. Together, these data provide a link between DA neural activity, resilience and resilience-associated behaviour during the experience of stress.


Assuntos
Dopamina , Neurônios Dopaminérgicos , Resiliência Psicológica , Animais , Camundongos , Dopamina/metabolismo , Neurônios Dopaminérgicos/fisiologia , Camundongos Endogâmicos C57BL , Núcleo Accumbens/fisiologia , Recompensa , Estresse Psicológico , Optogenética , Neostriado/metabolismo , Comportamento Animal
5.
Nature ; 610(7931): 327-334, 2022 10.
Artigo em Inglês | MEDLINE | ID: mdl-36171283

RESUMO

Recent studies suggested that microglia, the primary brain immune cells, can affect circuit connectivity and neuronal function1,2. Microglia infiltrate the neuroepithelium early in embryonic development and are maintained in the brain throughout adulthood3,4. Several maternal environmental factors-such as an aberrant microbiome, immune activation and poor nutrition-can influence prenatal brain development5,6. Nevertheless, it is unknown how changes in the prenatal environment instruct the developmental trajectory of infiltrating microglia, which in turn affect brain development and function. Here we show that, after maternal immune activation (MIA) in mice, microglia from the offspring have a long-lived decrease in immune reactivity (blunting) across the developmental trajectory. The blunted immune response was accompanied by changes in chromatin accessibility and reduced transcription factor occupancy of the open chromatin. Single-cell RNA-sequencing analysis revealed that MIA does not induce a distinct subpopulation but, rather, decreases the contribution to inflammatory microglia states. Prenatal replacement of microglia from MIA offspring with physiological infiltration of naive microglia ameliorated the immune blunting and restored a decrease in presynaptic vesicle release probability onto dopamine receptor type-two medium spiny neurons, indicating that aberrantly formed microglia due to an adverse prenatal environment affect the long-term microglia reactivity and proper striatal circuit development.


Assuntos
Inflamação , Microglia , Mães , Vias Neurais , Efeitos Tardios da Exposição Pré-Natal , Animais , Cromatina/genética , Cromatina/metabolismo , Feminino , Inflamação/imunologia , Inflamação/patologia , Camundongos , Microglia/imunologia , Microglia/patologia , Neostriado/citologia , Vias Neurais/patologia , Neurônios/patologia , Gravidez , Efeitos Tardios da Exposição Pré-Natal/genética , Efeitos Tardios da Exposição Pré-Natal/imunologia , RNA-Seq , Receptores Dopaminérgicos/metabolismo , Análise de Célula Única , Fatores de Transcrição/metabolismo
6.
PLoS Biol ; 22(1): e3002483, 2024 Jan.
Artigo em Inglês | MEDLINE | ID: mdl-38295323

RESUMO

Synaptic transmission mediated by GABAA receptors (GABAARs) in adult, principal striatal spiny projection neurons (SPNs) can suppress ongoing spiking, but its effect on synaptic integration at subthreshold membrane potentials is less well characterized, particularly those near the resting down-state. To fill this gap, a combination of molecular, optogenetic, optical, and electrophysiological approaches were used to study SPNs in mouse ex vivo brain slices, and computational tools were used to model somatodendritic synaptic integration. In perforated patch recordings, activation of GABAARs, either by uncaging of GABA or by optogenetic stimulation of GABAergic synapses, evoked currents with a reversal potential near -60 mV in both juvenile and adult SPNs. Transcriptomic analysis and pharmacological work suggested that this relatively positive GABAAR reversal potential was not attributable to NKCC1 expression, but rather to HCO3- permeability. Regardless, from down-state potentials, optogenetic activation of dendritic GABAergic synapses depolarized SPNs. This GABAAR-mediated depolarization summed with trailing ionotropic glutamate receptor (iGluR) stimulation, promoting dendritic spikes and increasing somatic depolarization. Simulations revealed that a diffuse dendritic GABAergic input to SPNs effectively enhanced the response to dendritic iGluR signaling and promoted dendritic spikes. Taken together, our results demonstrate that GABAARs can work in concert with iGluRs to excite adult SPNs when they are in the resting down-state, suggesting that their inhibitory role is limited to brief periods near spike threshold. This state-dependence calls for a reformulation for the role of intrastriatal GABAergic circuits.


Assuntos
Interneurônios , Receptores de GABA-A , Camundongos , Animais , Corpo Estriado/fisiologia , Neostriado , Transmissão Sináptica/fisiologia , Neurônios GABAérgicos/fisiologia
7.
Nature ; 600(7888): 269-273, 2021 12.
Artigo em Inglês | MEDLINE | ID: mdl-34789878

RESUMO

The brain is the seat of body weight homeostasis. However, our inability to control the increasing prevalence of obesity highlights a need to look beyond canonical feeding pathways to broaden our understanding of body weight control1-3. Here we used a reverse-translational approach to identify and anatomically, molecularly and functionally characterize a neural ensemble that promotes satiation. Unbiased, task-based functional magnetic resonance imaging revealed marked differences in cerebellar responses to food in people with a genetic disorder characterized by insatiable appetite. Transcriptomic analyses in mice revealed molecularly and topographically -distinct neurons in the anterior deep cerebellar nuclei (aDCN) that are activated by feeding or nutrient infusion in the gut. Selective activation of aDCN neurons substantially decreased food intake by reducing meal size without compensatory changes to metabolic rate. We found that aDCN activity terminates food intake by increasing striatal dopamine levels and attenuating the phasic dopamine response to subsequent food consumption. Our study defines a conserved satiation centre that may represent a novel therapeutic target for the management of excessive eating, and underscores the utility of a 'bedside-to-bench' approach for the identification of neural circuits that influence behaviour.


Assuntos
Manutenção do Peso Corporal/genética , Manutenção do Peso Corporal/fisiologia , Cerebelo/fisiologia , Alimentos , Biossíntese de Proteínas , Genética Reversa , Resposta de Saciedade/fisiologia , Adulto , Animais , Regulação do Apetite/genética , Regulação do Apetite/fisiologia , Núcleos Cerebelares/citologia , Núcleos Cerebelares/fisiologia , Cerebelo/citologia , Sinais (Psicologia) , Dopamina/metabolismo , Ingestão de Alimentos/genética , Ingestão de Alimentos/fisiologia , Comportamento Alimentar/fisiologia , Feminino , Homeostase , Humanos , Imageamento por Ressonância Magnética , Masculino , Camundongos , Camundongos Endogâmicos C57BL , Neostriado/metabolismo , Neurônios/fisiologia , Obesidade/genética , Filosofia , Adulto Jovem
8.
Nature ; 580(7802): 239-244, 2020 04.
Artigo em Inglês | MEDLINE | ID: mdl-32269346

RESUMO

The neurotransmitter dopamine is required for the reinforcement of actions by rewarding stimuli1. Neuroscientists have tried to define the functions of dopamine in concise conceptual terms2, but the practical implications of dopamine release depend on its diverse brain-wide consequences. Although molecular and cellular effects of dopaminergic signalling have been extensively studied3, the effects of dopamine on larger-scale neural activity profiles are less well-understood. Here we combine dynamic dopamine-sensitive molecular imaging4 and functional magnetic resonance imaging to determine how striatal dopamine release shapes local and global responses to rewarding stimulation in rat brains. We find that dopamine consistently alters the duration, but not the magnitude, of stimulus responses across much of the striatum, via quantifiable postsynaptic effects that vary across subregions. Striatal dopamine release also potentiates a network of distal responses, which we delineate using neurochemically dependent functional connectivity analyses. Hot spots of dopaminergic drive notably include cortical regions that are associated with both limbic and motor function. Our results reveal distinct neuromodulatory actions of striatal dopamine that extend well beyond its sites of peak release, and that result in enhanced activation of remote neural populations necessary for the performance of motivated actions. Our findings also suggest brain-wide biomarkers of dopaminergic function and could provide a basis for the improved interpretation of neuroimaging results that are relevant to learning and addiction.


Assuntos
Dopamina/metabolismo , Neostriado/metabolismo , Recompensa , Animais , Comportamento Aditivo , Mapeamento Encefálico , Aprendizagem , Imageamento por Ressonância Magnética , Masculino , Imagem Molecular , Motivação , Ratos , Ratos Sprague-Dawley
9.
Nature ; 582(7813): 550-556, 2020 06.
Artigo em Inglês | MEDLINE | ID: mdl-32581380

RESUMO

Parkinson's disease is characterized by loss of dopamine neurons in the substantia nigra1. Similar to other major neurodegenerative disorders, there are no disease-modifying treatments for Parkinson's disease. While most treatment strategies aim to prevent neuronal loss or protect vulnerable neuronal circuits, a potential alternative is to replace lost neurons to reconstruct disrupted circuits2. Here we report an efficient one-step conversion of isolated mouse and human astrocytes to functional neurons by depleting the RNA-binding protein PTB (also known as PTBP1). Applying this approach to the mouse brain, we demonstrate progressive conversion of astrocytes to new neurons that innervate into and repopulate endogenous neural circuits. Astrocytes from different brain regions are converted to different neuronal subtypes. Using a chemically induced model of Parkinson's disease in mouse, we show conversion of midbrain astrocytes to dopaminergic neurons, which provide axons to reconstruct the nigrostriatal circuit. Notably, re-innervation of striatum is accompanied by restoration of dopamine levels and rescue of motor deficits. A similar reversal of disease phenotype is also accomplished by converting astrocytes to neurons using antisense oligonucleotides to transiently suppress PTB. These findings identify a potentially powerful and clinically feasible approach to treating neurodegeneration by replacing lost neurons.


Assuntos
Astrócitos/citologia , Modelos Animais de Doenças , Neurônios Dopaminérgicos/citologia , Doença de Parkinson/patologia , Doença de Parkinson/terapia , Substância Negra/citologia , Substância Negra/fisiologia , Animais , Axônios/fisiologia , Dopamina/biossíntese , Dopamina/metabolismo , Neurônios Dopaminérgicos/metabolismo , Feminino , Ribonucleoproteínas Nucleares Heterogêneas/deficiência , Ribonucleoproteínas Nucleares Heterogêneas/genética , Ribonucleoproteínas Nucleares Heterogêneas/metabolismo , Humanos , Técnicas In Vitro , Masculino , Camundongos , Neostriado/citologia , Neostriado/fisiologia , Vias Neurais , Neurogênese , Doença de Parkinson/metabolismo , Fenótipo , Proteína de Ligação a Regiões Ricas em Polipirimidinas/deficiência , Proteína de Ligação a Regiões Ricas em Polipirimidinas/genética , Proteína de Ligação a Regiões Ricas em Polipirimidinas/metabolismo , Substância Negra/metabolismo
10.
Nature ; 586(7828): 262-269, 2020 10.
Artigo em Inglês | MEDLINE | ID: mdl-32999462

RESUMO

Primates and rodents, which descended from a common ancestor around 90 million years ago1, exhibit profound differences in behaviour and cognitive capacity; the cellular basis for these differences is unknown. Here we use single-nucleus RNA sequencing to profile RNA expression in 188,776 individual interneurons across homologous brain regions from three primates (human, macaque and marmoset), a rodent (mouse) and a weasel (ferret). Homologous interneuron types-which were readily identified by their RNA-expression patterns-varied in abundance and RNA expression among ferrets, mice and primates, but varied less among primates. Only a modest fraction of the genes identified as 'markers' of specific interneuron subtypes in any one species had this property in another species. In the primate neocortex, dozens of genes showed spatial expression gradients among interneurons of the same type, which suggests that regional variation in cortical contexts shapes the RNA expression patterns of adult neocortical interneurons. We found that an interneuron type that was previously associated with the mouse hippocampus-the 'ivy cell', which has neurogliaform characteristics-has become abundant across the neocortex of humans, macaques and marmosets but not mice or ferrets. We also found a notable subcortical innovation: an abundant striatal interneuron type in primates that had no molecularly homologous counterpart in mice or ferrets. These interneurons expressed a unique combination of genes that encode transcription factors, receptors and neuropeptides and constituted around 30% of striatal interneurons in marmosets and humans.


Assuntos
Interneurônios/citologia , Primatas , Animais , Callithrix , Córtex Cerebral/citologia , Feminino , Furões , Hipocampo/citologia , Humanos , Interneurônios/metabolismo , Proteínas com Homeodomínio LIM/metabolismo , Proteínas de Membrana Lisossomal/metabolismo , Macaca , Masculino , Camundongos , Neostriado/citologia , Proteínas do Tecido Nervoso/metabolismo , RNA/genética , Especificidade da Espécie , Fatores de Transcrição/metabolismo
11.
Proc Natl Acad Sci U S A ; 120(45): e2313058120, 2023 Nov 07.
Artigo em Inglês | MEDLINE | ID: mdl-37922329

RESUMO

The basal ganglia are important for action initiation, selection, and motor learning. The input level, the striatum, receives input preferentially from the cortex and thalamus and is to 95% composed of striatal projection neurons (SPNs) with sparse GABAergic collaterals targeting distal dendrites of neighboring SPNs, in a distance-dependent manner. The remaining 5% are GABAergic and cholinergic interneurons. Our aim here is to investigate the role of surround inhibition for the intrinsic function of the striatum. Large-scale striatal networks of 20 to 40 thousand neurons were simulated with detailed multicompartmental models of different cell types, corresponding to the size of a module of the dorsolateral striatum, like the forelimb area (mouse). The effect of surround inhibition on dendritic computation and network activity was investigated, while groups of SPNs were activated. The SPN-induced surround inhibition in distal dendrites shunted effectively the corticostriatal EPSPs. The size of dendritic plateau-like potentials within the specific dendritic segment was both reduced and enhanced by inhibition, due to the hyperpolarized membrane potential of SPNs and the reversal-potential of GABA. On a population level, the competition between two subpopulations of SPNs was found to depend on the distance between the two units, the size of each unit, the activity level in each subgroup and the dopaminergic modulation of the dSPNs and iSPNs. The SPNs provided the dominating source of inhibition within the striatum, while the fast-spiking interneuron mainly had an initial effect due to short-term synaptic plasticity as shown in with ablation of the synaptic interaction.


Assuntos
Corpo Estriado , Neurônios , Animais , Camundongos , Gânglios da Base , Corpo Estriado/metabolismo , Interneurônios/fisiologia , Neostriado , Neurônios/fisiologia
12.
Proc Natl Acad Sci U S A ; 120(15): e2219693120, 2023 04 11.
Artigo em Inglês | MEDLINE | ID: mdl-37023134

RESUMO

Corticostriatal activity is an appealing target for nonpharmacological treatments of brain disorders. In humans, corticostriatal activity may be modulated with noninvasive brain stimulation (NIBS). However, a NIBS protocol with a sound neuroimaging measure demonstrating a change in corticostriatal activity is currently lacking. Here, we combine transcranial static magnetic field stimulation (tSMS) with resting-state functional MRI (fMRI). We first present and validate the ISAAC analysis, a well-principled framework that disambiguates functional connectivity between regions from local activity within regions. All measures of the framework suggested that the region along the medial cortex displaying greater functional connectivity with the striatum is the supplementary motor area (SMA), where we applied tSMS. We then use a data-driven version of the framework to show that tSMS of the SMA modulates the local activity in the SMA proper, in the adjacent sensorimotor cortex, and in the motor striatum. We finally use a model-driven version of the framework to clarify that the tSMS-induced modulation of striatal activity can be primarily explained by a change in the shared activity between the modulated motor cortical areas and the motor striatum. These results suggest that corticostriatal activity can be targeted, monitored, and modulated noninvasively in humans.


Assuntos
Córtex Motor , Córtex Sensório-Motor , Humanos , Corpo Estriado/diagnóstico por imagem , Neostriado , Córtex Motor/diagnóstico por imagem , Córtex Motor/fisiologia , Estimulação Magnética Transcraniana/métodos , Imageamento por Ressonância Magnética
13.
PLoS Biol ; 20(11): e3001868, 2022 11.
Artigo em Inglês | MEDLINE | ID: mdl-36395338

RESUMO

The striatum links neuronal circuits in the human brain, and its malfunction causes neuronal disorders such as Huntington's disease (HD). A human striatum model that recapitulates fetal striatal development is vital to decoding the pathogenesis of striatum-related neurological disorders and developing therapeutic strategies. Here, we developed a method to construct human striatal organoids (hStrOs) from human pluripotent stem cells (hPSCs), including hStrOs-derived assembloids. Our hStrOs partially replicated the fetal striatum and formed striosome and matrix-like compartments in vitro. Single-cell RNA sequencing revealed distinct striatal lineages in hStrOs, diverging from dorsal forebrain fate. Using hStrOs-derived assembloids, we replicated the striatal targeting projections from different brain parts. Furthermore, hStrOs can serve as hosts for striatal neuronal allografts to test allograft neuronal survival and functional integration. Our hStrOs are suitable for studying striatal development and related disorders, characterizing the neural circuitry between different brain regions, and testing therapeutic strategies.


Assuntos
Organoides , Células-Tronco Pluripotentes , Humanos , Corpo Estriado , Neostriado , Prosencéfalo
14.
Nature ; 571(7766): 565-569, 2019 07.
Artigo em Inglês | MEDLINE | ID: mdl-31316206

RESUMO

Parkinson's disease is a neurodegenerative disorder with motor symptoms linked to the loss of dopaminergic neurons in the substantia nigra compacta. Although the mechanisms that trigger the loss of dopaminergic neurons are unclear, mitochondrial dysfunction and inflammation are thought to have key roles1,2. An early-onset form of Parkinson's disease is associated with mutations in the PINK1 kinase and PRKN ubiquitin ligase genes3. PINK1 and Parkin (encoded by PRKN) are involved in the clearance of damaged mitochondria in cultured cells4, but recent evidence obtained using knockout and knockin mouse models have led to contradictory results regarding the contributions of PINK1 and Parkin to mitophagy in vivo5-8. It has previously been shown that PINK1 and Parkin have a key role in adaptive immunity by repressing presentation of mitochondrial antigens9, which suggests that autoimmune mechanisms participate in the aetiology of Parkinson's disease. Here we show that intestinal infection with Gram-negative bacteria in Pink1-/- mice engages mitochondrial antigen presentation and autoimmune mechanisms that elicit the establishment of cytotoxic mitochondria-specific CD8+ T cells in the periphery and in the brain. Notably, these mice show a sharp decrease in the density of dopaminergic axonal varicosities in the striatum and are affected by motor impairment that is reversed after treatment with L-DOPA. These data support the idea that PINK1 is a repressor of the immune system, and provide a pathophysiological model in which intestinal infection acts as a triggering event in Parkinson's disease, which highlights the relevance of the gut-brain axis in the disease10.


Assuntos
Infecções por Enterobacteriaceae/microbiologia , Infecções por Enterobacteriaceae/fisiopatologia , Intestinos/microbiologia , Doença de Parkinson/genética , Doença de Parkinson/microbiologia , Proteínas Quinases/deficiência , Proteínas Quinases/genética , Animais , Apresentação de Antígeno/imunologia , Autoantígenos/imunologia , Axônios/patologia , Linfócitos T CD8-Positivos/imunologia , Linfócitos T CD8-Positivos/patologia , Citrobacter rodentium/imunologia , Citrobacter rodentium/patogenicidade , Modelos Animais de Doenças , Neurônios Dopaminérgicos/imunologia , Neurônios Dopaminérgicos/patologia , Infecções por Enterobacteriaceae/imunologia , Infecções por Enterobacteriaceae/patologia , Feminino , Intestinos/imunologia , Intestinos/patologia , Levodopa/uso terapêutico , Masculino , Camundongos , Mitocôndrias/imunologia , Mitocôndrias/patologia , Neostriado/imunologia , Neostriado/microbiologia , Neostriado/patologia , Neostriado/fisiopatologia , Doença de Parkinson/tratamento farmacológico , Doença de Parkinson/fisiopatologia , Proteínas Quinases/imunologia , Ubiquitina-Proteína Ligases/deficiência , Ubiquitina-Proteína Ligases/genética , Ubiquitina-Proteína Ligases/imunologia
15.
Nature ; 576(7787): 446-451, 2019 12.
Artigo em Inglês | MEDLINE | ID: mdl-31801999

RESUMO

Individual neurons in many cortical regions have been found to encode specific, identifiable features of the environment or body that pertain to the function of the region1-3. However, in frontal cortex, which is involved in cognition, neural responses display baffling complexity, carrying seemingly disordered mixtures of sensory, motor and other task-related variables4-13. This complexity has led to the suggestion that representations in individual frontal neurons are randomly mixed and can only be understood at the neural population level14,15. Here we show that neural activity in rat orbitofrontal cortex (OFC) is instead highly structured: single neuron activity co-varies with individual variables in computational models that explain choice behaviour. To characterize neural responses across a large behavioural space, we trained rats on a behavioural task that combines perceptual and value-guided decisions. An unbiased, model-free clustering analysis identified distinct groups of OFC neurons, each with a particular response profile in task-variable space. Applying a simple model of choice behaviour to these categorical response profiles revealed that each profile quantitatively corresponds to a specific decision variable, such as decision confidence. Additionally, we demonstrate that a connectivity-defined cell type, orbitofrontal neurons projecting to the striatum, carries a selective and temporally sustained representation of a single decision variable: integrated value. We propose that neurons in frontal cortex, as in other cortical regions, form a sparse and overcomplete representation of features relevant to the region's function, and that they distribute this information selectively to downstream regions to support behaviour.


Assuntos
Comportamento de Escolha/fisiologia , Neurônios/citologia , Neurônios/fisiologia , Córtex Pré-Frontal/citologia , Animais , Antecipação Psicológica , Aprendizagem por Discriminação , Lógica , Masculino , Modelos Neurológicos , Neostriado/citologia , Neostriado/fisiologia , Vias Neurais , Odorantes/análise , Especificidade de Órgãos , Córtex Pré-Frontal/anatomia & histologia , Córtex Pré-Frontal/fisiologia , Psicometria , Ratos , Ratos Long-Evans , Recompensa
16.
Proc Natl Acad Sci U S A ; 119(14): e2120717119, 2022 04 05.
Artigo em Inglês | MEDLINE | ID: mdl-35349340

RESUMO

SignificanceDistributed training has long been known to lead to more robust memory formation as compared to massed training. Using the water maze, a well-established task for assessing memory in laboratory rodents, we found that distributed and massed training differentially engage the dorsolateral and dorsomedial striatum, and optogenetic priming of dorsolateral striatum can artificially increase the robustness of massed training to the level of distributed training. Overall, our findings demonstrate that spatial memory consolidation engages different neural substrates depending on the training regimen, identifying a therapeutic avenue for memory enhancement.


Assuntos
Consolidação da Memória , Memória Espacial , Corpo Estriado , Hipocampo , Aprendizagem em Labirinto , Neostriado
17.
Proc Natl Acad Sci U S A ; 119(5)2022 02 01.
Artigo em Inglês | MEDLINE | ID: mdl-35086928

RESUMO

The CAG expansion of huntingtin (mHTT) associated with Huntington disease (HD) is a ubiquitously expressed gene, yet it prominently damages the striatum and cortex, followed by widespread peripheral defects as the disease progresses. However, the underlying mechanisms of neuronal vulnerability are unclear. Previous studies have shown that SUMO1 (small ubiquitin-like modifier-1) modification of mHtt promotes cellular toxicity, but the in vivo role and functions of SUMO1 in HD pathogenesis are unclear. Here, we report that SUMO1 deletion in Q175DN HD-het knockin mice (HD mice) prevented age-dependent HD-like motor and neurological impairments and suppressed the striatal atrophy and inflammatory response. SUMO1 deletion caused a drastic reduction in soluble mHtt levels and nuclear and extracellular mHtt inclusions while increasing cytoplasmic mHtt inclusions in the striatum of HD mice. SUMO1 deletion promoted autophagic activity, characterized by augmented interactions between mHtt inclusions and a lysosomal marker (LAMP1), increased LC3B- and LAMP1 interaction, and decreased interaction of sequestosome-1 (p62) and LAMP1 in DARPP-32-positive medium spiny neurons in HD mice. Depletion of SUMO1 in an HD cell model also diminished the mHtt levels and enhanced autophagy flux. In addition, the SUMOylation inhibitor ginkgolic acid strongly enhanced autophagy and diminished mHTT levels in human HD fibroblasts. These results indicate that SUMO is a critical therapeutic target in HD and that blocking SUMO may ameliorate HD pathogenesis by regulating autophagy activities.


Assuntos
Autofagia/fisiologia , Doença de Huntington/metabolismo , Proteína SUMO-1/metabolismo , Animais , Morte Celular Autofágica/fisiologia , Encéfalo/patologia , Corpo Estriado/patologia , Modelos Animais de Doenças , Humanos , Proteína Huntingtina/genética , Proteína Huntingtina/metabolismo , Doença de Huntington/genética , Doença de Huntington/fisiopatologia , Proteínas de Membrana Lisossomal/metabolismo , Lisossomos/patologia , Camundongos , Camundongos Transgênicos , Neostriado/patologia , Neurônios/patologia , Proteína SUMO-1/genética , Proteína SUMO-1/fisiologia
18.
J Neurosci ; 43(18): 3339-3352, 2023 05 03.
Artigo em Inglês | MEDLINE | ID: mdl-37015808

RESUMO

Reward prediction error (RPE) signals are crucial for reinforcement learning and decision-making as they quantify the mismatch between predicted and obtained rewards. RPE signals are encoded in the neural activity of multiple brain areas, such as midbrain dopaminergic neurons, prefrontal cortex, and striatum. However, it remains unclear how these signals are expressed through anatomically and functionally distinct subregions of the striatum. In the current study, we examined to which extent RPE signals are represented across different striatal regions. To do so, we recorded local field potentials (LFPs) in sensorimotor, associative, and limbic striatal territories of two male rhesus monkeys performing a free-choice probabilistic learning task. The trial-by-trial evolution of RPE during task performance was estimated using a reinforcement learning model fitted on monkeys' choice behavior. Overall, we found that changes in beta band oscillations (15-35 Hz), after the outcome of the animal's choice, are consistent with RPE encoding. Moreover, we provide evidence that the signals related to RPE are more strongly represented in the ventral (limbic) than dorsal (sensorimotor and associative) part of the striatum. To conclude, our results suggest a relationship between striatal beta oscillations and the evaluation of outcomes based on RPE signals and highlight a major contribution of the ventral striatum to the updating of learning processes.SIGNIFICANCE STATEMENT Reward prediction error (RPE) signals are crucial for reinforcement learning and decision-making as they quantify the mismatch between predicted and obtained rewards. Current models suggest that RPE signals are encoded in the neural activity of multiple brain areas, including the midbrain dopaminergic neurons, prefrontal cortex and striatum. However, it remains elusive whether RPEs recruit anatomically and functionally distinct subregions of the striatum. Our study provides evidence that RPE-related modulations in local field potential (LFP) power are dominant in the striatum. In particular, they are stronger in the rostro-ventral rather than the caudo-dorsal striatum. Our findings contribute to a better understanding of the role of striatal territories in reward-based learning and may be relevant for neuropsychiatric and neurologic diseases that affect striatal circuits.


Assuntos
Corpo Estriado , Recompensa , Animais , Masculino , Corpo Estriado/fisiologia , Reforço Psicológico , Aprendizagem/fisiologia , Neostriado
19.
J Neurosci ; 43(12): 2126-2139, 2023 03 22.
Artigo em Inglês | MEDLINE | ID: mdl-36810226

RESUMO

A learned sensory-motor behavior engages multiple brain regions, including the neocortex and the basal ganglia. How a target stimulus is detected by these regions and converted to a motor response remains poorly understood. Here, we performed electrophysiological recordings and pharmacological inactivations of whisker motor cortex and dorsolateral striatum to determine the representations within, and functions of, each region during performance in a selective whisker detection task in male and female mice. From the recording experiments, we observed robust, lateralized sensory responses in both structures. We also observed bilateral choice probability and preresponse activity in both structures, with these features emerging earlier in whisker motor cortex than dorsolateral striatum. These findings establish both whisker motor cortex and dorsolateral striatum as potential contributors to the sensory-to-motor (sensorimotor) transformation. We performed pharmacological inactivation studies to determine the necessity of these brain regions for this task. We found that suppressing the dorsolateral striatum severely disrupts responding to task-relevant stimuli, without disrupting the ability to respond, whereas suppressing whisker motor cortex resulted in more subtle changes in sensory detection and response criterion. Together these data support the dorsolateral striatum as an essential node in the sensorimotor transformation of this whisker detection task.SIGNIFICANCE STATEMENT Selecting an item in a grocery store, hailing a cab - these daily practices require us to transform sensory stimuli into motor responses. Many decades of previous research have studied goal-directed sensory-to-motor transformations within various brain structures, including the neocortex and the basal ganglia. Yet, our understanding of how these regions coordinate to perform sensory-to-motor transformations is limited because these brain structures are often studied by different researchers and through different behavioral tasks. Here, we record and perturb specific regions of the neocortex and the basal ganglia and compare their contributions during performance of a goal-directed somatosensory detection task. We find notable differences in the activities and functions of these regions, which suggests specific contributions to the sensory-to-motor transformation process.


Assuntos
Neocórtex , Vibrissas , Camundongos , Masculino , Feminino , Animais , Vibrissas/fisiologia , Aprendizagem , Corpo Estriado/fisiologia , Neostriado , Córtex Somatossensorial/fisiologia
20.
J Neurosci ; 43(23): 4365-4377, 2023 06 07.
Artigo em Inglês | MEDLINE | ID: mdl-37055181

RESUMO

Huntington's disease (HD) is an autosomal-dominant neurodegenerative disease characterized by progressive motor and cognitive impairments, with no disease-modifying therapies yet available. HD pathophysiology involves evident impairment in glutamatergic neurotransmission leading to severe striatal neurodegeneration. The vesicular glutamate transporter-3 (VGLUT3) regulates the striatal network that is centrally affected by HD. Nevertheless, current evidence on the role of VGLUT3 in HD pathophysiology is lacking. Here, we crossed mice lacking Slc17a8 gene (VGLUT3 -/-) with heterozygous zQ175 knock-in mouse model of HD (zQ175:VGLUT3 -/-). Longitudinal assessment of motor and cognitive functions from 6 to 15 months of age reveals that VGLUT3 deletion rescues motor coordination and short-term memory deficits in both male and female zQ175 mice. VGLUT3 deletion also rescues neuronal loss likely via the activation of Akt and ERK1/2 in the striatum of zQ175 mice of both sexes. Interestingly, the rescue in neuronal survival in zQ175:VGLUT3 -/- mice is accompanied by a reduction in the number of nuclear mutant huntingtin (mHTT) aggregates with no change in the total aggregate levels or microgliosis. Collectively, these findings provide novel evidence that VGLUT3, despite its limited expression, can be a vital contributor to HD pathophysiology and a viable target for HD therapeutics.SIGNIFICANCE STATEMENT Dysregulation of the striatal network centrally contributes to the pathophysiology of Huntington's disease (HD). The atypical vesicular glutamate transporter-3 (VGLUT3) has been shown to regulate several major striatal pathologies, such as addiction, eating disorders, or L-DOPA-induced dyskinesia. Yet, our understanding of VGLUT3's role in HD remains unclear. We report here that deletion of the Slc17a8 (Vglut3) gene rescues the deficits in both motor and cognitive functions in HD mice of both sexes. We also find that VGLUT3 deletion activates neuronal survival signaling and reduces nuclear aggregation of abnormal huntingtin proteins and striatal neuron loss in HD mice. Our novel findings highlight the vital contribution of VGLUT3 in HD pathophysiology that can be exploited for HD therapeutic management.


Assuntos
Doença de Huntington , Doenças Neurodegenerativas , Camundongos , Masculino , Feminino , Animais , Doença de Huntington/metabolismo , Doenças Neurodegenerativas/metabolismo , Corpo Estriado/metabolismo , Neostriado/metabolismo , Proteínas Vesiculares de Transporte de Glutamato/metabolismo , Modelos Animais de Doenças , Camundongos Transgênicos , Proteína Huntingtina/genética
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