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1.
Cell ; 186(7): 1352-1368.e18, 2023 03 30.
Artículo en Inglés | MEDLINE | ID: mdl-37001500

RESUMEN

Resilience enables mental elasticity in individuals when rebounding from adversity. In this study, we identified a microcircuit and relevant molecular adaptations that play a role in natural resilience. We found that activation of parvalbumin (PV) interneurons in the primary auditory cortex (A1) by thalamic inputs from the ipsilateral medial geniculate body (MG) is essential for resilience in mice exposed to chronic social defeat stress. Early attacks during chronic social defeat stress induced short-term hyperpolarizations of MG neurons projecting to the A1 (MGA1 neurons) in resilient mice. In addition, this temporal neural plasticity of MGA1 neurons initiated synaptogenesis onto thalamic PV neurons via presynaptic BDNF-TrkB signaling in subsequent stress responses. Moreover, optogenetic mimicking of the short-term hyperpolarization of MGA1 neurons, rather than merely activating MGA1 neurons, elicited innate resilience mechanisms in response to stress and achieved sustained antidepressant-like effects in multiple animal models, representing a new strategy for targeted neuromodulation.


Asunto(s)
Corteza Auditiva , Ratones , Animales , Corteza Auditiva/metabolismo , Tálamo/fisiología , Neuronas/metabolismo , Cuerpos Geniculados , Interneuronas/fisiología , Parvalbúminas/metabolismo
2.
Cell ; 186(26): 5739-5750.e17, 2023 12 21.
Artículo en Inglés | MEDLINE | ID: mdl-38070510

RESUMEN

Conscious perception is greatly diminished during sleep, but the underlying circuit mechanism is poorly understood. We show that cortical ignition-a brain process shown to be associated with conscious awareness in humans and non-human primates-is strongly suppressed during non-rapid-eye-movement (NREM) sleep in mice due to reduced cholinergic modulation and rapid inhibition of cortical responses. Brain-wide functional ultrasound imaging and cell-type-specific calcium imaging combined with optogenetics showed that activity propagation from visual to frontal cortex is markedly reduced during NREM sleep due to strong inhibition of frontal pyramidal neurons. Chemogenetic activation and inactivation of basal forebrain cholinergic neurons powerfully increased and decreased visual-to-frontal activity propagation, respectively. Furthermore, although multiple subtypes of dendrite-targeting GABAergic interneurons in the frontal cortex are more active during wakefulness, soma-targeting parvalbumin-expressing interneurons are more active during sleep. Chemogenetic manipulation of parvalbumin interneurons showed that sleep/wake-dependent cortical ignition is strongly modulated by perisomatic inhibition of pyramidal neurons.


Asunto(s)
Electroencefalografía , Parvalbúminas , Sueño , Animales , Ratones , Neuronas Colinérgicas/fisiología , Lóbulo Frontal/metabolismo , Parvalbúminas/metabolismo , Sueño/fisiología , Vigilia/fisiología
3.
Cell ; 185(21): 3877-3895.e21, 2022 10 13.
Artículo en Inglés | MEDLINE | ID: mdl-36152627

RESUMEN

Williams-Beuren syndrome (WBS) is a rare disorder caused by hemizygous microdeletion of ∼27 contiguous genes. Despite neurodevelopmental and cognitive deficits, individuals with WBS have spared or enhanced musical and auditory abilities, potentially offering an insight into the genetic basis of auditory perception. Here, we report that the mouse models of WBS have innately enhanced frequency-discrimination acuity and improved frequency coding in the auditory cortex (ACx). Chemogenetic rescue showed frequency-discrimination hyperacuity is caused by hyperexcitable interneurons in the ACx. Haploinsufficiency of one WBS gene, Gtf2ird1, replicated WBS phenotypes by downregulating the neuropeptide receptor VIPR1. VIPR1 is reduced in the ACx of individuals with WBS and in the cerebral organoids derived from human induced pluripotent stem cells with the WBS microdeletion. Vipr1 deletion or overexpression in ACx interneurons mimicked or reversed, respectively, the cellular and behavioral phenotypes of WBS mice. Thus, the Gtf2ird1-Vipr1 mechanism in ACx interneurons may underlie the superior auditory acuity in WBS.


Asunto(s)
Corteza Auditiva/fisiología , Síndrome de Williams/fisiopatología , Animales , Corteza Auditiva/citología , Modelos Animales de Enfermedad , Humanos , Células Madre Pluripotentes Inducidas , Interneuronas/citología , Interneuronas/fisiología , Ratones , Fenotipo , Transactivadores/genética , Síndrome de Williams/genética
4.
Cell ; 184(15): 4048-4063.e32, 2021 07 22.
Artículo en Inglés | MEDLINE | ID: mdl-34233165

RESUMEN

Microglia, the resident immune cells of the brain, have emerged as crucial regulators of synaptic refinement and brain wiring. However, whether the remodeling of distinct synapse types during development is mediated by specialized microglia is unknown. Here, we show that GABA-receptive microglia selectively interact with inhibitory cortical synapses during a critical window of mouse postnatal development. GABA initiates a transcriptional synapse remodeling program within these specialized microglia, which in turn sculpt inhibitory connectivity without impacting excitatory synapses. Ablation of GABAB receptors within microglia impairs this process and leads to behavioral abnormalities. These findings demonstrate that brain wiring relies on the selective communication between matched neuronal and glial cell types.


Asunto(s)
Microglía/metabolismo , Inhibición Neural/fisiología , Ácido gamma-Aminobutírico/metabolismo , Animales , Animales Recién Nacidos , Conducta Animal , Regulación de la Expresión Génica , Células HEK293 , Humanos , Ratones , Parvalbúminas/metabolismo , Fenotipo , Receptores de GABA-B/metabolismo , Sinapsis/fisiología , Transcripción Genética
5.
Cell ; 183(4): 935-953.e19, 2020 11 12.
Artículo en Inglés | MEDLINE | ID: mdl-33186530

RESUMEN

Neurons are frequently classified into distinct types on the basis of structural, physiological, or genetic attributes. To better constrain the definition of neuronal cell types, we characterized the transcriptomes and intrinsic physiological properties of over 4,200 mouse visual cortical GABAergic interneurons and reconstructed the local morphologies of 517 of those neurons. We find that most transcriptomic types (t-types) occupy specific laminar positions within visual cortex, and, for most types, the cells mapping to a t-type exhibit consistent electrophysiological and morphological properties. These properties display both discrete and continuous variation among t-types. Through multimodal integrated analysis, we define 28 met-types that have congruent morphological, electrophysiological, and transcriptomic properties and robust mutual predictability. We identify layer-specific axon innervation pattern as a defining feature distinguishing different met-types. These met-types represent a unified definition of cortical GABAergic interneuron types, providing a systematic framework to capture existing knowledge and bridge future analyses across different modalities.


Asunto(s)
Corteza Cerebral/citología , Fenómenos Electrofisiológicos , Neuronas GABAérgicas/citología , Neuronas GABAérgicas/metabolismo , Transcriptoma/genética , Animales , Femenino , Perfilación de la Expresión Génica , Hipocampo/fisiología , Canales Iónicos/metabolismo , Masculino , Ratones Endogámicos C57BL , Proteínas del Tejido Nervioso/metabolismo
6.
Cell ; 183(4): 918-934.e49, 2020 11 12.
Artículo en Inglés | MEDLINE | ID: mdl-33113354

RESUMEN

Learning valence-based responses to favorable and unfavorable options requires judgments of the relative value of the options, a process necessary for species survival. We found, using engineered mice, that circuit connectivity and function of the striosome compartment of the striatum are critical for this type of learning. Calcium imaging during valence-based learning exhibited a selective correlation between learning and striosomal but not matrix signals. This striosomal activity encoded discrimination learning and was correlated with task engagement, which, in turn, could be regulated by chemogenetic excitation and inhibition. Striosomal function during discrimination learning was disturbed with aging and severely so in a mouse model of Huntington's disease. Anatomical and functional connectivity of parvalbumin-positive, putative fast-spiking interneurons (FSIs) to striatal projection neurons was enhanced in striosomes compared with matrix in mice that learned. Computational modeling of these findings suggests that FSIs can modulate the striosomal signal-to-noise ratio, crucial for discrimination and learning.


Asunto(s)
Envejecimiento/patología , Cuerpo Estriado/patología , Enfermedad de Huntington/patología , Aprendizaje , Potenciales de Acción , Animales , Conducta Animal , Biomarcadores/metabolismo , Cuerpo Estriado/fisiopatología , Aprendizaje Discriminativo , Modelos Animales de Enfermedad , Enfermedad de Huntington/fisiopatología , Interneuronas/patología , Ratones Transgénicos , Modelos Neurológicos , Red Nerviosa/fisiopatología , Parvalbúminas/metabolismo , Fotometría , Recompensa , Análisis y Desempeño de Tareas
7.
Cell ; 181(2): 410-423.e17, 2020 04 16.
Artículo en Inglés | MEDLINE | ID: mdl-32187527

RESUMEN

Memories are believed to be encoded by sparse ensembles of neurons in the brain. However, it remains unclear whether there is functional heterogeneity within individual memory engrams, i.e., if separate neuronal subpopulations encode distinct aspects of the memory and drive memory expression differently. Here, we show that contextual fear memory engrams in the mouse dentate gyrus contain functionally distinct neuronal ensembles, genetically defined by the Fos- or Npas4-dependent transcriptional pathways. The Fos-dependent ensemble promotes memory generalization and receives enhanced excitatory synaptic inputs from the medial entorhinal cortex, which we find itself also mediates generalization. The Npas4-dependent ensemble promotes memory discrimination and receives enhanced inhibitory drive from local cholecystokinin-expressing interneurons, the activity of which is required for discrimination. Our study provides causal evidence for functional heterogeneity within the memory engram and reveals synaptic and circuit mechanisms used by each ensemble to regulate the memory discrimination-generalization balance.


Asunto(s)
Miedo/fisiología , Memoria/fisiología , Neuronas/metabolismo , Animales , Factores de Transcripción con Motivo Hélice-Asa-Hélice Básico/metabolismo , Encéfalo/fisiología , Giro Dentado/fisiología , Interneuronas/fisiología , Masculino , Ratones , Ratones Endogámicos C57BL , Neuronas/fisiología , Proteínas Proto-Oncogénicas c-fos/metabolismo
8.
Cell ; 175(4): 1119-1130.e15, 2018 11 01.
Artículo en Inglés | MEDLINE | ID: mdl-30318145

RESUMEN

Hippocampal theta oscillations were proposed to be important for multiple functions, including memory and temporal coding of position. However, previous findings from bats have questioned these proposals by reporting absence of theta rhythmicity in bat hippocampal formation. Does this mean that temporal coding is unique to rodent hippocampus and does not generalize to other species? Here, we report that, surprisingly, bat hippocampal neurons do exhibit temporal coding similar to rodents, albeit without any continuous oscillations at the 1-20 Hz range. Bat neurons exhibited very strong locking to the non-rhythmic fluctuations of the field potential, such that neurons were synchronized together despite the absence of oscillations. Further, some neurons exhibited "phase precession" and phase coding of the bat's position-with spike phases shifting earlier as the animal moved through the place field. This demonstrates an unexpected type of neural coding in the mammalian brain-nonoscillatory phase coding-and highlights the importance of synchrony and temporal coding for hippocampal function across species.


Asunto(s)
Sincronización Cortical , Hipocampo/fisiología , Animales , Evolución Biológica , Quirópteros , Hipocampo/citología , Interneuronas/fisiología , Masculino , Ratas , Ritmo Teta
9.
Cell ; 169(7): 1291-1302.e14, 2017 Jun 15.
Artículo en Inglés | MEDLINE | ID: mdl-28602353

RESUMEN

The emergence of sensory-guided behavior depends on sensorimotor coupling during development. How sensorimotor experience shapes neural processing is unclear. Here, we show that the coupling between motor output and visual feedback is necessary for the functional development of visual processing in layer 2/3 (L2/3) of primary visual cortex (V1) of the mouse. Using a virtual reality system, we reared mice in conditions of normal or random visuomotor coupling. We recorded the activity of identified excitatory and inhibitory L2/3 neurons in response to transient visuomotor mismatches in both groups of mice. Mismatch responses in excitatory neurons were strongly experience dependent and driven by a transient release from inhibition mediated by somatostatin-positive interneurons. These data are consistent with a model in which L2/3 of V1 computes a difference between an inhibitory visual input and an excitatory locomotion-related input, where the balance between these two inputs is finely tuned by visuomotor experience.


Asunto(s)
Desempeño Psicomotor , Corteza Visual/fisiología , Animales , Retroalimentación Sensorial , Femenino , Interneuronas/citología , Masculino , Ratones , Ratones Endogámicos C57BL , Neuronas/citología , Optogenética , Estimulación Luminosa , Corteza Visual/citología , Percepción Visual
10.
Cell ; 171(5): 1191-1205.e28, 2017 Nov 16.
Artículo en Inglés | MEDLINE | ID: mdl-29149606

RESUMEN

Effective evaluation of costs and benefits is a core survival capacity that in humans is considered as optimal, "rational" decision-making. This capacity is vulnerable in neuropsychiatric disorders and in the aftermath of chronic stress, in which aberrant choices and high-risk behaviors occur. We report that chronic stress exposure in rodents produces abnormal evaluation of costs and benefits resembling non-optimal decision-making in which choices of high-cost/high-reward options are sharply increased. Concomitantly, alterations in the task-related spike activity of medial prefrontal neurons correspond with increased activity of their striosome-predominant striatal projection neuron targets and with decreased and delayed striatal fast-firing interneuron activity. These effects of chronic stress on prefronto-striatal circuit dynamics could be blocked or be mimicked by selective optogenetic manipulation of these circuits. We suggest that altered excitation-inhibition dynamics of striosome-based circuit function could be an underlying mechanism by which chronic stress contributes to disorders characterized by aberrant decision-making under conflict. VIDEO ABSTRACT.


Asunto(s)
Toma de Decisiones , Corteza Prefrontal/fisiopatología , Estrés Fisiológico , Animales , Ganglios Basales/metabolismo , Interneuronas/fisiología , Masculino , Ratones , Ratones Endogámicos C57BL , Vías Nerviosas , Optogenética , Ratas , Ratas Long-Evans
11.
Cell ; 168(1-2): 295-310.e19, 2017 Jan 12.
Artículo en Inglés | MEDLINE | ID: mdl-28041852

RESUMEN

The deep dorsal horn is a poorly characterized spinal cord region implicated in processing low-threshold mechanoreceptor (LTMR) information. We report an array of mouse genetic tools for defining neuronal components and functions of the dorsal horn LTMR-recipient zone (LTMR-RZ), a role for LTMR-RZ processing in tactile perception, and the basic logic of LTMR-RZ organization. We found an unexpectedly high degree of neuronal diversity in the LTMR-RZ: seven excitatory and four inhibitory subtypes of interneurons exhibiting unique morphological, physiological, and synaptic properties. Remarkably, LTMRs form synapses on between four and 11 LTMR-RZ interneuron subtypes, while each LTMR-RZ interneuron subtype samples inputs from at least one to three LTMR classes, as well as spinal cord interneurons and corticospinal neurons. Thus, the LTMR-RZ is a somatosensory processing region endowed with a neuronal complexity that rivals the retina and functions to pattern the activity of ascending touch pathways that underlie tactile perception.


Asunto(s)
Médula Espinal/citología , Médula Espinal/metabolismo , Sinapsis , Animales , Axones/metabolismo , Dendritas/metabolismo , Interneuronas/citología , Interneuronas/metabolismo , Mecanorreceptores/metabolismo , Ratones , Biología Molecular/métodos , Vías Nerviosas , Percepción del Tacto
12.
Cell ; 171(3): 507-521.e17, 2017 Oct 19.
Artículo en Inglés | MEDLINE | ID: mdl-28965758

RESUMEN

The medial entorhinal cortex (MEC) contains several discrete classes of GABAergic interneurons, but their specific contributions to spatial pattern formation in this area remain elusive. We employed a pharmacogenetic approach to silence either parvalbumin (PV)- or somatostatin (SOM)-expressing interneurons while MEC cells were recorded in freely moving mice. PV-cell silencing antagonized the hexagonally patterned spatial selectivity of grid cells, especially in layer II of MEC. The impairment was accompanied by reduced speed modulation in colocalized speed cells. Silencing SOM cells, in contrast, had no impact on grid cells or speed cells but instead decreased the spatial selectivity of cells with discrete aperiodic firing fields. Border cells and head direction cells were not affected by either intervention. The findings point to distinct roles for PV and SOM interneurons in the local dynamics underlying periodic and aperiodic firing in spatially modulated cells of the MEC. VIDEO ABSTRACT.


Asunto(s)
Corteza Entorrinal/citología , Interneuronas/metabolismo , Parvalbúminas/metabolismo , Somatostatina/metabolismo , Procesamiento Espacial , Animales , Neuronas GABAérgicas/metabolismo , Células de Red/citología , Masculino , Ratones , Ratones Endogámicos C57BL , Vías Nerviosas
13.
Cell ; 171(3): 522-539.e20, 2017 Oct 19.
Artículo en Inglés | MEDLINE | ID: mdl-28942923

RESUMEN

Understanding the organizational logic of neural circuits requires deciphering the biological basis of neuronal diversity and identity, but there is no consensus on how neuron types should be defined. We analyzed single-cell transcriptomes of a set of anatomically and physiologically characterized cortical GABAergic neurons and conducted a computational genomic screen for transcriptional profiles that distinguish them from one another. We discovered that cardinal GABAergic neuron types are delineated by a transcriptional architecture that encodes their synaptic communication patterns. This architecture comprises 6 categories of ∼40 gene families, including cell-adhesion molecules, transmitter-modulator receptors, ion channels, signaling proteins, neuropeptides and vesicular release components, and transcription factors. Combinatorial expression of select members across families shapes a multi-layered molecular scaffold along the cell membrane that may customize synaptic connectivity patterns and input-output signaling properties. This molecular genetic framework of neuronal identity integrates cell phenotypes along multiple axes and provides a foundation for discovering and classifying neuron types.


Asunto(s)
Neuronas GABAérgicas/citología , Perfilación de la Expresión Génica , Análisis de la Célula Individual , Animales , Moléculas de Adhesión Celular Neuronal/metabolismo , Matriz Extracelular/metabolismo , Neuronas GABAérgicas/metabolismo , Ratones , Receptores de GABA/metabolismo , Receptores Ionotrópicos de Glutamato/metabolismo , Transducción de Señal , Sinapsis , Transcripción Genética , Zinc/metabolismo , Ácido gamma-Aminobutírico/metabolismo
14.
Annu Rev Neurosci ; 45: 151-175, 2022 07 08.
Artículo en Inglés | MEDLINE | ID: mdl-35803588

RESUMEN

The cerebellar cortex is an important system for relating neural circuits and learning. Its promise reflects the longstanding idea that it contains simple, repeated circuit modules with only a few cell types and a single plasticity mechanism that mediates learning according to classical Marr-Albus models. However, emerging data have revealed surprising diversity in neuron types, synaptic connections, and plasticity mechanisms, both locally and regionally within the cerebellar cortex. In light of these findings, it is not surprising that attempts to generate a holistic model of cerebellar learning across different behaviors have not been successful. While the cerebellum remains an ideal system for linking neuronal function with behavior, it is necessary to update the cerebellar circuit framework to achieve its great promise. In this review, we highlight recent advances in our understanding of cerebellar-cortical cell types, synaptic connections, signaling mechanisms, and forms of plasticity that enrich cerebellar processing.


Asunto(s)
Plasticidad Neuronal , Células de Purkinje , Corteza Cerebelosa/fisiología , Cerebelo , Aprendizaje/fisiología , Plasticidad Neuronal/fisiología , Células de Purkinje/fisiología
15.
Annu Rev Neurosci ; 44: 221-252, 2021 07 08.
Artículo en Inglés | MEDLINE | ID: mdl-33730511

RESUMEN

Many of our daily activities, such as riding a bike to work or reading a book in a noisy cafe, and highly skilled activities, such as a professional playing a tennis match or a violin concerto, depend upon the ability of the brain to quickly make moment-to-moment adjustments to our behavior in response to the results of our actions. Particularly, they depend upon the ability of the neocortex to integrate the information provided by the sensory organs (bottom-up information) with internally generated signals such as expectations or attentional signals (top-down information). This integration occurs in pyramidal cells (PCs) and their long apical dendrite, which branches extensively into a dendritic tuft in layer 1 (L1). The outermost layer of the neocortex, L1 is highly conserved across cortical areas and species. Importantly, L1 is the predominant input layer for top-down information, relayed by a rich, dense mesh of long-range projections that provide signals to the tuft branches of the PCs. Here, we discuss recent progress in our understanding of the composition of L1 and review evidence that L1 processing contributes to functions such as sensory perception, cross-modal integration, controlling states of consciousness, attention, and learning.


Asunto(s)
Neocórtex , Dendritas , Aprendizaje , Células Piramidales
16.
Annu Rev Cell Dev Biol ; 31: 699-720, 2015.
Artículo en Inglés | MEDLINE | ID: mdl-26359774

RESUMEN

The neocortex is the part of the brain responsible for execution of higher-order brain functions, including cognition, sensory perception, and sophisticated motor control. During evolution, the neocortex has developed an unparalleled neuronal diversity, which still remains partly unclassified and unmapped at the functional level. Here, we broadly review the structural blueprint of the neocortex and discuss the current classification of its neuronal diversity. We then cover the principles and mechanisms that build neuronal diversity during cortical development and consider the impact of neuronal class-specific identity in shaping cortical connectivity and function.


Asunto(s)
Mamíferos/fisiología , Neocórtex/fisiología , Red Nerviosa/fisiología , Neuronas/fisiología , Animales , Evolución Biológica , Humanos
17.
EMBO J ; 42(1): e110565, 2023 01 04.
Artículo en Inglés | MEDLINE | ID: mdl-36377476

RESUMEN

Cortical neuronal networks control cognitive output, but their composition and modulation remain elusive. Here, we studied the morphological and transcriptional diversity of cortical cholinergic VIP/ChAT interneurons (VChIs), a sparse population with a largely unknown function. We focused on VChIs from the whole barrel cortex and developed a high-throughput automated reconstruction framework, termed PopRec, to characterize hundreds of VChIs from each mouse in an unbiased manner, while preserving 3D cortical coordinates in multiple cleared mouse brains, accumulating thousands of cells. We identified two fundamentally distinct morphological types of VChIs, bipolar and multipolar that differ in their cortical distribution and general morphological features. Following mild unilateral whisker deprivation on postnatal day seven, we found after three weeks both ipsi- and contralateral dendritic arborization differences and modified cortical depth and distribution patterns in the barrel fields alone. To seek the transcriptomic drivers, we developed NuNeX, a method for isolating nuclei from fixed tissues, to explore sorted VChIs. This highlighted differentially expressed neuronal structural transcripts, altered exitatory innervation pathways and established Elmo1 as a key regulator of morphology following deprivation.


Asunto(s)
Lóbulo Parietal , Transcriptoma , Ratones , Animales , Interneuronas/fisiología , Colina O-Acetiltransferasa , Colinérgicos/metabolismo , Células Receptoras Sensoriales/metabolismo , Proteínas Adaptadoras Transductoras de Señales/metabolismo
18.
Development ; 151(10)2024 May 15.
Artículo en Inglés | MEDLINE | ID: mdl-38804879

RESUMEN

Dorsal interneurons (dIs) in the spinal cord encode the perception of touch, pain, heat, itchiness and proprioception. Previous studies using genetic strategies in animal models have revealed important insights into dI development, but the molecular details of how dIs arise as distinct populations of neurons remain incomplete. We have developed a resource to investigate dI fate specification by combining a single-cell RNA-Seq atlas of mouse embryonic stem cell-derived dIs with pseudotime analyses. To validate this in silico resource as a useful tool, we used it to first identify genes that are candidates for directing the transition states that lead to distinct dI lineage trajectories, and then validated them using in situ hybridization analyses in the developing mouse spinal cord in vivo. We have also identified an endpoint of the dI5 lineage trajectory and found that dIs become more transcriptionally homogeneous during terminal differentiation. This study introduces a valuable tool for further discovery about the timing of gene expression during dI differentiation and demonstrates its utility in clarifying dI lineage relationships.


Asunto(s)
Diferenciación Celular , Linaje de la Célula , Regulación del Desarrollo de la Expresión Génica , Interneuronas , Médula Espinal , Animales , Ratones , Médula Espinal/metabolismo , Médula Espinal/embriología , Linaje de la Célula/genética , Interneuronas/metabolismo , Interneuronas/citología , Diferenciación Celular/genética , Análisis de la Célula Individual , Células Madre Embrionarias de Ratones/metabolismo , Células Madre Embrionarias de Ratones/citología , RNA-Seq
19.
Development ; 151(19)2024 Oct 01.
Artículo en Inglés | MEDLINE | ID: mdl-39250350

RESUMEN

Dorsal neural tube-derived retinoic acid promotes the end of neural crest production and transition into a definitive roof plate. Here, we analyze how this impacts the segregation of central and peripheral lineages, a process essential for tissue patterning and function. Localized in ovo inhibition in quail embryos of retinoic acid activity followed by single-cell transcriptomics unraveled a comprehensive list of differentially expressed genes relevant to these processes. Importantly, progenitors co-expressed neural crest, roof plate and dI1 interneuron markers, indicating a failure in proper lineage segregation. Furthermore, separation between roof plate and dI1 interneurons is mediated by Notch activity downstream of retinoic acid, highlighting their crucial role in establishing the roof plate-dI1 boundary. Within the peripheral branch, where absence of retinoic acid resulted in neural crest production and emigration extending into the roof plate stage, sensory progenitors failed to separate from melanocytes, leading to formation of a common glia-melanocyte cell with aberrant migratory patterns. In summary, the implementation of single-cell RNA sequencing facilitated the discovery and characterization of a molecular mechanism responsible for the segregation of dorsal neural fates during development.


Asunto(s)
Cresta Neural , Tretinoina , Animales , Tretinoina/metabolismo , Tretinoina/farmacología , Cresta Neural/metabolismo , Cresta Neural/citología , Regulación del Desarrollo de la Expresión Génica , Codorniz/embriología , Movimiento Celular , Receptores Notch/metabolismo , Linaje de la Célula , Tipificación del Cuerpo/genética , Tipificación del Cuerpo/efectos de los fármacos , Placa Neural/metabolismo , Placa Neural/embriología , Interneuronas/metabolismo , Interneuronas/citología , Análisis de la Célula Individual , Tubo Neural/embriología , Tubo Neural/metabolismo , Diferenciación Celular , Melanocitos/metabolismo , Melanocitos/citología
20.
Proc Natl Acad Sci U S A ; 121(41): e2410828121, 2024 Oct 08.
Artículo en Inglés | MEDLINE | ID: mdl-39365823

RESUMEN

Striatal acetylcholine and dopamine critically regulate movement, motivation, and reward-related learning. Pauses in cholinergic interneuron (CIN) firing are thought to coincide with dopamine pulses encoding reward prediction errors (RPE) to jointly enable synaptic plasticity. Here, we examine the firing of identified CINs during reward-guided decision-making in freely moving rats and compare this firing to dopamine release. Relationships between CINs, dopamine, and behavior varied strongly by subregion. In the dorsal-lateral striatum, a Go! cue evoked burst-pause CIN spiking, followed by a brief dopamine pulse that was unrelated to RPE. In the dorsal-medial striatum, this cue evoked only a CIN pause, that was curtailed by a movement-selective rebound in firing. Finally, in the ventral striatum, a reward cue evoked RPE-coding increases in both dopamine and CIN firing, without a consistent pause. Our results demonstrate a spatial and temporal dissociation between CIN pauses and dopamine RPE signals and will inform future models of striatal information processing under both normal and pathological conditions.


Asunto(s)
Dopamina , Recompensa , Animales , Dopamina/metabolismo , Ratas , Masculino , Cuerpo Estriado/metabolismo , Cuerpo Estriado/fisiología , Neuronas Colinérgicas/fisiología , Neuronas Colinérgicas/metabolismo , Ratas Long-Evans , Interneuronas/metabolismo , Interneuronas/fisiología , Acetilcolina/metabolismo , Potenciales de Acción/fisiología
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