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1.
Sci Adv ; 10(19): eadj9911, 2024 May 10.
Artículo en Inglés | MEDLINE | ID: mdl-38728406

RESUMEN

During cerebral cortex development, excitatory pyramidal neurons (PNs) establish specific projection patterns while receiving inputs from GABAergic inhibitory interneurons (INs). Whether these inhibitory inputs can shape PNs' projection patterns is, however, unknown. While layer 4 (L4) PNs of the primary somatosensory (S1) cortex are all born as long-range callosal projection neurons (CPNs), most of them acquire local connectivity upon activity-dependent elimination of their interhemispheric axons during postnatal development. Here, we demonstrate that precise developmental regulation of inhibition is key for the retraction of S1L4 PNs' callosal projections. Ablation of somatostatin INs leads to premature inhibition from parvalbumin INs onto S1L4 PNs and prevents them from acquiring their barrel-restricted local connectivity pattern. As a result, adult S1L4 PNs retain interhemispheric projections responding to tactile stimuli, and the mice lose whisker-based texture discrimination. Overall, we show that temporally ordered IN activity during development is key to shaping local ipsilateral S1L4 PNs' projection pattern, which is required for fine somatosensory processing.


Asunto(s)
Neuronas GABAérgicas , Interneuronas , Corteza Somatosensorial , Animales , Interneuronas/metabolismo , Interneuronas/fisiología , Interneuronas/citología , Neuronas GABAérgicas/metabolismo , Neuronas GABAérgicas/fisiología , Neuronas GABAérgicas/citología , Corteza Somatosensorial/fisiología , Corteza Somatosensorial/metabolismo , Corteza Somatosensorial/citología , Ratones , Células Piramidales/metabolismo , Células Piramidales/fisiología , Parvalbúminas/metabolismo
2.
ACS Chem Neurosci ; 15(10): 1951-1966, 2024 May 15.
Artículo en Inglés | MEDLINE | ID: mdl-38696478

RESUMEN

Aims: the study aimed to (i) use adeno-associated virus technology to modulate parvalbumin (PV) gene expression, both through overexpression and silencing, within the hippocampus of male mice and (ii) assess the impact of PV on the metabolic pathway of glutamate and γ-aminobutyric acid (GABA). Methods: a status epilepticus (SE) mouse model was established by injecting kainic acid into the hippocampus of transgenic mice. When the seizures of mice reached SE, the mice were killed at that time point and 30 min after the onset of SE. Hippocampal tissues were extracted and the mRNA and protein levels of PV and the 65 kDa (GAD65) and 67 kDa (GAD67) isoforms of glutamate decarboxylase were assessed using real-time quantitative polymerase chain reaction and Western blot, respectively. The concentrations of glutamate and GABA were detected with high-performance liquid chromatography (HPLC), and the intracellular calcium concentration was detected using flow cytometry. Results: we demonstrate that the expression of PV is associated with GAD65 and GAD67 and that PV regulates the levels of GAD65 and GAD67. PV was correlated with calcium concentration and GAD expression. Interestingly, PV overexpression resulted in a reduction in calcium ion concentration, upregulation of GAD65 and GAD67, elevation of GABA concentration, reduction in glutamate concentration, and an extension of seizure latency. Conversely, PV silencing induced the opposite effects. Conclusion: parvalbumin may affect the expression of GAD65 and GAD67 by regulating calcium ion concentration, thereby affecting the metabolic pathways associated with glutamate and GABA. In turn, this contributes to the regulation of seizure activity.


Asunto(s)
Calcio , Glutamato Descarboxilasa , Ácido Glutámico , Ácido Kaínico , Ratones Transgénicos , Parvalbúminas , Estado Epiléptico , Ácido gamma-Aminobutírico , Animales , Parvalbúminas/metabolismo , Glutamato Descarboxilasa/metabolismo , Estado Epiléptico/metabolismo , Estado Epiléptico/inducido químicamente , Ácido gamma-Aminobutírico/metabolismo , Ácido Glutámico/metabolismo , Masculino , Calcio/metabolismo , Ratones , Hipocampo/metabolismo , Modelos Animales de Enfermedad
3.
eNeuro ; 11(5)2024 May.
Artículo en Inglés | MEDLINE | ID: mdl-38658137

RESUMEN

The primary motor cortex (M1) integrates sensory and cognitive inputs to generate voluntary movement. Its functional impairments have been implicated in the pathophysiology of motor symptoms in Parkinson's disease (PD). Specifically, dopaminergic degeneration and basal ganglia dysfunction entrain M1 neurons into the abnormally synchronized bursting pattern of activity throughout the cortico-basal ganglia-thalamocortical network. However, how degeneration of the midbrain dopaminergic neurons affects the anatomy, microcircuit connectivity, and function of the M1 network remains poorly understood. The present study examined whether and how the loss of dopamine (DA) affects the morphology, cellular excitability, and synaptic physiology of Layer 5 parvalbumin-expressing (PV+) cells in the M1 of mice of both sexes. Here, we reported that loss of midbrain dopaminergic neurons does not alter the number, morphology, and physiology of Layer 5 PV+ cells in M1. Moreover, we demonstrated that the number of perisomatic PV+ puncta of M1 pyramidal neurons as well as their functional innervation of cortical pyramidal neurons were not altered following the loss of DA. Together, the present study documents an intact GABAergic inhibitory network formed by PV+ cells following the loss of midbrain dopaminergic neurons.


Asunto(s)
Neuronas Dopaminérgicas , Interneuronas , Mesencéfalo , Ratones Transgénicos , Corteza Motora , Parvalbúminas , Animales , Parvalbúminas/metabolismo , Corteza Motora/metabolismo , Neuronas Dopaminérgicas/metabolismo , Interneuronas/metabolismo , Masculino , Femenino , Mesencéfalo/metabolismo , Neuronas GABAérgicas/metabolismo , Ratones Endogámicos C57BL , Ratones , Inhibición Neural/fisiología
4.
eNeuro ; 11(5)2024 May.
Artículo en Inglés | MEDLINE | ID: mdl-38637152

RESUMEN

Canonically, action potentials of most mammalian neurons initiate at the axon initial segment (AIS) and propagate bidirectionally: orthodromically along the distal axon and retrogradely into the soma and dendrites. Under some circumstances, action potentials may initiate ectopically, at sites distal to the AIS, and propagate antidromically along the axon. These "ectopic action potentials" (EAPs) have been observed in experimental models of seizures and chronic pain, and more rarely in nonpathological forebrain neurons. Here we report that a large majority of parvalbumin-expressing (PV+) interneurons in the upper layers of mouse neocortex, from both orbitofrontal and primary somatosensory areas, fire EAPs after sufficient activation of their somata. Somatostatin-expressing interneurons also fire EAPs, though less robustly. Ectopic firing in PV+ cells occurs in varying temporal patterns and can persist for several seconds. PV+ cells evoke strong synaptic inhibition in pyramidal neurons and interneurons and play critical roles in cortical function. Our results suggest that ectopic spiking of PV+ interneurons is common and may contribute to both normal and pathological network functions of the neocortex.


Asunto(s)
Potenciales de Acción , Interneuronas , Ratones Transgénicos , Neocórtex , Parvalbúminas , Animales , Parvalbúminas/metabolismo , Interneuronas/fisiología , Interneuronas/metabolismo , Neocórtex/fisiología , Potenciales de Acción/fisiología , Masculino , Ratones , Femenino , Ratones Endogámicos C57BL , Células Piramidales/fisiología , Somatostatina/metabolismo
5.
Dis Model Mech ; 17(5)2024 May 01.
Artículo en Inglés | MEDLINE | ID: mdl-38616770

RESUMEN

Dystonia is thought to arise from abnormalities in the motor loop of the basal ganglia; however, there is an ongoing debate regarding cerebellar involvement. We adopted an established cerebellar dystonia mouse model by injecting ouabain to examine the contribution of the cerebellum. Initially, we examined whether the entopeduncular nucleus (EPN), substantia nigra pars reticulata (SNr), globus pallidus externus (GPe) and striatal neurons were activated in the model. Next, we examined whether administration of a dopamine D1 receptor agonist and dopamine D2 receptor antagonist or selective ablation of striatal parvalbumin (PV, encoded by Pvalb)-expressing interneurons could modulate the involuntary movements of the mice. The cerebellar dystonia mice had a higher number of cells positive for c-fos (encoded by Fos) in the EPN, SNr and GPe, as well as a higher positive ratio of c-fos in striatal PV interneurons, than those in control mice. Furthermore, systemic administration of combined D1 receptor agonist and D2 receptor antagonist and selective ablation of striatal PV interneurons relieved the involuntary movements of the mice. Abnormalities in the motor loop of the basal ganglia could be crucially involved in cerebellar dystonia, and modulating PV interneurons might provide a novel treatment strategy.


Asunto(s)
Cuerpo Estriado , Modelos Animales de Enfermedad , Distonía , Interneuronas , Parvalbúminas , Proteínas Proto-Oncogénicas c-fos , Receptores de Dopamina D2 , Animales , Interneuronas/metabolismo , Interneuronas/efectos de los fármacos , Parvalbúminas/metabolismo , Proteínas Proto-Oncogénicas c-fos/metabolismo , Distonía/patología , Distonía/metabolismo , Distonía/fisiopatología , Cuerpo Estriado/patología , Cuerpo Estriado/metabolismo , Receptores de Dopamina D2/metabolismo , Receptores de Dopamina D1/metabolismo , Cerebelo/patología , Cerebelo/metabolismo , Ouabaína/farmacología , Ratones Endogámicos C57BL , Ratones , Masculino
6.
Nat Commun ; 15(1): 2823, 2024 Apr 01.
Artículo en Inglés | MEDLINE | ID: mdl-38561349

RESUMEN

Dysfunction in fast-spiking parvalbumin interneurons (PV-INs) may represent an early pathophysiological perturbation in Alzheimer's Disease (AD). Defining early proteomic alterations in PV-INs can provide key biological and translationally-relevant insights. We used cell-type-specific in-vivo biotinylation of proteins (CIBOP) coupled with mass spectrometry to obtain native-state PV-IN proteomes. PV-IN proteomic signatures include high metabolic and translational activity, with over-representation of AD-risk and cognitive resilience-related proteins. In bulk proteomes, PV-IN proteins were associated with cognitive decline in humans, and with progressive neuropathology in humans and the 5xFAD mouse model of Aß pathology. PV-IN CIBOP in early stages of Aß pathology revealed signatures of increased mitochondria and metabolism, synaptic and cytoskeletal disruption and decreased mTOR signaling, not apparent in whole-brain proteomes. Furthermore, we demonstrated pre-synaptic defects in PV-to-excitatory neurotransmission, validating our proteomic findings. Overall, in this study we present native-state proteomes of PV-INs, revealing molecular insights into their unique roles in cognitive resiliency and AD pathogenesis.


Asunto(s)
Enfermedad de Alzheimer , Ratones , Humanos , Animales , Enfermedad de Alzheimer/metabolismo , Parvalbúminas/metabolismo , Proteómica , Proteoma/metabolismo , Interneuronas/metabolismo , Ratones Transgénicos
7.
Cereb Cortex ; 34(4)2024 Apr 01.
Artículo en Inglés | MEDLINE | ID: mdl-38572735

RESUMEN

Many studies indicate a broad role of various classes of GABAergic interneurons in the processes related to learning. However, little is known about how the learning process affects intrinsic excitability of specific classes of interneurons in the neocortex. To determine this, we employed a simple model of conditional learning in mice where vibrissae stimulation was used as a conditioned stimulus and a tail shock as an unconditioned one. In vitro whole-cell patch-clamp recordings showed an increase in intrinsic excitability of low-threshold spiking somatostatin-expressing interneurons (SST-INs) in layer 4 (L4) of the somatosensory (barrel) cortex after the conditioning paradigm. In contrast, pseudoconditioning reduced intrinsic excitability of SST-LTS, parvalbumin-expressing interneurons (PV-INs), and vasoactive intestinal polypeptide-expressing interneurons (VIP-INs) with accommodating pattern in L4 of the barrel cortex. In general, increased intrinsic excitability was accompanied by narrowing of action potentials (APs), whereas decreased intrinsic excitability coincided with AP broadening. Altogether, these results show that both conditioning and pseudoconditioning lead to plastic changes in intrinsic excitability of GABAergic interneurons in a cell-specific manner. In this way, changes in intrinsic excitability can be perceived as a common mechanism of learning-induced plasticity in the GABAergic system.


Asunto(s)
Neocórtex , Ratones , Animales , Neocórtex/metabolismo , Interneuronas/fisiología , Aprendizaje/fisiología , Condicionamiento Clásico/fisiología , Parvalbúminas/metabolismo
8.
Biomolecules ; 14(4)2024 Apr 10.
Artículo en Inglés | MEDLINE | ID: mdl-38672480

RESUMEN

Early adversity, the loss of the inhibitory GABAergic interneuron parvalbumin, and elevated neuroinflammation are associated with depression. Individuals with a maltreatment history initiate medicinal cannabis use earlier in life than non-maltreated individuals, suggesting self-medication. Female rats underwent maternal separation (MS) between 2 and 20 days of age to model early adversity or served as colony controls. The prelimbic cortex and behavior were examined to determine whether MS alters the cannabinoid receptor 2 (CB2), which has anti-inflammatory properties. A reduction in the CB2-associated regulatory enzyme MARCH7 leading to increased NLRP3 was observed with Western immunoblots in MS females. Immunohistochemistry with stereology quantified numbers of parvalbumin-immunoreactive cells and CB2 at 25, 40, and 100 days of age, revealing that the CB2 receptor associated with PV neurons initially increases at P25 and subsequently decreases by P40 in MS animals, with no change in controls. Confocal and triple-label microscopy suggest colocalization of these CB2 receptors to microglia wrapped around the parvalbumin neuron. Depressive-like behavior in MS animals was elevated at P40 and reduced with the CB2 agonist HU-308 or a CB2-overexpressing lentivirus microinjected into the prelimbic cortex. These results suggest that increasing CB2 expression by P40 in the prelimbic cortex prevents depressive behavior in MS female rats.


Asunto(s)
Depresión , Privación Materna , Receptor Cannabinoide CB2 , Estrés Psicológico , Animales , Femenino , Receptor Cannabinoide CB2/metabolismo , Ratas , Depresión/metabolismo , Estrés Psicológico/metabolismo , Parvalbúminas/metabolismo , Conducta Animal , Ratas Sprague-Dawley , Cannabinoides/farmacología
9.
Cell Rep ; 43(4): 114115, 2024 Apr 23.
Artículo en Inglés | MEDLINE | ID: mdl-38607918

RESUMEN

In the CA1 hippocampus, vasoactive intestinal polypeptide-expressing interneurons (VIP-INs) play a prominent role in disinhibitory circuit motifs. However, the specific behavioral conditions that lead to circuit disinhibition remain uncertain. To investigate the behavioral relevance of VIP-IN activity, we employed wireless technologies allowing us to monitor and manipulate their function in freely behaving mice. Our findings reveal that, during spatial exploration in new environments, VIP-INs in the CA1 hippocampal region become highly active, facilitating the rapid encoding of novel spatial information. Remarkably, both VIP-INs and pyramidal neurons (PNs) exhibit increased activity when encountering novel changes in the environment, including context- and object-related alterations. Concurrently, somatostatin- and parvalbumin-expressing inhibitory populations show an inverse relationship with VIP-IN and PN activity, revealing circuit disinhibition that occurs on a timescale of seconds. Thus, VIP-IN-mediated disinhibition may constitute a crucial element in the rapid encoding of novelty and the acquisition of recognition memory.


Asunto(s)
Región CA1 Hipocampal , Interneuronas , Reconocimiento en Psicología , Péptido Intestinal Vasoactivo , Animales , Interneuronas/metabolismo , Interneuronas/fisiología , Péptido Intestinal Vasoactivo/metabolismo , Región CA1 Hipocampal/fisiología , Región CA1 Hipocampal/metabolismo , Región CA1 Hipocampal/citología , Ratones , Masculino , Reconocimiento en Psicología/fisiología , Células Piramidales/metabolismo , Células Piramidales/fisiología , Ratones Endogámicos C57BL , Memoria/fisiología , Parvalbúminas/metabolismo , Conducta Exploratoria/fisiología , Somatostatina/metabolismo
10.
Biochem Soc Trans ; 52(2): 553-565, 2024 Apr 24.
Artículo en Inglés | MEDLINE | ID: mdl-38563502

RESUMEN

Given the current paucity of effective treatments in many neurological disorders, delineating pathophysiological mechanisms among the major psychiatric and neurodegenerative diseases may fuel the development of novel, potent treatments that target shared pathways. Recent evidence suggests that various pathological processes, including bioenergetic failure in mitochondria, can perturb the function of fast-spiking, parvalbumin-positive neurons (PV+). These inhibitory neurons critically influence local circuit regulation, the generation of neuronal network oscillations and complex brain functioning. Here, we survey PV+ cell vulnerability in the major neuropsychiatric, and neurodegenerative diseases and review associated cellular and molecular pathophysiological alterations purported to underlie disease aetiology.


Asunto(s)
Mitocondrias , Enfermedades Neurodegenerativas , Neuronas , Parvalbúminas , Humanos , Parvalbúminas/metabolismo , Enfermedades Neurodegenerativas/metabolismo , Mitocondrias/metabolismo , Animales , Neuronas/metabolismo , Enfermedades del Sistema Nervioso/metabolismo , Encéfalo/metabolismo
11.
Nature ; 629(8011): 402-409, 2024 May.
Artículo en Inglés | MEDLINE | ID: mdl-38632412

RESUMEN

Throughout life, neuronal networks in the mammalian neocortex maintain a balance of excitation and inhibition, which is essential for neuronal computation1,2. Deviations from a balanced state have been linked to neurodevelopmental disorders, and severe disruptions result in epilepsy3-5. To maintain balance, neuronal microcircuits composed of excitatory and inhibitory neurons sense alterations in neural activity and adjust neuronal connectivity and function. Here we identify a signalling pathway in the adult mouse neocortex that is activated in response to increased neuronal network activity. Overactivation of excitatory neurons is signalled to the network through an increase in the levels of BMP2, a growth factor that is well known for its role as a morphogen in embryonic development. BMP2 acts on parvalbumin-expressing (PV) interneurons through the transcription factor SMAD1, which controls an array of glutamatergic synapse proteins and components of perineuronal nets. PV-interneuron-specific disruption of BMP2-SMAD1 signalling is accompanied by a loss of glutamatergic innervation in PV cells, underdeveloped perineuronal nets and decreased excitability. Ultimately, this impairment of the functional recruitment of PV interneurons disrupts the cortical excitation-inhibition balance, with mice exhibiting spontaneous epileptic seizures. Our findings suggest that developmental morphogen signalling is repurposed to stabilize cortical networks in the adult mammalian brain.


Asunto(s)
Proteína Morfogenética Ósea 2 , Interneuronas , Neocórtex , Parvalbúminas , Transducción de Señal , Proteína Smad1 , Animales , Proteína Smad1/metabolismo , Ratones , Interneuronas/metabolismo , Neocórtex/metabolismo , Neocórtex/citología , Parvalbúminas/metabolismo , Proteína Morfogenética Ósea 2/metabolismo , Masculino , Femenino , Neuronas/metabolismo , Inhibición Neural , Epilepsia/metabolismo , Epilepsia/fisiopatología , Sinapsis/metabolismo , Red Nerviosa/metabolismo
12.
J Physiol ; 602(8): 1733-1757, 2024 Apr.
Artículo en Inglés | MEDLINE | ID: mdl-38493320

RESUMEN

Differentiating between auditory signals of various emotional significance plays a crucial role in an individual's ability to thrive and excel in social interactions and in survival. Multiple approaches, including anatomical studies, electrophysiological investigations, imaging techniques, optogenetics and chemogenetics, have confirmed that the auditory cortex (AC) impacts fear-related behaviours driven by auditory stimuli by conveying auditory information to the lateral amygdala (LA) through long-range excitatory glutamatergic and GABAergic connections. In addition, the LA provides glutamatergic projections to the AC which are important to fear memory expression and are modified by associative fear learning. Here we test the hypothesis that the LA also sends long-range direct inhibitory inputs to the cortex. To address this fundamental question, we used anatomical and electrophysiological approaches, allowing us to directly assess the nature of GABAergic inputs from the LA to the AC in the mouse. Our findings elucidate the existence of a long-range inhibitory pathway from the LA to the AC (LAC) via parvalbumin-expressing (LAC-Parv) and somatostatin-expressing (LAC-SOM) neurons. This research identifies distinct electrophysiological properties for genetically defined long-range GABAergic neurons involved in the communication between the LA and the cortex (LAC-Parv inhibitory projections → AC neurons; LAC-Som inhibitory projections → AC neurons) within the lateral amygdala cortical network. KEY POINTS: The mouse auditory cortex receives inputs from the lateral amygdala. Retrograde viral tracing techniques allowed us to identify two previously undescribed lateral amygdala to auditory cortex (LAC) GABAergic projecting neurons. Extensive electrophysiological, morphological and anatomical characterization of LAC neurons is provided here, demonstrating key differences in the three populations. This study paves the way for a better understanding of the growing complexity of the cortico-amygdala-cortico circuit.


Asunto(s)
Corteza Auditiva , Ratones , Animales , Corteza Auditiva/fisiología , Amígdala del Cerebelo/fisiología , Neuronas GABAérgicas/fisiología , Parvalbúminas/metabolismo
13.
Eur Neuropsychopharmacol ; 82: 44-52, 2024 May.
Artículo en Inglés | MEDLINE | ID: mdl-38490084

RESUMEN

Parvalbumin-expressing (PV+) interneurons represent one of the most abundant subclasses of cortical interneurons. Owing to their specific electrophysiological and synaptic properties, PV+ interneurons are essential for gating and pacing the activity of excitatory neurons. In particular, PV+ interneurons are critically involved in generating and maintaining cortical rhythms in the gamma frequency, which are essential for complex cognitive functions. Deficits in PV+ interneurons have been frequently reported in postmortem studies of schizophrenia patients, and alterations in gamma oscillations are a prominent electrophysiological feature of the disease. Here, I summarise the main features of PV+ interneurons and review clinical and preclinical studies linking the developmental dysfunction of cortical PV+ interneurons with the pathophysiology of schizophrenia.


Asunto(s)
Interneuronas , Parvalbúminas , Esquizofrenia , Interneuronas/fisiología , Parvalbúminas/metabolismo , Esquizofrenia/fisiopatología , Esquizofrenia/patología , Humanos , Animales , Ritmo Gamma/fisiología
14.
Cereb Cortex ; 34(3)2024 03 01.
Artículo en Inglés | MEDLINE | ID: mdl-38521994

RESUMEN

Fragile X syndrome is a genetic neurodevelopmental disorder caused by a mutation of the fragile X messenger ribonucleoprotein 1 (FMR1) gene in the X chromosome. Many fragile X syndrome cases present with autism spectrum disorder and fragile X syndrome cases account for up to 5% of all autism spectrum disorder cases. The cellular composition of the fragile X syndrome cortex is not well known. We evaluated alterations in the number of Calbindin, Calretinin, and Parvalbumin expressing interneurons across 5 different cortical areas, medial prefrontal cortex (BA46), primary somatosensory cortex (BA3), primary motor cortex (BA4), superior temporal cortex (BA22), and anterior cingulate cortex (BA24) of fragile X syndrome and neurotypical brains. Compared with neurotypical cases, fragile X syndrome brains displayed a significant reduction in the number of PV+ interneurons in all areas and of CR+ interneurons in BA22 and BA3. The number of CB+ interneurons did not differ. These findings are the first to demonstrate that fragile X syndrome brains are characterized by cortical wide PV+ interneuron deficits across multiple cortical areas. These add to the idea that deficits in PV+ interneurons could disrupt the cortical balance and promote clinical deficits in fragile X syndrome patients and help to develop novel therapies for neurodevelopmental disorders like fragile X syndrome and autism spectrum disorder.


Asunto(s)
Trastorno del Espectro Autista , Síndrome del Cromosoma X Frágil , Humanos , Parvalbúminas/metabolismo , Síndrome del Cromosoma X Frágil/genética , Interneuronas/fisiología , Corteza Prefrontal/metabolismo , Proteína de la Discapacidad Intelectual del Síndrome del Cromosoma X Frágil/genética
15.
Neuron ; 112(6): 868-869, 2024 Mar 20.
Artículo en Inglés | MEDLINE | ID: mdl-38513616

RESUMEN

In this issue of Neuron, Znamenskiy et al.1 unveil functional connection specificity between PV+ inhibitory interneurons and excitatory pyramidal neurons in mouse visual cortex, providing a circuit mechanism for stable amplification of cortical subpopulations.


Asunto(s)
Neuronas , Corteza Visual , Ratones , Animales , Neuronas/fisiología , Células Piramidales/fisiología , Interneuronas/fisiología , Corteza Visual/fisiología , Parvalbúminas/metabolismo
16.
Curr Biol ; 34(7): 1561-1568.e4, 2024 Apr 08.
Artículo en Inglés | MEDLINE | ID: mdl-38479389

RESUMEN

The basolateral amygdala (BLA) mediates both fear and reward learning.1,2 Previous work has shown that parvalbumin (PV) interneurons in the BLA contribute to BLA oscillatory states integral to fear expression.3,4,5,6,7 However, despite it being critical to our understanding of reward behaviors, it is unknown whether BLA oscillatory states and PV interneurons similarly contribute to reward processing. Local field potentials in the BLA were collected as male and female mice consumed sucrose reward, where prominent changes in the beta band (15-30 Hz) emerged with reward experience. During consumption of one water bottle during a two-water-bottle choice test, rhythmic optogenetic stimulation of BLA PVs produced a robust bottle preference, showing that PVs can sufficiently drive reward seeking. Finally, to demonstrate that PV activity is necessary for reward value use, PVs were chemogenetically inhibited following outcome devaluation, rendering mice incapable of using updated reward representations to guide their behavior. Taken together, these experiments provide novel information about the physiological signatures of reward while highlighting BLA PV interneuron contributions to behaviors that are BLA dependent. This work builds upon established knowledge of PV involvement in fear expression and provides evidence that PV orchestration of unique BLA network states is involved in both learning types.


Asunto(s)
Complejo Nuclear Basolateral , Ratones , Masculino , Femenino , Animales , Complejo Nuclear Basolateral/fisiología , Parvalbúminas/metabolismo , Aprendizaje/fisiología , Interneuronas/metabolismo , Recompensa
17.
Basic Clin Pharmacol Toxicol ; 134(5): 614-628, 2024 May.
Artículo en Inglés | MEDLINE | ID: mdl-38426366

RESUMEN

The brain extracellular matrix (ECM) has garnered increasing attention as a fundamental component of brain function in a predominantly "neuron-centric" paradigm. Particularly, the perineuronal nets (PNNs), a specialized net-like structure formed by ECM aggregates, play significant roles in brain development and physiology. PNNs enwrap synaptic junctions in various brain regions, precisely balancing new synaptic formation and long-term stabilization, and are highly dynamic entities that change in response to environmental stimuli, especially during the neurodevelopmental period. They are found mainly surrounding parvalbumin (PV)-expressing GABAergic interneurons, being proposed to promote PV interneuron maturation and protect them against oxidative stress and neurotoxic agents. This structural and functional proximity underscores the crucial role of PNNs in modulating PV interneuron function, which is critical for the excitatory/inhibitory balance and, consequently, higher-level behaviours. This review delves into the molecular underpinnings governing PNNs formation and degradation, elucidating their functional interactions with PV interneurons. In the broader physiological context and brain-related disorders, we also explore their intricate relationship with other molecules, such as reactive oxygen species and metalloproteinases, as well as glial cells. Additionally, we discuss potential therapeutic strategies for modulating PNNs in brain disorders.


Asunto(s)
Interneuronas , Parvalbúminas , Parvalbúminas/metabolismo , Interneuronas/metabolismo , Matriz Extracelular/metabolismo , Neuronas/metabolismo , Encéfalo/metabolismo
18.
Nature ; 627(8005): 830-838, 2024 Mar.
Artículo en Inglés | MEDLINE | ID: mdl-38448588

RESUMEN

Airway integrity must be continuously maintained throughout life. Sensory neurons guard against airway obstruction and, on a moment-by-moment basis, enact vital reflexes to maintain respiratory function1,2. Decreased lung capacity is common and life-threatening across many respiratory diseases, and lung collapse can be acutely evoked by chest wall trauma, pneumothorax or airway compression. Here we characterize a neuronal reflex of the vagus nerve evoked by airway closure that leads to gasping. In vivo vagal ganglion imaging revealed dedicated sensory neurons that detect airway compression but not airway stretch. Vagal neurons expressing PVALB mediate airway closure responses and innervate clusters of lung epithelial cells called neuroepithelial bodies (NEBs). Stimulating NEBs or vagal PVALB neurons evoked gasping in the absence of airway threats, whereas ablating NEBs or vagal PVALB neurons eliminated gasping in response to airway closure. Single-cell RNA sequencing revealed that NEBs uniformly express the mechanoreceptor PIEZO2, and targeted knockout of Piezo2 in NEBs eliminated responses to airway closure. NEBs were dispensable for the Hering-Breuer inspiratory reflex, which indicated that discrete terminal structures detect airway closure and inflation. Similar to the involvement of Merkel cells in touch sensation3,4, NEBs are PIEZO2-expressing epithelial cells and, moreover, are crucial for an aspect of lung mechanosensation. These findings expand our understanding of neuronal diversity in the airways and reveal a dedicated vagal pathway that detects airway closure to help preserve respiratory function.


Asunto(s)
Pulmón , Reflejo , Respiración , Mecánica Respiratoria , Nervio Vago , Animales , Femenino , Masculino , Ratones , Células Epiteliales/metabolismo , Pulmón/citología , Pulmón/inervación , Pulmón/fisiología , Mecanorreceptores/metabolismo , Parvalbúminas/metabolismo , Reflejo/fisiología , Células Receptoras Sensoriales/metabolismo , Nervio Vago/fisiología , Rendimiento Pulmonar/fisiología , Mecánica Respiratoria/fisiología
19.
Neurobiol Dis ; 194: 106482, 2024 May.
Artículo en Inglés | MEDLINE | ID: mdl-38522590

RESUMEN

A growing number of clinical and animal studies suggest that the nucleus accumbens (NAc), especially the shell, is involved in the pathogenesis of temporal lobe epilepsy (TLE). However, the role of parvalbumin (PV) GABAergic neurons in the NAc shell involved in TLE is still unclear. In this study, we induced a spontaneous TLE model by intrahippocampal administration of kainic acid (KA), which generally induce acute seizures in first 2 h (acute phase) and then lead to spontaneous recurrent seizures after two months (chronic phase). We found that chemogenetic activation of NAc shell PV neurons could alleviate TLE seizures by reducing the number and period of focal seizures (FSs) and secondary generalized seizures (sGSs), while selective inhibition of PV exacerbated seizure activity. Ruby-virus mapping results identified that the hippocampus (ventral and dorsal) is one of the projection targets of NAc shell PV neurons. Chemogenetic activation of the NAc-Hip PV projection fibers can mitigate seizures while inhibition has no effect on seizure ictogenesis. In summary, our findings reveal that PV neurons in the NAc shell could modulate the seizures in TLE via a long-range NAc-Hip circuit. All of these results enriched the investigation between NAc and epilepsy, offering new targets for future epileptogenesis research and precision therapy.


Asunto(s)
Epilepsia del Lóbulo Temporal , Animales , Epilepsia del Lóbulo Temporal/patología , Núcleo Accumbens/metabolismo , Parvalbúminas/metabolismo , Convulsiones/patología , Hipocampo/patología , Neuronas GABAérgicas/metabolismo , Ácido Kaínico/toxicidad , Modelos Animales de Enfermedad
20.
J Neurosci ; 44(17)2024 Apr 24.
Artículo en Inglés | MEDLINE | ID: mdl-38438258

RESUMEN

Acetylcholine (ACh) is released from basal forebrain cholinergic neurons in response to salient stimuli and engages brain states supporting attention and memory. These high ACh states are associated with theta oscillations, which synchronize neuronal ensembles. Theta oscillations in the basolateral amygdala (BLA) in both humans and rodents have been shown to underlie emotional memory, yet their mechanism remains unclear. Here, using brain slice electrophysiology in male and female mice, we show large ACh stimuli evoke prolonged theta oscillations in BLA local field potentials that depend upon M3 muscarinic receptor activation of cholecystokinin (CCK) interneurons (INs) without the need for external glutamate signaling. Somatostatin (SOM) INs inhibit CCK INs and are themselves inhibited by ACh, providing a functional SOM→CCK IN circuit connection gating BLA theta. Parvalbumin (PV) INs, which can drive BLA oscillations in baseline states, are not involved in the generation of ACh-induced theta, highlighting that ACh induces a cellular switch in the control of BLA oscillatory activity and establishes an internally BLA-driven theta oscillation through CCK INs. Theta activity is more readily evoked in BLA over the cortex or hippocampus, suggesting preferential activation of the BLA during high ACh states. These data reveal a SOM→CCK IN circuit in the BLA that gates internal theta oscillations and suggest a mechanism by which salient stimuli acting through ACh switch the BLA into a network state enabling emotional memory.


Asunto(s)
Acetilcolina , Colecistoquinina , Ratones Endogámicos C57BL , Ritmo Teta , Ritmo Teta/efectos de los fármacos , Ritmo Teta/fisiología , Animales , Masculino , Ratones , Femenino , Acetilcolina/farmacología , Acetilcolina/metabolismo , Colecistoquinina/farmacología , Colecistoquinina/metabolismo , Interneuronas/fisiología , Interneuronas/efectos de los fármacos , Somatostatina/metabolismo , Somatostatina/farmacología , Amígdala del Cerebelo/fisiología , Amígdala del Cerebelo/efectos de los fármacos , Complejo Nuclear Basolateral/fisiología , Complejo Nuclear Basolateral/efectos de los fármacos , Red Nerviosa/fisiología , Red Nerviosa/efectos de los fármacos , Receptor Muscarínico M3/fisiología , Receptor Muscarínico M3/metabolismo , Parvalbúminas/metabolismo
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