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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.
Curr Biol ; 34(10): 2247-2255.e5, 2024 May 20.
Artículo en Inglés | MEDLINE | ID: mdl-38714199

RESUMEN

Rapid eye movement (REM) sleep is known to facilitate fear extinction and play a protective role against fearful memories.1,2 Consequently, disruption of REM sleep after a traumatic event may increase the risk for developing PTSD.3,4 However, the underlying mechanisms by which REM sleep promotes extinction of aversive memories remain largely unknown. The infralimbic cortex (IL) is a key brain structure for the consolidation of extinction memory.5 Using calcium imaging, we found in mice that most IL pyramidal neurons are intensively activated during REM sleep. Optogenetically suppressing the IL specifically during REM sleep within a 4-h window after auditory-cued fear conditioning impaired extinction memory consolidation. In contrast, REM-specific IL inhibition after extinction learning did not affect the extinction memory. Whole-cell patch-clamp recordings demonstrated that inactivating IL neurons during REM sleep depresses their excitability. Together, our findings suggest that REM sleep after fear conditioning facilitates fear extinction by enhancing IL excitability and highlight the importance of REM sleep in the aftermath of traumatic events for protecting against traumatic memories.


Asunto(s)
Extinción Psicológica , Miedo , Sueño REM , Animales , Miedo/fisiología , Sueño REM/fisiología , Ratones , Extinción Psicológica/fisiología , Masculino , Ratones Endogámicos C57BL , Memoria/fisiología , Consolidación de la Memoria/fisiología , Condicionamiento Clásico/fisiología , Células Piramidales/fisiología
3.
Cereb Cortex ; 34(5)2024 May 02.
Artículo en Inglés | MEDLINE | ID: mdl-38745556

RESUMEN

The basic building block of the cerebral cortex, the pyramidal cell, has been shown to be characterized by a markedly different dendritic structure among layers, cortical areas, and species. Functionally, differences in the structure of their dendrites and axons are critical in determining how neurons integrate information. However, within the human cortex, these neurons have not been quantified in detail. In the present work, we performed intracellular injections of Lucifer Yellow and 3D reconstructed over 200 pyramidal neurons, including apical and basal dendritic and local axonal arbors and dendritic spines, from human occipital primary visual area and associative temporal cortex. We found that human pyramidal neurons from temporal cortex were larger, displayed more complex apical and basal structural organization, and had more spines compared to those in primary sensory cortex. Moreover, these human neocortical neurons displayed specific shared and distinct characteristics in comparison to previously published human hippocampal pyramidal neurons. Additionally, we identified distinct morphological features in human neurons that set them apart from mouse neurons. Lastly, we observed certain consistent organizational patterns shared across species. This study emphasizes the existing diversity within pyramidal cell structures across different cortical areas and species, suggesting substantial species-specific variations in their computational properties.


Asunto(s)
Células Piramidales , Humanos , Células Piramidales/fisiología , Animales , Masculino , Femenino , Ratones , Adulto , Espinas Dendríticas/fisiología , Espinas Dendríticas/ultraestructura , Lóbulo Temporal/citología , Dendritas/fisiología , Persona de Mediana Edad , Axones/fisiología , Especificidad de la Especie
4.
Sci Rep ; 14(1): 10054, 2024 05 02.
Artículo en Inglés | MEDLINE | ID: mdl-38698053

RESUMEN

ß-Thalassaemia is one of the most common genetic diseases worldwide. During the past few decades, life expectancy of patients has increased significantly owing to advance in medical treatments. Cognitive impairment, once has been neglected, has gradually become more documented. Cognitive impairment in ß-thalassaemia patients is associated with natural history of the disease and socioeconomic factors. Herein, to determined effect of ß-thalassaemia intrinsic factors, 22-month-old ß-thalassaemia mouse was used as a model to assess cognitive impairment and to investigate any aberrant brain pathology in ß-thalassaemia. Open field test showed that ß-thalassaemia mice had decreased motor function. However, no difference of neuronal degeneration in primary motor cortex, layer 2/3 area was found. Interestingly, impaired learning and memory function accessed by a Morris water maze test was observed and correlated with a reduced number of living pyramidal neurons in hippocampus at the CA3 region in ß-thalassaemia mice. Cognitive impairment in ß-thalassaemia mice was significantly correlated with several intrinsic ß-thalassaemic factors including iron overload, anaemia, damaged red blood cells (RBCs), phosphatidylserine (PS)-exposed RBC large extracellular vesicles (EVs) and PS-exposed medium EVs. This highlights the importance of blood transfusion and iron chelation in ß-thalassaemia patients. In addition, to improve patients' quality of life, assessment of cognitive functions should become part of routine follow-up.


Asunto(s)
Disfunción Cognitiva , Modelos Animales de Enfermedad , Hipocampo , Talasemia beta , Animales , Talasemia beta/patología , Talasemia beta/complicaciones , Talasemia beta/genética , Disfunción Cognitiva/etiología , Disfunción Cognitiva/patología , Ratones , Hipocampo/patología , Hipocampo/metabolismo , Masculino , Neuronas/metabolismo , Neuronas/patología , Sobrecarga de Hierro/patología , Sobrecarga de Hierro/metabolismo , Sobrecarga de Hierro/complicaciones , Vesículas Extracelulares/metabolismo , Eritrocitos/metabolismo , Eritrocitos/patología , Células Piramidales/metabolismo , Células Piramidales/patología , Aprendizaje por Laberinto
5.
Nat Commun ; 15(1): 4053, 2024 May 14.
Artículo en Inglés | MEDLINE | ID: mdl-38744848

RESUMEN

The role of the hippocampus in spatial navigation has been primarily studied in nocturnal mammals, such as rats, that lack many adaptations for daylight vision. Here we demonstrate that during 3D navigation, the common marmoset, a new world primate adapted to daylight, predominantly uses rapid head-gaze shifts for visual exploration while remaining stationary. During active locomotion marmosets stabilize the head, in contrast to rats that use low-velocity head movements to scan the environment as they locomote. Pyramidal neurons in the marmoset hippocampus CA3/CA1 regions predominantly show mixed selectivity for 3D spatial view, head direction, and place. Exclusive place selectivity is scarce. Inhibitory interneurons are predominantly mixed selective for angular head velocity and translation speed. Finally, we found theta phase resetting of local field potential oscillations triggered by head-gaze shifts. Our findings indicate that marmosets adapted to their daylight ecological niche by modifying exploration/navigation strategies and their corresponding hippocampal specializations.


Asunto(s)
Callithrix , Hipocampo , Navegación Espacial , Animales , Callithrix/fisiología , Navegación Espacial/fisiología , Hipocampo/fisiología , Masculino , Locomoción/fisiología , Visión Ocular/fisiología , Células Piramidales/fisiología , Movimientos de la Cabeza/fisiología , Interneuronas/fisiología , Femenino , Conducta Animal/fisiología , Región CA1 Hipocampal/fisiología , Región CA1 Hipocampal/citología
6.
Cells ; 13(7)2024 Mar 26.
Artículo en Inglés | MEDLINE | ID: mdl-38607012

RESUMEN

Neuronal timing with millisecond precision is critical for many brain functions such as sensory perception, learning and memory formation. At the level of the chemical synapse, the synaptic delay is determined by the presynaptic release probability (Pr) and the waveform of the presynaptic action potential (AP). For instance, paired-pulse facilitation or presynaptic long-term potentiation are associated with reductions in the synaptic delay, whereas paired-pulse depression or presynaptic long-term depression are associated with an increased synaptic delay. Parallelly, the AP broadening that results from the inactivation of voltage gated potassium (Kv) channels responsible for the repolarization phase of the AP delays the synaptic response, and the inactivation of sodium (Nav) channels by voltage reduces the synaptic latency. However, whether synaptic delay is modulated during depolarization-induced analogue-digital facilitation (d-ADF), a form of context-dependent synaptic facilitation induced by prolonged depolarization of the presynaptic neuron and mediated by the voltage-inactivation of presynaptic Kv1 channels, remains unclear. We show here that despite Pr being elevated during d-ADF at pyramidal L5-L5 cell synapses, the synaptic delay is surprisingly unchanged. This finding suggests that both Pr- and AP-dependent changes in synaptic delay compensate for each other during d-ADF. We conclude that, in contrast to other short- or long-term modulations of presynaptic release, synaptic timing is not affected during d-ADF because of the opposite interaction of Pr- and AP-dependent modulations of synaptic delay.


Asunto(s)
Neuronas , Sinapsis , Sinapsis/fisiología , Potenciales de Acción/fisiología , Células Piramidales/fisiología , Potenciación a Largo Plazo
7.
Cereb Cortex ; 34(4)2024 Apr 01.
Artículo en Inglés | MEDLINE | ID: mdl-38610088

RESUMEN

The axons of neocortical pyramidal neurons are frequently myelinated. Heterogeneity in the topography of axonal myelination in the cerebral cortex has been attributed to a combination of electrophysiological activity, axonal morphology, and neuronal-glial interactions. Previously, we showed that axonal segment length and caliber are critical local determinants of fast-spiking interneuron myelination. However, the factors that determine the myelination of individual axonal segments along neocortical pyramidal neurons remain largely unexplored. Here, we used structured illumination microscopy to examine the extent to which axonal morphology is predictive of the topography of myelination along neocortical pyramidal neurons. We identified critical thresholds for axonal caliber and interbranch distance that are necessary, but not sufficient, for myelination of pyramidal cell axons in mouse primary somatosensory cortex (S1). Specifically, we found that pyramidal neuron axonal segments with a caliber < 0.24 µm or interbranch distance < 18.10 µm are rarely myelinated. Moreover, we further confirmed that these findings in mice are similar for human neocortical pyramidal cell myelination (caliber < 0.25 µm, interbranch distance < 19.00 µm), suggesting that this mechanism is evolutionarily conserved. Taken together, our findings suggest that axonal morphology is a critical correlate of the topography and cell-type specificity of neocortical myelination.


Asunto(s)
Neocórtex , Células Piramidales , Humanos , Animales , Ratones , Axones , Vaina de Mielina , Interneuronas
8.
PLoS One ; 19(4): e0298065, 2024.
Artículo en Inglés | MEDLINE | ID: mdl-38626211

RESUMEN

Anoxia in the mammalian brain leads to hyper-excitability and cell death; however, this cascade of events does not occur in the anoxia-tolerant brain of the western painted turtle, Chrysemys picta belli. The painted turtle has become an important anoxia-tolerant model to study brain, heart, and liver function in the absence of oxygen, but being anoxia-tolerant likely means that decapitation alone is not a suitable method of euthanasia. Many anesthetics have long-term effects on ion channels and are not appropriate for same day experimentation. Using whole-cell electrophysiological techniques, we examine the effects of the anesthetic, Alfaxalone, on pyramidal cell action potential amplitude, threshold, rise and decay time, width, frequency, whole cell conductance, and evoked GABAA receptors currents to determine if any of these characteristics are altered with the use of Alfaxalone for animal sedation. We find that Alfaxalone has no long-term impact on action potential parameters or whole-cell conductance. When acutely applied to naïve tissue, Alfaxalone did lengthen GABAA receptor current decay rates by 1.5-fold. Following whole-animal sedation with Alfaxalone, evoked whole cell GABAA receptor current decay rates displayed an increasing trend with 1 and 2 hours after brain sheet preparation, but showed no significant change after a 3-hour washout period. Therefore, we conclude that Alfaxalone is a suitable anesthetic for same day use in electrophysiological studies in western painted turtle brain tissue.


Asunto(s)
Anestésicos , Hipoxia Encefálica , Pregnanodionas , Tortugas , Animales , Tortugas/fisiología , Receptores de GABA-A/metabolismo , Células Piramidales/metabolismo , Hipoxia/metabolismo , Anestésicos/farmacología , Mamíferos
9.
Science ; 384(6693): 338-343, 2024 Apr 19.
Artículo en Inglés | MEDLINE | ID: mdl-38635709

RESUMEN

The computational capabilities of neuronal networks are fundamentally constrained by their specific connectivity. Previous studies of cortical connectivity have mostly been carried out in rodents; whether the principles established therein also apply to the evolutionarily expanded human cortex is unclear. We studied network properties within the human temporal cortex using samples obtained from brain surgery. We analyzed multineuron patch-clamp recordings in layer 2-3 pyramidal neurons and identified substantial differences compared with rodents. Reciprocity showed random distribution, synaptic strength was independent from connection probability, and connectivity of the supragranular temporal cortex followed a directed and mostly acyclic graph topology. Application of these principles in neuronal models increased dimensionality of network dynamics, suggesting a critical role for cortical computation.


Asunto(s)
Neuronas , Sinapsis , Animales , Humanos , Sinapsis/fisiología , Neuronas/fisiología , Células Piramidales/fisiología , Roedores , Red Nerviosa/fisiología
10.
Neuron ; 112(8): 1202-1204, 2024 Apr 17.
Artículo en Inglés | MEDLINE | ID: mdl-38636453

RESUMEN

Insomnia is an important comorbidity of chronic pain. In this issue of Neuron, Li et al. report that chronic-pain-induced insomnia is mediated by the pyramidal neurons in the anterior cingulate cortex and their dopaminergic projections to the dorsal medial striatum.


Asunto(s)
Dolor Crónico , Trastornos del Inicio y del Mantenimiento del Sueño , Humanos , Giro del Cíngulo/fisiología , Cuerpo Estriado , Células Piramidales , Neostriado
11.
Neurosci Biobehav Rev ; 161: 105688, 2024 Jun.
Artículo en Inglés | MEDLINE | ID: mdl-38670298

RESUMEN

Pyramidal neurons have a pivotal role in the cognitive capabilities of neocortex. Though they have been predominantly modeled as integrate-and-fire point processors, many of them have another point of input integration in their apical dendrites that is central to mechanisms endowing them with the sensitivity to context that underlies basic cognitive capabilities. Here we review evidence implicating impairments of those mechanisms in three major neurodevelopmental disabilities, fragile X, Down syndrome, and fetal alcohol spectrum disorders. Multiple dysfunctions of the mechanisms by which pyramidal cells are sensitive to context are found to be implicated in all three syndromes. Further deciphering of these cellular mechanisms would lead to the understanding of and therapies for learning disabilities beyond any that are currently available.


Asunto(s)
Discapacidades para el Aprendizaje , Humanos , Animales , Discapacidades para el Aprendizaje/fisiopatología , Discapacidades para el Aprendizaje/etiología , Células Piramidales/fisiología , Trastornos del Espectro Alcohólico Fetal/fisiopatología , Trastornos del Neurodesarrollo/fisiopatología , Síndrome de Down/fisiopatología , Síndrome del Cromosoma X Frágil/fisiopatología
12.
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
13.
Ann N Y Acad Sci ; 1535(1): 62-75, 2024 May.
Artículo en Inglés | MEDLINE | ID: mdl-38602714

RESUMEN

Hippocampal pyramidal neuronal activity has been previously studied using conventional patch clamp in isolated cells and brain slices. We here introduce the loose patch clamping study of voltage-activated currents from in situ pyramidal neurons in murine cornus ammonis 1 hippocampal coronal slices. Depolarizing pulses of 15-ms duration elicited early transient inward, followed by transient and prolonged outward currents in the readily identifiable junctional region between the stratum pyramidalis (SP) and oriens (SO) containing pyramidal cell somas and initial segments. These resembled pyramidal cell currents previously recorded using conventional patch clamp. Shortening the depolarizing pulses to >1-2 ms continued to evoke transient currents; hyperpolarizing pulses to varying voltages evoked decays whose time constants could be shortened to <1 ms, clarifying the speed of clamping in this experimental system. The inward and outward currents had distinct pharmacological characteristics and voltage-dependent inactivation and recovery from inactivation. Comparative recordings from the SP, known to contain pyramidal cell somas, demonstrated similar current properties. Recordings from the SO and stratum radiatum demonstrated smaller inward and outward current magnitudes and reduced transient outward currents, consistent with previous conventional patch clamp results from their different interneuron types. The loose patch clamp method is thus useful for in situ studies of neurons in hippocampal brain slices.


Asunto(s)
Técnicas de Placa-Clamp , Células Piramidales , Animales , Técnicas de Placa-Clamp/métodos , Ratones , Células Piramidales/fisiología , Potenciales de la Membrana/fisiología , Hipocampo/fisiología , Hipocampo/citología , Neuronas/fisiología , Región CA1 Hipocampal/fisiología , Región CA1 Hipocampal/citología , Ratones Endogámicos C57BL , Masculino
14.
Cell Rep ; 43(4): 114100, 2024 Apr 23.
Artículo en Inglés | MEDLINE | ID: mdl-38607921

RESUMEN

Hippocampal pyramidal neuron activity underlies episodic memory and spatial navigation. Although extensively studied in rodents, extremely little is known about human hippocampal pyramidal neurons, even though the human hippocampus underwent strong evolutionary reorganization and shows lower theta rhythm frequencies. To test whether biophysical properties of human Cornu Amonis subfield 1 (CA1) pyramidal neurons can explain observed rhythms, we map the morpho-electric properties of individual CA1 pyramidal neurons in human, non-pathological hippocampal slices from neurosurgery. Human CA1 pyramidal neurons have much larger dendritic trees than mouse CA1 pyramidal neurons, have a large number of oblique dendrites, and resonate at 2.9 Hz, optimally tuned to human theta frequencies. Morphological and biophysical properties suggest cellular diversity along a multidimensional gradient rather than discrete clustering. Across the population, dendritic architecture and a large number of oblique dendrites consistently boost memory capacity in human CA1 pyramidal neurons by an order of magnitude compared to mouse CA1 pyramidal neurons.


Asunto(s)
Región CA1 Hipocampal , Dendritas , Células Piramidales , Humanos , Células Piramidales/fisiología , Región CA1 Hipocampal/citología , Región CA1 Hipocampal/fisiología , Animales , Masculino , Ratones , Dendritas/fisiología , Femenino , Persona de Mediana Edad , Anciano , Ritmo Teta/fisiología , Adulto
15.
Biochim Biophys Acta Mol Basis Dis ; 1870(5): 167178, 2024 Jun.
Artículo en Inglés | MEDLINE | ID: mdl-38636614

RESUMEN

Pitt-Hopkins syndrome (PTHS) is a neurodevelopmental disorder caused by haploinsufficiency of transcription factor 4 (TCF4). In this work, we focused on the cerebral cortex and investigated in detail the progenitor cell dynamics and the outcome of neurogenesis in a PTHS mouse model. Labeling and quantification of progenitors and newly generated neurons at various time points during embryonic development revealed alterations affecting the dynamic of cortical progenitors since the earliest stages of cortex formation in PTHS mice. Consequently, establishment of neuronal populations and layering of the cortex were found to be altered in heterozygotes subjects at birth. Interestingly, defective layering process of pyramidal neurons was partially rescued by reintroducing TCF4 expression using focal in utero electroporation in the cerebral cortex. Coincidentally with a defective dorsal neurogenesis, we found that ventral generation of interneurons was also defective in this model, which may lead to an excitation/inhibition imbalance in PTHS. Overall, sex-dependent differences were detected with more marked effects evidenced in males compared with females. All of this contributes to expand our understanding of PTHS, paralleling the advances of research in autism spectrum disorder and further validating the PTHS mouse model as an important tool to advance preclinical studies.


Asunto(s)
Corteza Cerebral , Modelos Animales de Enfermedad , Hiperventilación , Discapacidad Intelectual , Neurogénesis , Factor de Transcripción 4 , Animales , Factor de Transcripción 4/metabolismo , Factor de Transcripción 4/genética , Femenino , Masculino , Ratones , Hiperventilación/metabolismo , Hiperventilación/genética , Hiperventilación/patología , Discapacidad Intelectual/genética , Discapacidad Intelectual/patología , Discapacidad Intelectual/metabolismo , Corteza Cerebral/metabolismo , Corteza Cerebral/patología , Facies , Caracteres Sexuales , Interneuronas/metabolismo , Interneuronas/patología , Células Piramidales/metabolismo , Células Piramidales/patología , Haploinsuficiencia
16.
Math Biosci ; 372: 109192, 2024 Jun.
Artículo en Inglés | MEDLINE | ID: mdl-38640998

RESUMEN

Computational models of brain regions are crucial for understanding neuronal network dynamics and the emergence of cognitive functions. However, current supercomputing limitations hinder the implementation of large networks with millions of morphological and biophysical accurate neurons. Consequently, research has focused on simplified spiking neuron models, ranging from the computationally fast Leaky Integrate and Fire (LIF) linear models to more sophisticated non-linear implementations like Adaptive Exponential (AdEX) and Izhikevic models, through Generalized Leaky Integrate and Fire (GLIF) approaches. However, in almost all cases, these models are tuned (and can be validated) only under constant current injections and they may not, in general, also reproduce experimental findings under variable currents. This study introduces an Adaptive GLIF (A-GLIF) approach that addresses this limitation by incorporating a new set of update rules. The extended A-GLIF model successfully reproduces both constant and variable current inputs, and it was validated against the results obtained using a biophysical accurate model neuron. This enhancement provides researchers with a tool to optimize spiking neuron models using classic experimental traces under constant current injections, reliably predicting responses to synaptic inputs, which can be confidently used for large-scale network implementations.


Asunto(s)
Región CA1 Hipocampal , Interneuronas , Modelos Neurológicos , Células Piramidales , Células Piramidales/fisiología , Interneuronas/fisiología , Región CA1 Hipocampal/fisiología , Región CA1 Hipocampal/citología , Animales , Potenciales de Acción/fisiología , Sinapsis/fisiología , Simulación por Computador
17.
Alzheimers Dement ; 20(5): 3504-3524, 2024 May.
Artículo en Inglés | MEDLINE | ID: mdl-38605605

RESUMEN

INTRODUCTION: Cognitive decline progresses with age, and Nr4a1 has been shown to participate in memory functions. However, the relationship between age-related Nr4a1 reduction and cognitive decline is undefined. METHODS: Nr4a1 expressions were evaluated by quantitative PCR and immunochemical approaches. The cognition of mice was examined by multiple behavioral tests. Patch-clamp experiments were conducted to investigate the synaptic function. RESULTS: NR4A1 in peripheral blood mononuclear cells decreased with age in humans. In the mouse brain, age-dependent Nr4a1 reduction occurred in the hippocampal CA1. Deleting Nr4a1 in CA1 pyramidal neurons (PyrNs) led to the impairment of cognition and excitatory synaptic function. Mechanistically, Nr4a1 enhanced TrkB expression via binding to its promoter. Blocking TrkB compromised the cognitive amelioration with Nr4a1-overexpression in CA1 PyrNs. DISCUSSION: Our results elucidate the mechanism of Nr4a1-dependent TrkB regulation in cognition and synaptic function, indicating that Nr4a1 is a target for the treatment of cognitive decline. HIGHLIGHTS: Nr4a1 is reduced in PBMCs and CA1 PyrNs with aging. Nr4a1 ablation in CA1 PyrNs impaired cognition and excitatory synaptic function. Nr4a1 overexpression in CA1 PyrNs ameliorated cognitive impairment of aged mice. Nr4a1 bound to TrkB promoter to enhance transcription. Blocking TrkB function compromised Nr4a1-induced cognitive improvement.


Asunto(s)
Envejecimiento , Disfunción Cognitiva , Miembro 1 del Grupo A de la Subfamilia 4 de Receptores Nucleares , Animales , Disfunción Cognitiva/metabolismo , Miembro 1 del Grupo A de la Subfamilia 4 de Receptores Nucleares/metabolismo , Miembro 1 del Grupo A de la Subfamilia 4 de Receptores Nucleares/genética , Ratones , Humanos , Envejecimiento/fisiología , Masculino , Región CA1 Hipocampal/metabolismo , Células Piramidales/metabolismo , Receptor trkB/metabolismo , Leucocitos Mononucleares/metabolismo , Anciano , Femenino , Ratones Endogámicos C57BL
18.
Anesthesiology ; 140(6): 1192-1200, 2024 Jun 01.
Artículo en Inglés | MEDLINE | ID: mdl-38624275

RESUMEN

Tonic inhibition in mouse hippocampal CA1 pyramidal neurons is mediated by α5 subunit-containing γ-aminobutyric acid type A receptors. By Caraiscos VB, Elliott EM, You-Ten KE, Cheng VY, Belelli D, Newell JG, Jackson MF, Lambert JJ, Rosahl TW, Wafford KA, MacDonald JF, Orser BA. Proc Natl Acad Sci U S A 2004; 101:3662-7. Reprinted with permission. In this Classic Paper Revisited, the author recounts the scientific journey leading to a report published in the Proceedings of the National Academy of Sciences (PNAS) and shares several personal stories from her formative years and "research truths" that she has learned along the way. Briefly, the principal inhibitory neurotransmitter in the brain, γ-aminobutyric acid (GABA), was conventionally thought to regulate cognitive processes by activating synaptic GABA type A (GABAA) receptors and generating transient inhibitory synaptic currents. However, the author's laboratory team discovered a novel nonsynaptic form of tonic inhibition in hippocampal pyramidal neurons, mediated by extrasynaptic GABAA receptors that are pharmacologically distinct from synaptic GABAA receptors. This tonic current is highly sensitive to most general anesthetics, including sevoflurane and propofol, and likely contributes to the memory-blocking properties of these drugs. Before the publication in PNAS, the subunit composition of GABAA receptors that generate the tonic current was unknown. The team's research showed that GABAA receptors containing the α5 subunit (α5GABAARs) generated the tonic inhibitory current in hippocampal neurons. α5GABAARs are highly sensitive to GABA, desensitize slowly, and are thus well suited for detecting low, persistent, ambient concentrations of GABA in the extracellular space. Interest in α5GABAARs has surged since the PNAS report, driven by their pivotal roles in cognitive processes and their potential as therapeutic targets for treating various neurologic disorders.


Asunto(s)
Receptores de GABA-A , Animales , Receptores de GABA-A/efectos de los fármacos , Receptores de GABA-A/metabolismo , Ratones , Células Piramidales/efectos de los fármacos , Células Piramidales/fisiología , Células Piramidales/metabolismo , Humanos , Sinapsis/efectos de los fármacos , Hipocampo/efectos de los fármacos , Hipocampo/metabolismo , Ácido gamma-Aminobutírico/metabolismo
19.
Sheng Li Xue Bao ; 76(2): 233-246, 2024 Apr 25.
Artículo en Inglés | MEDLINE | ID: mdl-38658373

RESUMEN

The high-order cognitive and executive functions are necessary for an individual to survive. The densely bidirectional innervations between the medial prefrontal cortex (mPFC) and the mediodorsal thalamus (MD) play a vital role in regulating high-order functions. Pyramidal neurons in mPFC have been classified into several subclasses according to their morphological and electrophysiological properties, but the properties of the input-specific pyramidal neurons in mPFC remain poorly understood. The present study aimed to profile the morphological and electrophysiological properties of mPFC pyramidal neurons innervated by MD. In the past, the studies for characterizing the morphological and electrophysiological properties of neurons mainly relied on the electrophysiological recording of a large number of neurons and their morphologic reconstructions. But, it is a low efficient method for characterizing the circuit-specific neurons. The present study combined the advantages of traditional morphological and electrophysiological methods with machine learning to address the shortcomings of the past method, to establish a classification model for the morphological and electrophysiological properties of mPFC pyramidal neurons, and to achieve more accurate and efficient identification of the properties from a small size sample of neurons. We labeled MD-innervated pyramidal neurons of mPFC using the trans-synaptic neural circuitry tracing method and obtained their morphological properties using whole-cell patch-clamp recording and morphologic reconstructions. The results showed that the classification model established in the present study could predict the electrophysiological properties of MD-innervated pyramidal neurons based on their morphology. MD-innervated pyramidal neurons exhibit larger basal dendritic length but lower apical dendrite complexity compared to non-MD-innervated neurons in the mPFC. The morphological characteristics of the two subtypes (ET-1 and ET-2) of mPFC pyramidal neurons innervated by MD are different, with the apical dendrites of ET-1 neurons being longer and more complex than those of ET-2 neurons. These results suggest that the electrophysiological properties of MD- innervated pyramidal neurons within mPFC correlate with their morphological properties, indicating that the different roles of these two subclasses in local circuits within PFC, as well as in PFC-cortical/subcortical brain region circuits.


Asunto(s)
Corteza Prefrontal , Células Piramidales , Células Piramidales/fisiología , Células Piramidales/citología , Corteza Prefrontal/fisiología , Corteza Prefrontal/citología , Animales , Ratas , Núcleo Talámico Mediodorsal/fisiología , Núcleo Talámico Mediodorsal/citología , Masculino , Fenómenos Electrofisiológicos , Vías Nerviosas/fisiología , Vías Nerviosas/citología , Aprendizaje Automático , Ratas Sprague-Dawley , Técnicas de Placa-Clamp
20.
Mol Vis ; 30: 67-73, 2024.
Artículo en Inglés | MEDLINE | ID: mdl-38586606

RESUMEN

Purpose: Light-induced neural retinal insult leads to alterations in the visual cortex neurons. We examined light-induced neuronal alterations in the visual cortex layer 5 pyramidal neurons (V1-L5PNs) of adult male Wistar rats. Methods: A total of 24 rats were divided into the following groups (n=6 each): control (NC), blue (BL), white (WL), and yellow (YL). The exposure groups were subjected to light-emitting diodes (LED) exposure (450-500 lx) of differing wavelengths for 90 days (12:12 16 light-dark cycle). After LED exposure, the animals were sacrificed, and the brain tissues were removed and impregnated in freshly prepared Golgi-Cox stain for 21 days. Sholl's grading analysis was used to quantify the apical and basal dendritic branching points and intersections of the V1-L5PNs. Results: There was a significant difference in the number of apical branching points among all groups (p<0.001), with a particularly notable difference between the BL and WL groups (p<0.001). A post hoc test revealed that all exposure groups (BL, WL, and YL) had fewer apical branching points (p<0.001) on an average of 3.6 µm and a significant reduction in the dendritic intersections (p<0.001) compared to the number of branching points extending from layer Va (V1) neurons. Conclusions: Chronic and cumulative exposure to blue and white LEDs led to the pruning of V1-L5PNs, which might impair visual processing.


Asunto(s)
Dendritas , Corteza Visual , Masculino , Ratas , Animales , Roedores , Ratas Wistar , Células Piramidales/fisiología , Corteza Visual/fisiología
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