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1.
Front Cell Neurosci ; 14: 91, 2020.
Artículo en Inglés | MEDLINE | ID: mdl-32372917

RESUMEN

The medial entorhinal cortex (MEC) contains specialized cell types whose firing is tuned to aspects of an animal's position and orientation in the environment, reflecting a neuronal representation of space. The spatially tuned firing properties of these cells quickly emerge during the third postnatal week of development in rodents. Spontaneous synchronized network activity (SSNA) has been shown to play a crucial role in the development of neuronal circuits prior to week 3. SSNA in MEC is well described in rodents during the first postnatal week, but there are little data about its development immediately prior to eye opening and spatial exploration. Furthermore, existing data lack single-cell resolution and are not integrated across layers. In this study, we addressed the question of whether the characteristics and underlying mechanisms of SSNA during the second postnatal week resemble that of the first week or whether distinct features emerge during this period. Using a combined calcium imaging and electrophysiology approach in vitro, we confirm that in mouse MEC during the second postnatal week, SSNA persists and in fact peaks, and is dependent on ionotropic glutamatergic signaling. However, SSNA differs from that observed during the first postnatal week in two ways: First, EC does not drive network activity in the hippocampus but only in neighboring neocortex (NeoC). Second, GABA does not drive network activity but influences it in a manner that is dependent both on age and receptor type. Therefore, we conclude that while there is a partial mechanistic overlap in SSNA between the first and second postnatal weeks, unique mechanistic features do emerge during the second week, suggestive of different or additional functions of MEC within the hippocampal-entorhinal circuitry with increasing maturation.

2.
Front Cell Neurosci ; 13: 315, 2019.
Artículo en Inglés | MEDLINE | ID: mdl-31354435

RESUMEN

Group I metabotropic glutamate receptors (mGluRs) mediate a range of signaling and plasticity processes in the brain and are of growing importance as potential therapeutic targets in clinical trials for neuropsychiatric and neurodevelopmental disorders (NDDs). Fundamental knowledge regarding the functional effects of mGluRs upon pyramidal neurons and interneurons is derived largely from rodent brain, and their effects upon human neurons are predominantly untested. We therefore addressed how group I mGluRs affect microcircuits in human neocortex. We show that activation of group I mGluRs elicits action potential firing in Martinotti cells, which leads to increased synaptic inhibition onto neighboring neurons. Some other interneurons, including fast-spiking interneurons, are depolarized but do not fire action potentials in response to group I mGluR activation. Furthermore, we confirm the existence of group I mGluR-mediated depression of excitatory synapses in human pyramidal neurons. We propose that the strong increase in inhibition and depression of excitatory synapses onto layer 2/3 pyramidal neurons upon group I mGluR activation likely results in a shift in the balance between excitation and inhibition in the human cortical network.

3.
Dev Neurobiol ; 76(4): 357-74, 2016 Apr.
Artículo en Inglés | MEDLINE | ID: mdl-26097169

RESUMEN

Developing networks in the immature nervous system and in cellular cultures are characterized by waves of synchronous activity in restricted clusters of cells. Synchronized activity in immature networks is proposed to regulate many different developmental processes, from neuron growth and cell migration, to the refinement of synapses, topographic maps, and the mature composition of ion channels. These emergent activity patterns are not present in all cells simultaneously within the network and more immature "silent" cells, potentially correlated with the presence of silent synapses, are prominent in different networks during early developmental periods. Many current network analyses for detection of synchronous cellular activity utilize activity-based pixel correlations to identify cellular-based regions of interest (ROIs) and coincident cell activity. However, using activity-based correlations, these methods first underestimate or ignore the inactive silent cells within the developing network and second, are difficult to apply within cell-dense regions commonly found in developing brain networks. In addition, previous methods may ignore ROIs within a network that shows transient activity patterns comprising both inactive and active periods. We developed analysis software to semi-automatically detect cells within developing neuronal networks that were imaged using calcium-sensitive reporter dyes. Using an iterative threshold, modulation of activity was tracked within individual cells across the network. The distribution pattern of both inactive and active, including synchronous cells, could be determined based on distance measures to neighboring cells and according to different anatomical layers.


Asunto(s)
Imagenología Tridimensional/métodos , Potenciales de la Membrana/fisiología , Neuronas/fisiología , Reconocimiento de Normas Patrones Automatizadas/métodos , Programas Informáticos , Imagen de Colorante Sensible al Voltaje/métodos , Animales , Calcio/metabolismo , Células Cultivadas , Células Madre Embrionarias/fisiología , Corteza Entorrinal/efectos de los fármacos , Corteza Entorrinal/crecimiento & desarrollo , Corteza Entorrinal/fisiología , Antagonistas de Receptores de GABA-A/farmacología , Humanos , Potenciales de la Membrana/efectos de los fármacos , Ratones Endogámicos C57BL , Vías Nerviosas/efectos de los fármacos , Vías Nerviosas/crecimiento & desarrollo , Vías Nerviosas/fisiología , Neuronas/efectos de los fármacos , Periodicidad , Piridazinas/farmacología , Técnicas de Cultivo de Tejidos
4.
J Cell Biol ; 211(3): 569-86, 2015 Nov 09.
Artículo en Inglés | MEDLINE | ID: mdl-26527743

RESUMEN

Synaptic plasticity requires remodeling of the actin cytoskeleton. Although two actin isoforms, ß- and γ-actin, are expressed in dendritic spines, the specific contribution of γ-actin in the expression of synaptic plasticity is unknown. We show that synaptic γ-actin levels are regulated by the E3 ubiquitin ligase TRIM3. TRIM3 protein and Actg1 transcript are colocalized in messenger ribonucleoprotein granules responsible for the dendritic targeting of messenger RNAs. TRIM3 polyubiquitylates γ-actin, most likely cotranslationally at synaptic sites. Trim3(-/-) mice consequently have increased levels of γ-actin at hippocampal synapses, resulting in higher spine densities, increased long-term potentiation, and enhanced short-term contextual fear memory consolidation. Interestingly, hippocampal deletion of Actg1 caused an increase in long-term fear memory. Collectively, our findings suggest that temporal control of γ-actin levels by TRIM3 is required to regulate the timing of hippocampal plasticity. We propose a model in which TRIM3 regulates synaptic γ-actin turnover and actin filament stability and thus forms a transient inhibitory constraint on the expression of hippocampal synaptic plasticity.


Asunto(s)
Actinas/metabolismo , Proteínas Portadoras/metabolismo , Hipocampo/metabolismo , Plasticidad Neuronal/fisiología , Ubiquitina-Proteína Ligasas/metabolismo , Ubiquitina/metabolismo , Citoesqueleto de Actina/metabolismo , Animales , Espinas Dendríticas/metabolismo , Potenciación a Largo Plazo/fisiología , Ratones , Ratones Endogámicos C57BL , Proteínas del Tejido Nervioso/metabolismo , Neuronas/metabolismo , Sinapsis/metabolismo
5.
Nat Neurosci ; 17(12): 1693-700, 2014 Dec.
Artículo en Inglés | MEDLINE | ID: mdl-25402856

RESUMEN

Deficiencies in fragile X mental retardation protein (FMRP) are the most common cause of inherited intellectual disability, fragile X syndrome (FXS), with symptoms manifesting during infancy and early childhood. Using a mouse model for FXS, we found that Fmrp regulates the positioning of neurons in the cortical plate during embryonic development, affecting their multipolar-to-bipolar transition (MBT). We identified N-cadherin, which is crucial for MBT, as an Fmrp-regulated target in embryonic brain. Furthermore, spontaneous network activity and high-resolution brain imaging revealed defects in the establishment of neuronal networks at very early developmental stages, further confirmed by an unbalanced excitatory and inhibitory network. Finally, reintroduction of Fmrp or N-cadherin in the embryo normalized early postnatal neuron activity. Our findings highlight the critical role of Fmrp in the developing cerebral cortex and might explain some of the clinical features observed in patients with FXS, such as alterations in synaptic communication and neuronal network connectivity.


Asunto(s)
Movimiento Celular/fisiología , Polaridad Celular/fisiología , Proteína de la Discapacidad Intelectual del Síndrome del Cromosoma X Frágil/fisiología , Red Nerviosa/fisiología , Neuronas/fisiología , Corteza Somatosensorial/fisiología , Animales , Femenino , Ratones , Ratones Endogámicos C57BL , Ratones Noqueados , Red Nerviosa/citología , Técnicas de Cultivo de Órganos , Embarazo , Corteza Somatosensorial/citología
6.
Trends Neurosci ; 35(6): 335-44, 2012 Jun.
Artículo en Inglés | MEDLINE | ID: mdl-22542246

RESUMEN

Many neurodevelopmental disorders (NDDs) are characterized by age-dependent symptom onset and regression, particularly during early postnatal periods of life. The neurobiological mechanisms preceding and underlying these developmental cognitive and behavioral impairments are, however, not clearly understood. Recent evidence using animal models for monogenic NDDs demonstrates the existence of time-regulated windows of neuronal and synaptic impairments. We propose that these developmentally-dependent impairments can be unified into a key concept: namely, time-restricted windows for impaired synaptic phenotypes exist in NDDs, akin to critical periods during normal sensory development in the brain. Existence of sensitive time-windows has significant implications for our understanding of early brain development underlying NDDs and may indicate vulnerable periods when the brain is more susceptible to current therapeutic treatments.


Asunto(s)
Envejecimiento , Encefalopatías/fisiopatología , Encéfalo/fisiopatología , Trastornos del Conocimiento/fisiopatología , Discapacidades del Desarrollo/fisiopatología , Modelos Neurológicos , Factores de Tiempo , Animales , Susceptibilidad a Enfermedades/fisiopatología , Humanos
7.
J Vis Exp ; (56)2011 Oct 22.
Artículo en Inglés | MEDLINE | ID: mdl-22041662

RESUMEN

A hallmark pattern of activity in developing nervous systems is spontaneous, synchronized network activity. Synchronized activity has been observed in intact spinal cord, brainstem, retina, cortex and dissociated neuronal culture preparations. During periods of spontaneous activity, neurons depolarize to fire single or bursts of action potentials, activating many ion channels. Depolarization activates voltage-gated calcium channels on dendrites and spines that mediate calcium influx. Highly synchronized electrical activity has been measured from local neuronal networks using field electrodes. This technique enables high temporal sampling rates but lower spatial resolution due to integrated read-out of multiple neurons at one electrode. Single cell resolution of neuronal activity is possible using patch-clamp electrophysiology on single neurons to measure firing activity. However, the ability to measure from a network is limited to the number of neurons patched simultaneously, and typically is only one or two neurons. The use of calcium-dependent fluorescent indicator dyes has enabled the measurement of synchronized activity across a network of cells. This technique gives both high spatial resolution and sufficient temporal sampling to record spontaneous activity of the developing network. A key feature of newly-forming cortical and hippocampal networks during pre- and early postnatal development is spontaneous, synchronized neuronal activity (Katz & Shatz, 1996; Khaziphov & Luhmann, 2006). This correlated network activity is believed to be essential for the generation of functional circuits in the developing nervous system (Spitzer, 2006). In both primate and rodent brain, early electrical and calcium network waves are observed pre- and postnatally in vivo and in vitro (Adelsberger et al., 2005; Garaschuk et al., 2000; Lamblin et al., 1999). These early activity patterns, which are known to control several developmental processes including neuronal differentiation, synaptogenesis and plasticity (Rakic & Komuro, 1995; Spitzer et al., 2004) are of critical importance for the correct development and maturation of the cortical circuitry. In this JoVE video, we demonstrate the methods used to image spontaneous activity in developing cortical networks. Calcium-sensitive indicators, such as Fura 2-AM ester diffuse across the cell membrane where intracellular esterase activity cleaves the AM esters to leave the cell-impermeant form of indicator dye. The impermeant form of indicator has carboxylic acid groups which are able to then detect and bind calcium ions intracellularly. The fluorescence of the calcium-sensitive dye is transiently altered upon binding to calcium. Single or multi-photon imaging techniques are used to measure the change in photons being emitted from the dye, and thus indicate an alteration in intracellular calcium. Furthermore, these calcium-dependent indicators can be combined with other fluorescent markers to investigate cell types within the active network.


Asunto(s)
Calcio/análisis , Corteza Entorrinal/química , Hipocampo/química , Red Nerviosa/química , Calcio/metabolismo , Corteza Entorrinal/metabolismo , Colorantes Fluorescentes/química , Colorantes Fluorescentes/farmacocinética , Fura-2/análogos & derivados , Fura-2/química , Fura-2/farmacocinética , Hipocampo/metabolismo , Humanos , Red Nerviosa/metabolismo
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