293 resultados para Subcortical


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Se ha visto que el Síndrome de Gilles de la Tourette (SGT) tiene un componente lingüístico importante y que algunos autores han estudiado. El presente artículo busca encontrar la evidencia existente en esta relación. El SGT se produce por una alteración en la neurotransmisión de dopamina en los circuitos frontales y subcorticales y una de sus manifestaciones son los tics vocales simples y complejos. Como el síntoma más llamativo de la enfermedad es la coprolalia, se ha estudiado desde varios puntos de vista, encontrándose que no está presente en todos los pacientes con SGT, que no se correlaciona con la severidad de la enfermedad y que el aspecto cultural influye en la expresión de este síntoma. Se han reportado casos de coprolalia mental y coprolalia en pacientes con sordera congénita. Los tics motores complejos pueden estar asociados con ansiedad severa correlacionándose con fallas en los procesos de inhibición. Otra alteración que se ha encontrado en pacientes con SGT es la disfluencia, la cual es diferente de la tartamudez clásica. A nivel del lenguaje en el SGT se han observado una serie de conocimientos rápidos que incluyen el procesamiento cognitivo de las formas de lenguaje gobernadas por reglas.

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The reinforcement omission effects have been traditionally interpreted in terms of: behavioral facilitation after reinforcement omission induced by primary frustration or behavioral suppression after reinforcement delivery induced by postconsummatory states. The studies reviewed here indicate that amygdala is involved in modulation of these effects. However, the fact that amygdala lesions, extensive or selective, can eliminate, reduce and enhance the omission effects makes it difficult to understand how it is the exact nature of their involvement. The amygdala is related to several functions that depend on its connections with other brain systems. Thus, it is necessary to consider the involvement of a more complex neural network in the modulation of the reinforcement omission effects. The connection of amygdala subareas to cortical and subcortical structures may be involved in this modulation since they also are linked to processes related to reward and expectancy.

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Generalidades. Las encefalopatías espongiformes transmisibles son enfermedades neurodegenerativas ocasionadas por la acumulación anormal de una variante mal plegada de la proteína priónica, lo cual induce la formación de conglomerados proteicos resistentes a la degradación. Además, son responsables de la disfunción sináptica, daño neuronal y de la sintomatología clásica acompañante. Esta proteína de membrana es codificada por el exón 2 del gen PRNP, ubicado en el brazo corto del cromosoma 20 y parece estar involucrada en la trasmisión sináptica, la transducción de señales, la actividad antioxidante de la superoxidodismutasa, neuroplasticidad y sobrevida celular. Un polimorfismo en el codón 129 se asocia con una susceptibilidad diferencial a la enfermedad Creutzfeldt-Jakob esporádica. Objetivo. Estudio clínico, patológico y molecular de un caso de una mujer de 58 años con diagnóstico de enfermedad de Creutzfeldt- Jakob esporádica. Métodos y resultados. Se presenta el caso de una mujer en quien aparece un trastorno depresivo del afecto con demencia progresiva y sintomatología general. Al final de la enfermedad, el cuadro progresó a un déficit neurológico focalizado en el área visual. La RMN mostró hiperintensidades inespecíficas córtico-subcorticales en el núcleo estriado; en el EEG se encontró pérdida de ritmos de fondo, patrón de descargas periódicas generalizadas y complejos trifásicos; en la biopsia cerebral postmorten se evidenció pérdida severa de la población neuronal en todas las capas, vacuolas en el neuropil, en el soma neuronal y en la glía. El análisis de secuencia del gen PRNP, a partir de extracción de DNA de sangre periférica, identificó homocigosis para metionina en el codón 129. La paciente fallece a los 3 meses del inicio de la sintomatología. Conclusión. Por epidemiología, curso clínico y exámenes paraclínicos se confirma el diagnóstico de enfermedad de Creutzfeldt- Jakob esporádica.La determinación del genotipo para los polimorfismos de riesgo se convierte en una herramienta útil para complementar por medios moleculares el diagnóstico y para profundizar la comprensión de la fisiopatología de la enfermedad de Creutzfeldt-Jakob, tanto para formas esporádicas como para la nueva variante.

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Ofrecer una visión general de la Psicomotricidad. Explica las nociones de las concepciones psicomotrices de la educación y reeducación. Expone las nociones generales de la educación psicomotriz y ofrece una fundamentación de una educación vivenciada. Después estudia tres tendencias actuales en torno a la Psicomotricidad, éstas son: la psicopedagógica, psicológica y terapéutica, para concluir con una comparación entre las mismas. 1) La educación psicomotriz es un intento de recopilar e integrar todo lo que ha aportado la Psicología del niño, la psicología genética, la neuropsicología y el psicoanálisis, entre otras corrientes, para llevarlo a la práctica mediante una aproximación corporal al niño. 2) La educación psicomotriz se ocupa de la unidad y globalidad de la persona y por tanto del desarrollo de acciones múltiples que tienen lugar en el funcionamiento cerebral, cortical, subcortical, en la motricidad y en el lenguaje. Por consiguiente, la educación psicomotriz también podrá ayudar a los que más necesitan de la comprensión, de la serenidad y de la ayuda necesaria para poder evolucionar. La educación psicomotriz trata de cambiar la estructura de la escuela que viene impartiendo una educación anticuada, coercitiva, que no permite la verdadera formación de la persona en todos sus aspectos.

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Monográfico con el título: 'Visión y deporte'. Resumen tomado de la publicación

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Speech-evoked auditory brainstem responses (ABRs) were acquired in quiet and in the presence of noise at two study sessions to investigate 1) test-retest variability and 2) subcortical representation of speech stimuli. Participants were adults with normal hearing in both ears who listened monaurally and adults with unilateral deafness. Results indicate consistency in responses across sessions and several differences between hearing groups for magnitudes of discrete components.

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We recently demonstrated a functional relationship between fMRI responses within the amygdala and the medial prefrontal cortex based upon whether subjects interpreted surprised facial expressions positively or negatively. In the present fMRI study, we sought to assess amygdala-medial prefrontal cortex responsivity when the interpretations of surprised faces were determined by contextual experimental stimuli, rather than subjective judgment. Subjects passively viewed individual presentations of surprised faces preceded by either a negatively or positively valenced contextual sentence (e. g., She just found $500 vs. She just lost $500). Negative and positive sentences were carefully matched in terms of length, situations described, and arousal level. Negatively cued surprised faces produced greater ventral amygdala activation compared to positively cued surprised faces. Responses to negative versus positive sentences were greater within the ventrolateral prefrontal cortex, whereas responses to positive versus negative sentences were greater within the ventromedial prefrontal cortex. The present study demonstrates that amygdala response to surprised facial expressions can be modulated by negatively versus positively valenced verbal contextual information. Connectivity analyses identified candidate cortical-subcortical systems subserving this modulation.

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Using functional magnetic resonance imaging, we examined whether individual differences in amygdala activation in response to negative relative to neutral information are related to differences in the speed with which such information is evaluated, the extent to which such differences are associated with medial prefrontal cortex function, and their relationship with measures of trait anxiety and psychological well-being (PWB). Results indicated that faster judgments of negative relative to neutral information were associated with increased left and right amygdala activation. In the prefrontal cortex, faster judgment time was associated with relative decreased activation in a cluster in the ventral anterior cingulate cortex (ACC, BA 24). Furthermore, people who were slower to evaluate negative versus neutral information reported higher PWB. Importantly, higher PWB was strongly associated with increased activation in the ventral ACC for negative relative to neutral information. Individual differences in trait anxiety did not predict variation in judgment time or in amygdala or ventral ACC activity. These findings suggest that people high in PWB effectively recruit the ventral ACC when confronted with potentially aversive stimuli, manifest reduced activity in subcortical regions such as the amygdala, and appraise such information as less salient as reflected in slower evaluative speed.

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Numerous linguistic operations have been assigned to cortical brain areas, but the contributions of subcortical structures to human language processing are still being discussed. Using simultaneous EEG recordings directly from deep brain structures and the scalp, we show that the human thalamus systematically reacts to syntactic and semantic parameters of auditorily presented language in a temporally interleaved manner in coordination with cortical regions. In contrast, two key structures of the basal ganglia, the globus pallidus internus and the subthalamic nucleus, were not found to be engaged in these processes. We therefore propose that syntactic and semantic language analysis is primarily realized within cortico-thalamic networks, whereas a cohesive basal ganglia network is not involved in these essential operations of language analysis.

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Temporal discounting (TD) matures with age, alongside other markers of increased impulse control, and coherent, self-regulated behaviour. Discounting paradigms quantify the ability to refrain from preference of immediate rewards, in favour of delayed, larger rewards. As such, they measure temporal foresight and the ability to delay gratification, functions that develop slowly into adulthood. We investigated the neural maturation that accompanies the previously observed age-related behavioural changes in discounting, from early adolescence into mid-adulthood. We used functional magnetic resonance imaging of a hypothetical discounting task with monetary rewards delayed in the week to year range. We show that age-related reductions in choice impulsivity were associated with changes in activation in ventromedial prefrontal cortex (vmPFC), anterior cingulate cortex (ACC), ventral striatum (VS), insula, inferior temporal gyrus, and posterior parietal cortex. Limbic frontostriatal activation changes were specifically associated with age-dependent reductions in impulsive choice, as part of a more extensive network of brain areas showing age-related changes in activation, including dorsolateral PFC, inferior parietal cortex, and subcortical areas. The maturational pattern of functional connectivity included strengthening in activation coupling between ventromedial and dorsolateral PFC, parietal and insular cortices during selection of delayed alternatives, and between vmPFC and VS during selection of immediate alternatives. We conclude that maturational mechanisms within limbic frontostriatal circuitry underlie the observed post-pubertal reductions in impulsive choice with increasing age, and that this effect is dependent on increased activation coherence within a network of areas associated with discounting behaviour and inter-temporal decision-making.

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To investigate the neural network of overt speech production, eventrelated fMRI was performed in 9 young healthy adult volunteers. A clustered image acquisition technique was chosen to minimize speechrelated movement artifacts. Functional images were acquired during the production of oral movements and of speech of increasing complexity (isolated vowel as well as monosyllabic and trisyllabic utterances). This imaging technique and behavioral task enabled depiction of the articulo-phonologic network of speech production from the supplementary motor area at the cranial end to the red nucleus at the caudal end. Speaking a single vowel and performing simple oral movements involved very similar activation of the corticaland subcortical motor systems. More complex, polysyllabic utterances were associated with additional activation in the bilateral cerebellum,reflecting increased demand on speech motor control, and additional activation in the bilateral temporal cortex, reflecting the stronger involvement of phonologic processing.

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Research in the last four decades has brought a considerable advance in our understanding of how the brain synthesizes information arising from different sensory modalities. Indeed, many cortical and subcortical areas, beyond those traditionally considered to be ‘associative,’ have been shown to be involved in multisensory interaction and integration (Ghazanfar and Schroeder 2006). Visuo-tactile interaction is of particular interest, because of the prominent role played by vision in guiding our actions and anticipating their tactile consequences in everyday life. In this chapter, we focus on the functional role that visuo-tactile processing may play in driving two types of body-object interactions: avoidance and approach. We will first review some basic features of visuo-tactile interactions, as revealed by electrophysiological studies in monkeys. These will prove to be relevant for interpreting the subsequent evidence arising from human studies. A crucial point that will be stressed is that these visuo-tactile mechanisms have not only sensory, but also motor-related activity that qualifies them as multisensory-motor interfaces. Evidence will then be presented for the existence of functionally homologous processing in the human brain, both from neuropsychological research in brain-damaged patients and in healthy participants. The final part of the chapter will focus on some recent studies in humans showing that the human motor system is provided with a multisensory interface that allows for continuous monitoring of the space near the body (i.e., peripersonal space). We further demonstrate that multisensory processing can be modulated on-line as a consequence of interacting with objects. This indicates that, far from being passive, the monitoring of peripersonal space is an active process subserving actions between our body and objects located in the space around us.

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By modelling the average activity of large neuronal populations, continuum mean field models (MFMs) have become an increasingly important theoretical tool for understanding the emergent activity of cortical tissue. In order to be computationally tractable, long-range propagation of activity in MFMs is often approximated with partial differential equations (PDEs). However, PDE approximations in current use correspond to underlying axonal velocity distributions incompatible with experimental measurements. In order to rectify this deficiency, we here introduce novel propagation PDEs that give rise to smooth unimodal distributions of axonal conduction velocities. We also argue that velocities estimated from fibre diameters in slice and from latency measurements, respectively, relate quite differently to such distributions, a significant point for any phenomenological description. Our PDEs are then successfully fit to fibre diameter data from human corpus callosum and rat subcortical white matter. This allows for the first time to simulate long-range conduction in the mammalian brain with realistic, convenient PDEs. Furthermore, the obtained results suggest that the propagation of activity in rat and human differs significantly beyond mere scaling. The dynamical consequences of our new formulation are investigated in the context of a well known neural field model. On the basis of Turing instability analyses, we conclude that pattern formation is more easily initiated using our more realistic propagator. By increasing characteristic conduction velocities, a smooth transition can occur from self-sustaining bulk oscillations to travelling waves of various wavelengths, which may influence axonal growth during development. Our analytic results are also corroborated numerically using simulations on a large spatial grid. Thus we provide here a comprehensive analysis of empirically constrained activity propagation in the context of MFMs, which will allow more realistic studies of mammalian brain activity in the future.

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Major Depressive Disorder (MDD) has been associated with biased processing and abnormal regulation of negative and positive information, which may result from compromised coordinated activity of prefrontal and subcortical brain regions involved in evaluating emotional information. We tested whether patients with MDD show distributed changes in functional connectivity with a set of independently derived brain networks that have shown high correspondence with different task demands, including stimulus salience and emotional processing. We further explored if connectivity during emotional word processing related to the tendency to engage in positive or negative emotional states. In this study, 25 medication-free MDD patients without current or past comorbidity and matched controls (n=25) performed an emotional word-evaluation task during functional MRI. Using a dual regression approach, individual spatial connectivity maps representing each subject’s connectivity with each standard network were used to evaluate between-group differences and effects of positive and negative emotionality (extraversion and neuroticism, respectively, as measured with the NEO-FFI). Results showed decreased functional connectivity of the medial prefrontal cortex, ventrolateral prefrontal cortex, and ventral striatum with the fronto-opercular salience network in MDD patients compared to controls. In patients, abnormal connectivity was related to extraversion, but not neuroticism. These results confirm the hypothesis of a relative (para)limbic-cortical decoupling that may explain dysregulated affect in MDD. As connectivity of these regions with the salience network was related to extraversion, but not to general depression severity or negative emotionality, dysfunction of this network may be responsible for the failure to sustain engagement in rewarding behavior.

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The experience of learning and using a second language (L2) has been shown to affect the grey matter (GM) structure of the brain. Importantly, GM density in several cortical and subcortical areas has been shown to be related to performance in L2 tasks. Here we show that bilingualism can lead to increased GM volume in the cerebellum, a structure that has been related to the processing of grammatical rules. Additionally, the cerebellar GM volume of highly proficient L2 speakers is correlated to their performance in a task tapping on grammatical processing in a L2, demonstrating the importance of the cerebellum for the establishment and use of grammatical rules in a L2.