997 resultados para Electrophysiology (e.g. EEG)
Resumo:
The mismatch negativity is an electrophysiological marker of auditory change detection in the event-related brain potential and has been proposed to reflect an automatic comparison process between an incoming stimulus and the representation of prior items in a sequence. There is evidence for two main functional subcomponents comprising the MMN, generated by temporal and frontal brain areas, respectively. Using data obtained in an MMN paradigm, we performed time-frequency analysis to reveal the changes in oscillatory neural activity in the theta band. The results suggest that the frontal component of the MMN is brought about by an increase in theta power for the deviant trials and, possibly, by an additional contribution of theta phase alignment. By contrast, the temporal component of the MMN, best seen in recordings from mastoid electrodes, is generated by phase resetting of theta rhythm with no concomitant power modulation. Thus, frontal and temporal MMN components do not only differ with regard to their functional significance but also appear to be generated by distinct neurophysiological mechanisms.
Resumo:
This study explored changes in scalp electrophysiology across two Working Memory (WM) tasks and two age groups. Continuous electroencephalography (EEG) was recorded from 18 healthy adults (18-34 years) and 12 healthy adolescents (14-17) during the performance of two Oculomotor Delayed Response (ODR) WM tasks; (i.e. eye movements were the metric of motor response). Delay-period, EEG data in the alpha frequency was sampled from anterior and parietal scalp sites to achieve a general measure of frontal and parietal activity, respectively. Frontal-parietal, alpha coherence was calculated for each participant for each ODR-WM task. Coherence significantly decreased in adults moving across the two ODR tasks, whereas, coherence significantly increased in adolescents moving across the two ODR tasks. The effects of task in the adolescent and adult groups were large and medium, respectively. Within the limits of this study, the results provide empirical support that WM development during adolescence include complex, qualitative, change.
Resumo:
Au cours des 25 dernières années, les recherches sur le développement visuel chez l’humain à l’aide de l’électrophysiologie cérébrale et des potentiels évoqués visuels (PEV) ont permis d’explorer plusieurs fonctions associées au cortex visuel. Néanmoins, le développement de certaines d’entre elles (p. ex. segmentation des textures), tout comme les effets de la prématurité sur celles-ci, sont des aspects qui nécessitent d’être davantage étudiés. Par ailleurs, compte tenu de l’importance de la vision dans le développement de certaines fonctions cognitives (p. ex. lecture, visuomotricité), de plus en plus de recherches s’intéressent aux relations entre la vision et la cognition. Les objectifs généraux de la présente thèse étaient d’étudier le développement visuel chez les enfants nés à terme et nés prématurément à l’aide de l’électrophysiologie, puis de documenter les impacts de la prématurité sur le développement visuel et cognitif. Deux études ont été réalisées. La première visait à examiner, chez des enfants nés prématurément, le développement des voies visuelles primaires durant la première année de vie et en début de scolarisation, ainsi qu’à documenter leur profil cognitif et comportemental. À l’aide d’un devis semi-longitudinal, dix enfants nés prématurément ont été évalués à l’âge de six mois (âge corrigé) et à 7-8 ans en utilisant des PEV, et des épreuves cognitives et comportementales à l’âge scolaire. Leurs résultats ont été comparés à ceux de 10 enfants nés à terme appariés pour l’âge. À six mois, aucune différence de latence ou d’amplitude des ondes N1 et P1 n’a été trouvée entre les groupes. À l’âge scolaire, les enfants nés prématurément montraient, comparativement aux enfants nés à terme, une plus grande amplitude de N1 dans la condition P-préférentielle et dans celle co-stimulant les voies M et P, et de P1 (tendance) dans la condition M-préférentielle. Aucune différence n’a été trouvée entre les groupes aux mesures cognitives et comportementales. Ces résultats suggèrent qu’une naissance prématurée exerce un impact sur le développement des voies visuelles centrales. L’objectif de la seconde étude était de documenter le développement des processus de segmentation visuelle des textures durant la petite enfance chez des enfants nés à terme et nés prématurément à l’aide des PEV et d’un devis transversal. Quarante-cinq enfants nés à terme et 43 enfants nés prématurément ont été évalués à 12, 24 ou 36 mois (âge corrigé pour les prématurés à 12 et 24 mois). Les résultats indiquaient une diminution significative de la latence de la composante N2 entre 12 et 36 mois en réponse à l’orientation, à la texture et à la segmentation des textures, ainsi qu’une diminution significative d’amplitude pour l’orientation entre 12 et 24 mois, et pour la texture entre 12 et 24 mois, et 12 et 36 mois. Les comparaisons entre les enfants nés à terme et ceux nés prématurément démontraient une amplitude de N2 réduite chez ces derniers à 12 mois pour l’orientation et la texture. Bien que ces différences ne fussent plus apparentes à 24 mois, nos résultats semblent refléter un délai de maturation des processus visuel de bas et de plus haut niveau chez les enfants nés prématurément, du moins, pendant la petite enfance. En conclusion, nos résultats indiquent que la prématurité, même sans atteinte neurologique importante, altère le développement des fonctions visuelles à certaines périodes du développement et mettent en évidence l’importance d’en investiguer davantage les impacts (p. ex. cognitifs, comportementaux, scolaires) à moyen et long-terme.
Resumo:
This paper describes a computational and statistical study of the influence of morphological changes on the electrophysiological response of neurons from an animal model of Alzheimer's Disease (AD). We combined experimental morphological data from rat hippocampal CA1 pyramidal cells with a well-established model of active membrane properties. Dendritic morphology and the somatic response to simulated current clamp conditions were then compared for cells from the control and the AD group. The computational approach allowed us to single out the influences of neuromorphology on neuronal response by eliminating the effects of active channel variability. The results did not reveal a simple relationship between morphological changes associated with AD and changes in neural response. However, they did suggest the existence of more complex than anticipated relationships between dendritic morphology and single-cell electrophysiology.
Resumo:
We investigated the effect of morphological differences on neuronal firing behavior within the hippocampal CA3 pyramidal cell family by using three-dimensional reconstructions of dendritic morphology in computational simulations of electrophysiology. In this paper, we report for the first time that differences in dendritic structure within the same morphological class can have a dramatic influence on the firing rate and firing mode (spiking versus bursting and type of bursting). Our method consisted of converting morphological measurements from three-dimensional neuroanatomical data of CA3 pyramidal cells into a computational simulator format. In the simulation, active channels were distributed evenly across the cells so that the electrophysiological differences observed in the neurons would only be due to morphological differences. We found that differences in the size of the dendritic tree of CA3 pyramidal cells had a significant qualitative and quantitative effect on the electrophysiological response. Cells with larger dendritic trees: (1) had a lower burst rate, but a higher spike rate within a burst, (2) had higher thresholds for transitions from quiescent to bursting and from bursting to regular spiking and (3) tended to burst with a plateau. Dendritic tree size alone did not account for all the differences in electrophysiological responses. Differences in apical branching, such as the distribution of branch points and terminations per branch order, appear to effect the duration of a burst. These results highlight the importance of considering the contribution of morphology in electrophysiological and simulation studies.
Resumo:
Objective. Assimilating the diagnosis complete spinal cord injury (SCI) takes time and is not easy, as patients know that there is no ‘cure’ at the present time. Brain–computer interfaces (BCIs) can facilitate daily living. However, inter-subject variability demands measurements with potential user groups and an understanding of how they differ to healthy users BCIs are more commonly tested with. Thus, a three-class motor imagery (MI) screening (left hand, right hand, feet) was performed with a group of 10 able-bodied and 16 complete spinal-cord-injured people (paraplegics, tetraplegics) with the objective of determining what differences were present between the user groups and how they would impact upon the ability of these user groups to interact with a BCI. Approach. Electrophysiological differences between patient groups and healthy users are measured in terms of sensorimotor rhythm deflections from baseline during MI, electroencephalogram microstate scalp maps and strengths of inter-channel phase synchronization. Additionally, using a common spatial pattern algorithm and a linear discriminant analysis classifier, the classification accuracy was calculated and compared between groups. Main results. It is seen that both patient groups (tetraplegic and paraplegic) have some significant differences in event-related desynchronization strengths, exhibit significant increases in synchronization and reach significantly lower accuracies (mean (M) = 66.1%) than the group of healthy subjects (M = 85.1%). Significance. The results demonstrate significant differences in electrophysiological correlates of motor control between healthy individuals and those individuals who stand to benefit most from BCI technology (individuals with SCI). They highlight the difficulty in directly translating results from healthy subjects to participants with SCI and the challenges that, therefore, arise in providing BCIs to such individuals
Resumo:
OBJECTIVE: Assimilating the diagnosis complete spinal cord injury (SCI) takes time and is not easy, as patients know that there is no 'cure' at the present time. Brain-computer interfaces (BCIs) can facilitate daily living. However, inter-subject variability demands measurements with potential user groups and an understanding of how they differ to healthy users BCIs are more commonly tested with. Thus, a three-class motor imagery (MI) screening (left hand, right hand, feet) was performed with a group of 10 able-bodied and 16 complete spinal-cord-injured people (paraplegics, tetraplegics) with the objective of determining what differences were present between the user groups and how they would impact upon the ability of these user groups to interact with a BCI. APPROACH: Electrophysiological differences between patient groups and healthy users are measured in terms of sensorimotor rhythm deflections from baseline during MI, electroencephalogram microstate scalp maps and strengths of inter-channel phase synchronization. Additionally, using a common spatial pattern algorithm and a linear discriminant analysis classifier, the classification accuracy was calculated and compared between groups. MAIN RESULTS: It is seen that both patient groups (tetraplegic and paraplegic) have some significant differences in event-related desynchronization strengths, exhibit significant increases in synchronization and reach significantly lower accuracies (mean (M) = 66.1%) than the group of healthy subjects (M = 85.1%). SIGNIFICANCE: The results demonstrate significant differences in electrophysiological correlates of motor control between healthy individuals and those individuals who stand to benefit most from BCI technology (individuals with SCI). They highlight the difficulty in directly translating results from healthy subjects to participants with SCI and the challenges that, therefore, arise in providing BCIs to such individuals.
Resumo:
We examined the EEG of 88 patients with chronic renal failure (80 adults and 8 children) submitted to different types of treatment such as hemodialysis, peritoneal dialisys, renal transplantation, and ambulatory follow-up. The main alteration observed was diffuse disorganization of background activity. The following features were detected in decreasing order of frequency: low-voltage EEG, triphasic waves, abnormal waking reactions, and paradoxal alpha rhythm. The children showed abnormal alpha rhythm. The alterations induced by intermittent photic stimulation in our patients were minimal, and this was the main difference in relation to data reported by other authors in EEG studies on patients with chronic uremia.
Resumo:
The authors describe paroxismal epileptiform EEG abnormalities in patients with chronic renal failure. One patient presented paroxismal epileptiform abnormalities in the right parietal region which proceded partial oculo-clonic motor seizures followed by a stroke localized in the same region. This was the main electroclinical correlation found, which, however, was not observed in other patients. Dialysis sessions may improve or worsen these paroxismal epileptiform abnormalities.
Resumo:
In 1983 and 1984 we performed a longitudinal 1-year follow-up study of 15 patients with chronic renal failure, 8 of whom were on hemodialysis and 7 on peritoneal dialysis. The EEG abnormalities of these patients were catalogued and filed and the patients' medical records were examined 5 years later for an analysis of their clinical evolution. Old age EEG findings were detected in young patients with chronic renal failure who died. We conclude that old age EEG findings in patients of any age with chronic renal failure represent a poor prognosis. In contrast, EEG asynchronies are associated with severe uremic encephalopathy but are reversible, since these phenomena were fully reversed together with all clinical alterations in a patient who later received a renal transplant.
Resumo:
The research field of my PhD concerns mathematical modeling and numerical simulation, applied to the cardiac electrophysiology analysis at a single cell level. This is possible thanks to the development of mathematical descriptions of single cellular components, ionic channels, pumps, exchangers and subcellular compartments. Due to the difficulties of vivo experiments on human cells, most of the measurements are acquired in vitro using animal models (e.g. guinea pig, dog, rabbit). Moreover, to study the cardiac action potential and all its features, it is necessary to acquire more specific knowledge about single ionic currents that contribute to the cardiac activity. Electrophysiological models of the heart have become very accurate in recent years giving rise to extremely complicated systems of differential equations. Although describing the behavior of cardiac cells quite well, the models are computationally demanding for numerical simulations and are very difficult to analyze from a mathematical (dynamical-systems) viewpoint. Simplified mathematical models that capture the underlying dynamics to a certain extent are therefore frequently used. The results presented in this thesis have confirmed that a close integration of computational modeling and experimental recordings in real myocytes, as performed by dynamic clamp, is a useful tool in enhancing our understanding of various components of normal cardiac electrophysiology, but also arrhythmogenic mechanisms in a pathological condition, especially when fully integrated with experimental data.
Resumo:
Heart diseases are the leading cause of death worldwide, both for men and women. However, the ionic mechanisms underlying many cardiac arrhythmias and genetic disorders are not completely understood, thus leading to a limited efficacy of the current available therapies and leaving many open questions for cardiac electrophysiologists. On the other hand, experimental data availability is still a great issue in this field: most of the experiments are performed in vitro and/or using animal models (e.g. rabbit, dog and mouse), even when the final aim is to better understand the electrical behaviour of in vivo human heart either in physiological or pathological conditions. Computational modelling constitutes a primary tool in cardiac electrophysiology: in silico simulations, based on the available experimental data, may help to understand the electrical properties of the heart and the ionic mechanisms underlying a specific phenomenon. Once validated, mathematical models can be used for making predictions and testing hypotheses, thus suggesting potential therapeutic targets. This PhD thesis aims to apply computational cardiac modelling of human single cell action potential (AP) to three clinical scenarios, in order to gain new insights into the ionic mechanisms involved in the electrophysiological changes observed in vitro and/or in vivo. The first context is blood electrolyte variations, which may occur in patients due to different pathologies and/or therapies. In particular, we focused on extracellular Ca2+ and its effect on the AP duration (APD). The second context is haemodialysis (HD) therapy: in addition to blood electrolyte variations, patients undergo a lot of other different changes during HD, e.g. heart rate, cell volume, pH, and sympatho-vagal balance. The third context is human hypertrophic cardiomyopathy (HCM), a genetic disorder characterised by an increased arrhythmic risk, and still lacking a specific pharmacological treatment.