988 resultados para Auditory temporal processing


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Time is embedded in any sensory experience: the movements of a dance, the rhythm of a piece of music, the words of a speaker are all examples of temporally structured sensory events. In humans, if and how visual cortices perform temporal processing remains unclear. Here we show that both primary visual cortex (V1) and extrastriate area V5/MT are causally involved in encoding and keeping time in memory and that this involvement is independent from low-level visual processing. Most importantly we demonstrate that V1 and V5/MT come into play simultaneously and seem to be functionally linked during interval encoding, whereas they operate serially (V1 followed by V5/MT) and seem to be independent while maintaining temporal information in working memory. These data help to refine our knowledge of the functional properties of human visual cortex, highlighting the contribution and the temporal dynamics of V1 and V5/MT in the processing of the temporal aspects of visual information.

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La perception est décrite comme l’ensemble des processus permettant au cerveau de recueillir et de traiter l’information sensorielle. Un traitement perceptif atypique se retrouve souvent associé au phénotype autistique habituellement décrit en termes de déficits des habilités sociales et de communication ainsi que par des comportements stéréotypés et intérêts restreints. Les particularités perceptives des autistes se manifestent à différents niveaux de traitement de l’information; les autistes obtiennent des performances supérieures à celles des non autistes pour discriminer des stimuli simples, comme des sons purs, ou encore pour des tâches de plus haut niveau comme la détection de formes enchevêtrées dans une figure complexe. Spécifiquement pour le traitement perceptif de bas niveau, on rapporte une dissociation de performance en vision. En effet, les autistes obtiennent des performances supérieures pour discriminer les stimuli définis par la luminance et inférieures pour les stimuli définis par la texture en comparaison à des non autistes. Ce pattern dichotomique a mené à l’élaboration d’une hypothèse suggérant que l’étendue (ou complexité) du réseau de régions corticales impliquées dans le traitement des stimuli pourrait sous-tendre ces différences comportementales. En effet, les autistes obtiennent des performances supérieures pour traiter les stimuli visuels entièrement décodés au niveau d’une seule région corticale (simples) et inférieures pour les stimuli dont l’analyse requiert l’implication de plusieurs régions corticales (complexes). Un traitement perceptif atypique représente une caractéristique générale associée au phénotype autistique, avec de particularités rapportées tant dans la modalité visuelle qu’auditive. Étant donné les parallèles entre ces deux modalités sensorielles, cette thèse vise à vérifier si l’hypothèse proposée pour expliquer certaines particularités du traitement de l’information visuelle peut possiblement aussi caractériser le traitement de l’information auditive dans l’autisme. Le premier article (Chapitre 2) expose le niveau de performance des autistes, parfois supérieur, parfois inférieur à celui des non autistes lors du traitement de l’information auditive et suggère que la complexité du matériel auditif à traiter pourrait être en lien avec certaines des différences observées. Le deuxième article (Chapitre 3) présente une méta-analyse quantitative investiguant la représentation au niveau cortical de la complexité acoustique chez les non autistes. Ce travail confirme l’organisation fonctionnelle hiérarchique du cortex auditif et permet d’identifier, comme en vision, des stimuli auditifs pouvant être définis comme simples et complexes selon l’étendue du réseau de régions corticales requises pour les traiter. Le troisième article (Chapitre 4) vérifie l’extension des prédictions de l’hypothèse proposée en vision au traitement de l’information auditive. Spécifiquement, ce projet compare les activations cérébrales sous-tendant le traitement des sons simples et complexes chez des autistes et des non autistes. Tel qu’attendu, les autistes montrent un patron d’activité atypique en réponse aux stimuli complexes, c’est-à-dire ceux dont le traitement nécessitent l’implication de plusieurs régions corticales. En bref, l’ensemble des résultats suggèrent que les prédictions de l’hypothèse formulée en vision peuvent aussi s’appliquer en audition et possiblement expliquer certaines particularités du traitement de l’information auditive dans l’autisme. Ce travail met en lumière des différences fondamentales du traitement perceptif contribuant à une meilleure compréhension des mécanismes d’acquisition de l’information dans cette population.

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PURPOSE. To evaluate achromatic contrast sensitivity (CS) with magnocellular-(M) and parvocellular-(P) probing stimuli in type 2 diabetics, with (DR) or without (NDR) nonproliferative retinopathy. METHODS. Inferred M-and P-dominated responses were assessed with a modified version of the steady-/pulsed-pedestal paradigm (SP/PP) applied in 26 NDR (11 male; mean age, 55 +/- 9 years; disease duration, 5 +/- 4 years); 19 DR (6 male; mean age, 58 +/- 7 years; disease duration = 9 +/- 6 years); and 18 controls (CTRL; 12 male; mean age, 55 +/- 10 years). Thresholds were measured with pedestals at 7, 12, and 19 cd/m(2), and increment durations of 17 and 133 ms. The thresholds from the two stimulus durations were used to estimate critical durations (Tc) for each data set. RESULTS. Both DR and NDR patients had significant reduction in CS in both SP and PP paradigms in relation to CTRL (Kruskal-Wallis, P < 0.01). Patients` critical duration estimates for either paradigm were not significantly different from CTRL. CONCLUSIONS. The significant reduction of CS in both paradigms is consistent with losses of CS in both M and P pathways. The CS losses were not accompanied by losses in temporal processing speed in either diabetic group. Significant CS loss in the group without retinopathy reinforces the notion that neural changes associated with the cellular and functional visual loss may play an important role in the etiology of diabetic visual impairment. In addition, the results show that the SP/PP paradigm provides an additional tool for detection and characterization of the early functional damage due to diabetes. (Invest Ophthalmol Vis Sci. 2011; 52:1151-1155) DOI:10.1167/iovs.09-3705

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Amakrinzellen sind hemmende Interneurone der Netzhaut. Sie exprimieren erregende, ionotrope Glutamat-Rezeptoren und hemmende Glyzin- bzw. GABA-Rezeptoren. In der vorliegenden Arbeit wurden die Glyzinrezeptoren von Amakrinzellen mit Hilfe der „Patch Clamp“ Technik in Wildtyp- und Glyzin-Rezeptor Knock-out-Mäusen (Glra1spd-ot, Glra2-/-, Glra3-/-) untersucht. In Schnitten und Ganzpräparaten von akut isolierten Netzhäuten wurden Glyzin-induzierte und spontane inhibitorische postsynaptische Ströme (sIPSCs) gemessen. Die Untersuchungen beschränkten sich auf eine Gruppe von Amakrinzellen, die sich durch ein relativ kleines Dendritenfeld auszeichnen, das alle Schichten der IPL durchzieht. Dabei wurden die Ströme von zwei Typen von Amakrinzellen, den AII-Zellen und den NF-Zellen, miteinander verglichen. Alle untersuchten Amakrinzellen reagierten mit einem Stromfluss über die Membran, wenn Glyzin appliziert wurde. Bei AII-Zellen war die Amplitude des Stromes bei der Glra3-/--Maus um etwa 50 % reduziert, während bei den anderen Mauslinien kein Unterschied zum Wildtyp festgestellt wurde. Bei NF-Zellen wurde nur ein geringer Unterschied der Stromamplituden zwischen Wildtyp und Mutanten gefunden. Er war am deutlichsten bei der Glra2-/--Maus. Picrotoxinin ist ein effektiver Antagonist von homomeren Glyzinrezeptoren, während heteromere Glyzinrezeptoren relativ unempfindlich sind. Die Wirkung von Picrotoxinin war bei allen untersuchten Zellen ähnlich und reduzierte die Glyzinantwort um etwa 25 - 30 %. Dieser Effekt war unabhängig von der Mauslinie. Amakrinzellen exprimieren also zum Großteil heteromere Rezeptoren Zur Untersuchung der synaptischen Glyzinrezeptoren der Amakrinzellen wurden die spontanen inhibitorischen postsynaptischen Ströme dieser Zellen gemessen und deren Amplituden und Kinetiken bestimmt. Dabei unterschieden sich die Zeitkonstanten der Deaktivierungs/Desensitivierungskinetik (τw) von AII- und NF-Zellen, wohingegen die Aktivierungszeit nicht voneinander abwich. Spontane IPSCs, die von AII-Amakrinzellen abgeleitet wurden, hatten eine mittlere Zeitkonstante von τ = 11 ms und streuten zwischen 5 und 30 ms. Die Zeitkonstanten der sIPSCs von NF-Amakrinzellen lagen zwischen 10 und 50 ms und wiesen eine mittlere Zeitkonstante von τw = 27 ms auf. Die unterschiedlichen Zeitkonstanten spiegeln die Zusammensetzung der α-Untereinheiten des Glyzinrezeptors wider. AII-Zellen in der Glra1-/-- und in der Glra2-/--Maus hatten vergleichbare Zeitkonstanten wie die AII-Zellen im Wildtyp. Bei der Glra3-/--Maus konnten bei 50 untersuchten AII-Amakrinzellen keine sIPSCs gemessen werden. Dies und die Ergebnisse der Glyzin-induzierten Ströme von AII-Zellen lassen darauf schließen, dass die glyzinergen Synapsen dieser Zellen bevorzugt die α3-Untereinheit enthalten. Bei NF-Amakrinzellen konnte kein Unterschied zwischen Wildtyp-, Glra1spd-ot- und Glra3-/--Mäusen festgestellt werden. Dagegen zeigten die sIPSCs der NF-Amakrinzellen der Glra2-/--Maus signifikant längere Zeitkonstanten. Der Mittelwert verlängerte sich von 27 ms auf 69 ms und es war eine breitere Streuung mit Zeitkonstanten zwischen 15 und 200 ms zu sehen. Die glyzinergen Synapsen der NF-Zellen enthalten vor allem die α2-Untereinheit des Glyzinrezeptors. Die Zeitkonstanten der sIPSCs sind unabhängig von der Verteilung ihrer jeweiligen Amplituden, und zwischen Wildtyp- und KO-Mäusen wurden keine Unterschiede in den Amplituden der sIPSCs beobachtet. Während der Untersuchungen wurden sporadisch noch weitere Amakrinzellen, vor allem „widefield“- (WF) Zellen abgeleitet. Die Verteilungen der Zeitkonstanten der sIPSCs dieser Zellen streuten zwischen 8 und über 100 ms. Dabei wurden Zeitkonstanten gemessen, die noch langsamer waren als die von NF-Amakrinzellen und bei einigen WF-Zellen wurden mittlere Zeitkonstanten von mehr als 50 ms beobachtet. Diese Ergebnisse zeigen, dass unterschiedliche Klassen von Amakrinzellen verschiedene α-Untereinheiten des Glyzinrezeptors in den Synapsen exprimieren. Dies hat Auswirkung auf die Kinetik der glyzinergen Hemmung bei diesen Zellen und lässt darauf schließen, dass sie bei der zeitlichen Modulation der Lichtsignale unterschiedliche Aufgaben haben.

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Visually impaired people show superior abilities in various perception tasks such as auditory attention, auditory temporal resolution, auditory spatial tuning, and odor discrimination. However, with the use of psychophysical methods, auditory and olfactory detection thresholds typically do not differ between visually impaired and sighted participants. Using a motion platform we investigated thresholds of passive whole-body motion discrimination in nine visually impaired participants and nine age-matched sighted controls. Participants were rotated in yaw, tilted in roll, and translated along the y-axis at two different frequencies (0.3 Hz and 2 Hz). An adaptive 3-down 1-up staircase procedure was used along with a two-alternative direction (leftward vs. rightward) discrimination task. Superior performance of visually impaired participants was found in the 0.3 Hz roll tilt condition. No differences between the visually impaired and controls were observed in all other types of motion. The superior performance in the 0.3 Hz roll tilt condition could reflect differences in the integration of extra-vestibular cues and increased sensitivity towards changes in the direction of the gravito-inertial force. In the absence of visual information, roll tilts entail a more pronounced risk of falling, and this could eventually account for the group difference. It is argued that differences in experimental procedures (i.e. detection vs. discrimination of stimuli) explain the discrepant findings across perceptual tasks comparing blind and sighted participants.

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Peripheral auditory neurons are tuned to single frequencies of sound. In the central auditory system, excitatory (or facilitatory) and inhibitory neural interactions take place at multiple levels and produce neurons with sharp level-tolerant frequency-tuning curves, neurons tuned to parameters other than frequency, cochleotopic (frequency) maps, which are different from the peripheral cochleotopic map, and computational maps. The mechanisms to create the response properties of these neurons have been considered to be solely caused by divergent and convergent projections of neurons in the ascending auditory system. The recent research on the corticofugal (descending) auditory system, however, indicates that the corticofugal system adjusts and improves auditory signal processing by modulating neural responses and maps. The corticofugal function consists of at least the following subfunctions. (i) Egocentric selection for short-term modulation of auditory signal processing according to auditory experience. Egocentric selection, based on focused positive feedback associated with widespread lateral inhibition, is mediated by the cortical neural net working together with the corticofugal system. (ii) Reorganization for long-term modulation of the processing of behaviorally relevant auditory signals. Reorganization is based on egocentric selection working together with nonauditory systems. (iii) Gain control based on overall excitatory, facilitatory, or inhibitory corticofugal modulation. Egocentric selection can be viewed as selective gain control. (iv) Shaping (or even creation) of response properties of neurons. Filter properties of neurons in the frequency, amplitude, time, and spatial domains can be sharpened by the corticofugal system. Sharpening of tuning is one of the functions of egocentric selection.

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O estudo do movimento pulmonar é assunto de grande interesse na área médica. A observação direta do mesmo é inviável, uma vez que o pulmão colapsa quando a caixa torácica é aberta. Dentre os meios de observação indireta, escolheu-se o imageamento por ressonância magnética em respiração livre e sem uso de nenhum gás para melhorar o contraste ou qualquer informação de sincronismo. Esta escolha propõe diversos desafios, como: a superar a alta variação na qualidade das imagens, que é baixa, em geral, e a suscetibilidade a artefatos, entre outras limitações a serem superadas. Imagens de Tomografia Computadorizada apresentam melhor qualidade e menor tempo de aquisição, mas expõem o paciente a níveis consideráveis de radiação ionizante. É apresentada uma metodologia para segmentação do pulmão, produzindo um conjunto de pontos coordenados. Isto é feito através do processamento temporal da sequência de imagens de RM. Este processamento consiste nas seguintes etapas: geração de imagens temporais (2DSTI), transformada de Hough modificada, algoritmo de contornos ativos e geração de silhueta. A partir de um dado ponto, denominado centro de rotação, são geradas diversas imagens temporais com orientações variadas. É proposta uma formulação modificada da transformada de Hough para determinar curvas parametrizadas que sejam síncronas ao movimento diafragmático, chamados movimentos respiratórios. Também são utilizadas máscaras para delimitar o domínio de aplicação da transformada de Hough. São obtidos movimentos respiratórios que são suavizados pelo algoritmo de contornos ativos e, assim, permitem a geração de contornos para cada quadro pertencente a sequência e, portanto, de uma silhueta do pulmão para cada sequência.

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The time perception is critical for environmental adaptation in humans and other species. The temporal processing, has evolved through different neural systems, each responsible for processing different time scales. Among the most studied scales is that spans the arrangement of seconds to minutes. Evidence suggests that the dorsolateral prefrontal (DLPFC) cortex has relationship with the time perception scale of seconds. However, it is unclear whether the deficit of time perception in patients with brain injuries or even "reversible lesions" caused by transcranial magnetic stimulation (TMS) in this region, whether by disruption of other cognitive processes (such as attention and working memory) or the time perception itself. Studies also link the region of DLPFC in emotional regulation and specifically the judgment and emotional anticipation. Given this, our objective was to study the role of the dorsolateral prefrontal cortex in the time perception intervals of active and emotionally neutral stimuli, from the effects of cortical modulation by transcranial direct current stimulation (tDCS), through the cortical excitation (anodic current), inhibition (cathode current) and control (sham) using the ranges of 4 and 8 seconds. Our results showed that there is an underestimation when the picture was presented by 8 seconds, with the anodic current in the right DLPFC, there is an underestimation and with cathodic current in the left DLPFC, there is an overestimation of the time reproduction with neutral ones. The cathodic current over the left DLPFC leads to an inverse effect of neutral ones, an underestimation of time with negative pictures. Positive or negative pictures improved estimates for 8 second and positive pictures inhibited the effect of tDCS in DLPFC in estimating time to 4 seconds. With this work, we conclude that the DLPFC plays a key role in the o time perception and largely corresponds to the stages of memory and decision on the internal clock model. The left hemisphere participates in the perception of time in both active and emotionally neutral contexts, and we can conclude that the ETCC and an effective method to study the cortical functions in the time perception in terms of cause and effect.

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Background: Temporal lobe epilepsy (TLE) is a neurological disorder that directly affects cortical areas responsible for auditory processing. The resulting abnormalities can be assessed using event-related potentials (ERP), which have high temporal resolution. However, little is known about TLE in terms of dysfunction of early sensory memory encoding or possible correlations between EEGs, linguistic deficits, and seizures. Mismatch negativity (MMN) is an ERP component – elicited by introducing a deviant stimulus while the subject is attending to a repetitive behavioural task – which reflects pre-attentive sensory memory function and reflects neuronal auditory discrimination and perceptional accuracy. Hypothesis: We propose an MMN protocol for future clinical application and research based on the hypothesis that children with TLE may have abnormal MMN for speech and non-speech stimuli. The MMN can be elicited with a passive auditory oddball paradigm, and the abnormalities might be associated with the location and frequency of epileptic seizures. Significance: The suggested protocol might contribute to a better understanding of the neuropsychophysiological basis of MMN. We suggest that in TLE central sound representation may be decreased for speech and non-speech stimuli. Discussion: MMN arises from a difference to speech and non-speech stimuli across electrode sites. TLE in childhood might be a good model for studying topographic and functional auditory processing and its neurodevelopment, pointing to MMN as a possible clinical tool for prognosis, evaluation, follow-up, and rehabilitation for TLE.

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TLE in infancy has been the subject of varied research. Topographical and structural evidence is coincident with the neuronal systems responsible for auditory processing of the highest specialization and complexity. Recent studies have been showing the need of a hemispheric asymmetry for an optimization in central auditory processing (CAP) and acquisition and learning of a language system. A new functional research paradigm is required to study mental processes that require methods of cognitive-sensory information analysis processed in very short periods of time (msec), such as the ERPs. Thus, in this article, we hypothesize that the TLE in infancy could be a good model for topographic and functional study of CAP and its development process, contributing to a better understanding of the learning difficulties that children with this neurological disorder have.

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Recent evidence suggests the human auditory system is organized,like the visual system, into a ventral 'what' pathway, devoted toidentifying objects and a dorsal 'where' pathway devoted to thelocalization of objects in space w1x. Several brain regions have beenidentified in these two different pathways, but until now little isknown about the temporal dynamics of these regions. We investigatedthis issue using 128-channel auditory evoked potentials(AEPs).Stimuli were stationary sounds created by varying interaural timedifferences and environmental real recorded sounds. Stimuli ofeach condition (localization, recognition) were presented throughearphones in a blocked design, while subjects determined theirposition or meaning, respectively.AEPs were analyzed in terms of their topographical scalp potentialdistributions (segmentation maps) and underlying neuronalgenerators (source estimation) w2x.Fourteen scalp potential distributions (maps) best explained theentire data set.Ten maps were nonspecific (associated with auditory stimulationin general), two were specific for sound localization and two werespecific for sound recognition (P-values ranging from 0.02 to0.045).Condition-specific maps appeared at two distinct time periods:;200 ms and ;375-550 ms post-stimulus.The brain sources associated with the maps specific for soundlocalization were mainly situated in the inferior frontal cortices,confirming previous findings w3x. The sources associated withsound recognition were predominantly located in the temporal cortices,with a weaker activation in the frontal cortex.The data show that sound localization and sound recognitionengage different brain networks that are apparent at two distincttime periods.References1. Maeder et al. Neuroimage 2001.2. Michel et al. Brain Research Review 2001.3. Ducommun et al. Neuroimage 2002.