[Character of the distribution and the ultrastructure of the thalamic afferent fibers in the cat auditory cortex].
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The human primary auditory area (AI) corresponds to granular cortex located on Heschl's gyrus. We studied its pattern of cytochrome oxidase and acetylcholinesterase activity in 10 normal human hemispheres. In cytochrome-oxidase-stained coronal sections layer IV was prominent by its dark staining. The overall staining intensity varied along the medio-lateral extent of Al; a 2.0-2.5-mm-wide antero-posterior dark band was present at mid-AI. In acetylcholinesterase-stained coronal sections a dark antero-posterior band appeared at the same location, corresponding to the highly granular part of Al. In cytochrome-oxidase-stained tangential sections of flattened Al, approximately 500-microm thick alternating dark and light cytochrome oxidase stripes were present in layers III and IV. These stripes were perpendicular to the dark band. Comparison with tonotopic maps of human Al obtained by activation studies suggests that the cytochrome oxidase and acetylcholinesterase dark band is most likely parallel to isofrequency lines and may correspond to the representation of frequencies critical for speech comprehension. The narrow stripes may be related to particular binaural or ampliotopic domains, whose presence is suggested by evidence from electrophysiological recordings in cat Al and from magnetoencephalographic studies in humans.
Topographic distributions and laminar pattern of cortico-cortical projections from the primary auditory field (AI), anterior auditory field (AAF), dorsoposterior field (DP), ventroposterior field (VP), dorsal field (D) and ventral field (V) were studied in relation to tonotopic maps in combined anatomical, electrophysiological and 2-deoxyfluoro-D-glucose (2DG) experiments. Distributions of axons were examined by means of retrogradely-transported fluorescent tracer Fast Blue (FB) injected in the primary (AI) and anterior (AAF) auditory field. Injections of fluorescent tracer were placed in electrophysiologically-identified locations of AI and AAF. Neurons in AAF, DP, VP and V project to AI in the ipsilateral hemisphere. This area also receives projections from AI, AAF and D from the contralateral hemisphere. In AI, DP and VP, neurons are connected with AAF in the ipsilateral hemisphere and AI and AAF in the opposite hemisphere. In all cases, patches of labeling are distributed along 2DG bands oriented parallel to the isofrequency line. Substantial numbers of retrogradedly labeled neurons with similar best frequencies (BFs) were observed in the ipsilateral and moderate to scant numbers in the contralateral hemisphere. In general, regions near the injection sites receive more densely-labeled projections than do more distant targets. In both hemispheres, the supragranular layer III contains the greatest concentration of cortico-cortical cells bodies; the granular and infragranular layer V contains a somewhat lower concentration.
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For attentional control of behavior, the brain permanently resolves a competition between the impressions supplied by different senses. Here, using a dual-modality temporal order detection task, we studied attentional modulation of oscillatory neuromagnetic activity in the human cerebral cortex. On each trial, after simultaneous exposure to visual and auditory noise, subjects were presented with an asynchronous pair of a visual and an auditory stimulus. Either of the two stimuli could occur first equally often, their order was not cued. Subjects had to determine the leading stimulus in a pair and attentively monitor it to respond upon its offset. With the attended visual or auditory stimuli, spectral power analysis revealed marked enhancements of induced gamma activity within 250 ms post-stimulus onset over the modality-specific cortices (occipital at 64 Hz, right temporal at 53 Hz). When unattended, however, the stimuli led to a significantly decreased (beneath baseline) gamma response in these cortical regions. The gamma decreases occurred at lower frequencies ( approximately 30 Hz) than did the gamma increases. An increase in the gamma power and frequency for the attended modality and their decrease for the unattended modality suggest that attentional regulation of multisensory processing involves reciprocal changes in synchronization of respective cortical networks. We assume that the gamma decrease reflects an active suppression of the task-irrelevant sensory input. This suppression occurs at lower frequencies, suggesting an involvement of larger scale cell assemblies.
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