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Evoked magnetic responses of the human auditory cortex to minor pitch changes: localization of the mismatch field.

The neuromagnetic source localizations of the auditory M100 and the mismatch field (MMF) were studied using a large-array biomagnetometer. Standard tones of 1000 Hz and deviant tones of 1050 Hz were delivered with 90% and 10% probability, respectively. Wave forms of the derived MMF were computed by examining difference wave forms between the responses to the deviants and the responses to the standards preceding (D-P) and following (D-F) the deviants as well as to all remaining standards (D-A). The subset of standards preceding the deviants was used for a more realistic comparison with the set of deviants (having the same number of epochs and a similar signal-to-noise ratio), while the subset of standards following the deviants served to answer the question whether those standards also elicit an MMF. The MMF deflections were compared with each other, with the "native" MMF occurring in response to the deviants, and with wave M100. (The MMF as it appears in the unprocessed response to the deviants was termed "native" for an easy distinction from the "derived" MMF.) Our results demonstrate a distinct MMF deflection, corresponding in latency to the simultaneously recorded fronto-central electrical MMN. Source analysis, using a single moving dipole model, showed the same spatial localization for the native MMF and for the different derived MMFs. The MMF source location turned out to be significantly anterior, medial and inferior relative to the sources of the M100. The present data also demonstrate that a minor frequency deviation may not activate measurably different M100 generators, yet be sufficient to trigger the nearby but spatially distinct mismatch generator.

Acoustic Stimulation↗

Responses of neurones of the pontine nuclei to stimulation of the sensorimotor, visual and auditory cortex of rats.

The aim of this study was to investigate the degree of convergence of corticofugal neurones from various cortical areas onto single neurones of the pontine nuclei (PN). Eighty-five% of the PN neurones responded to electrical stimulation of at least one of the following cortical areas: sensorimotor, visual, auditory. Slightly less than half of these neurones displayed a convergent input from two or three of functionally different cortical areas. The sensorimotor cortex, particularly the face areas, provided the most important input to the PN; stimulation of the visual cortex was less effective and stimulation of the auditory cortex rarely excited PN neurones. The electrophysiological results suggest that considerable cross-link exists between the anatomically defined cortico-pontine projection columns.

Animals↗

Organization of rodent auditory cortex: anterograde transport of PHA-L from MGv to temporal neocortex.

In the present study we analyzed the organization of the thalamocortical projections of the specific auditory relay nucleus of the thalamus, the ventral division of the medial geniculate body (MGv), using the anterograde axonal tracer Phaseolus vulgaris leucoagglutinin. All injections of MGv produced dense labeling of axonal fibers in temporal cortex. In all cases, labeled axons were predominantly concentrated in cortical layers III and IV and, to a lesser extent, at the junction of layers V and VI. Injections confined to the medial regions of MGv, and specifically to the ovoid nucleus of MGv (OV, pars ovoidea), resulted in anterograde labeling of TE1, with minor labeling of the ventral quarter of TE1, designated subarea TE1v. Injections placed in lateral regions of MGv and occupying the lateral ventral subnucleus (LV), or injections in the mediolateral center of MGv and occupying parts of LV and OV, also resulted in labeling of area TE1 and minor labeling of TE1v. However, these injections also produced labeling in areas TE2 and TE3. Thus, area TE1 (excluding subarea TE1v) receives heavy projections from all aspects of MGv and appears to be the core target of MGv. While regions of MGv also project to surrounding cortical belt areas, these projections tend to be lighter and to vary depending on the region of MGv examined. These results, together with other connectional findings, and cytoarchitectonic and physiological studies, suggest that TE1 (possibly excluding subarea TE1v) is the primary auditory cortex in the rat.

Animals↗

The spiny stellate neurons in layer IV of the human auditory cortex. A Golgi study.

The spiny stellate neurons have been studied by the Golgi method in the auditory koniocortex and parakoniocortex of man. Spiny stellate cells are a consistent though not very common component of layer IV. They are not confined to specific sublayers but occur at all depths of layer IV, and also in layer IIIc. Spiny stellate cells in the auditory areas show a great variety of their dendritic arborization pattern. The presence of all intermediate forms between small pyramidal cells--which constitute the dominant cell type in layer IV and which display an extraordinary heteromorphism--and spiny stellate cells shows the close kinship between both neuronal types. The morphology and distribution of spines along the dendrites of spiny stellate neurons are similar to those of the small pyramidal cells of the same layer. The axons, which were impregnated only in their proximal portions, mostly descend, giving rise to recurrent ascending collaterals, but initially ascending axons do also occur. Spiny stellate neurons are present in the different cytoarchitectonic areas examined, and thus they are not confined to the auditory koniocortex.

Adult↗