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1 normalities in this region and activation in Heschl's gyrus.
2 cortex, overlapping the anterolateral end of Heschl's gyrus.
4 narrow tuning that follows the main axis of Heschl's gyrus and is flanked by regions of broader tuni
5 otopic axis oriented medial to lateral along Heschl's gyrus and more recent findings emphasizing tono
7 o investigated; minicolumn asymmetry of both Heschl's gyrus and planum temporale was correlated with
11 ed in two cortical regions: auditory cortex (Heschl's gyrus) and prefrontal cortex (middle frontal gy
12 d GM volume decreases in the auditory (i.e., Heschl's gyrus) and visual systems (i.e., the calcarine
13 tter (in medial frontal cortex, left insula, Heschl's gyrus, and cerebellum), three of the contrasts
14 sted on asymmetries of the planum temporale, Heschl's gyrus, and superior temporal gyrus, additionall
15 n parallel anterior "what" (in anterolateral Heschl's gyrus, anterior superior temporal gyrus, and po
16 ted the effect of early language exposure on Heschl's gyrus by comparing Spanish-Catalan bilinguals w
18 Asymmetry was found in the location of the Heschl's gyrus centroid (more anterior on the right) acr
19 subjects had M100 locations posterior to the Heschl's gyrus centroid in the left hemisphere and close
20 ll women had M100 locations posterior to the Heschl's gyrus centroid on the left and anterior to it o
22 roid in the left hemisphere and close to the Heschl's gyrus centroid on the right, while male patient
24 ry cortex (i.e., superior temporal gyrus and Heschl's gyrus) correlated with reduced hearing ability.
28 ites were identified within anterior lateral Heschl's gyrus (HG) and posterior lateral STG, in what m
29 n natural human vocalizations, is encoded in Heschl's gyrus (HG), and how this information may be use
31 lly from penetrating electrodes implanted in Heschl's gyrus (HG), from pial-surface electrodes placed
32 stion by relating anatomical measurements of Heschl's gyrus (HG), the structure containing human prim
33 eive foreign speech sounds and the volume of Heschl's gyrus (HG), the structure that houses the audit
35 n between the temporal lobe (often including Heschl's gyrus in great apes) and the posterior dorsal i
38 not found in the primary auditory cortex of Heschl's gyrus, indicating that they are selective to th
39 area comprising the superior temporal gyrus, Heschl's gyrus, insula, and striatum in the right hemisp
41 arliest informative activity occurs in right Heschl's gyrus, left primary visual cortex, and the post
43 no between-group volume differences in right Heschl's gyrus or in the right or left planum temporale.
44 ing association auditory cortex posterior to Heschl's gyrus [planum temporale (PT)] and inferior pari
45 left posterior perisylvian regions including Heschl's gyrus, posterior middle and superior temporal g
46 y and bimodal signal change in rostrolateral Heschl's gyrus predicted the strength of the visual illu
50 nvolved in perceptual fusion per se included Heschl's gyrus, superior temporal sulcus, middle intrapa
52 oncore areas within human auditory cortex on Heschl's gyrus that process natural human vocalizations
53 oduced greater activation in left than right Heschl's gyrus, the location of primary auditory cortex.
54 and white matter abnormalities found in the Heschl's gyrus, the parietal operculum, left Broca's are
55 ticity in anatomically defined subregions of Heschl's gyrus, the site of human primary auditory corte
57 regions to unimodal association areas - from Heschl's gyrus to superior temporal gyrus for the audito
58 21.0% relative to both), and a smaller total Heschl's gyrus volume (14.6% and 21.1%, respectively).
60 icolumn distribution in planum temporale and Heschl's gyrus was assessed on Nissl-stained sections by
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