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Janssen p inferotemporal cortex subserves
P Inferotemporal Cortex Subserves, supplied by Janssen, used in various techniques. Bioz Stars score: 86/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/inferotemporal+cortex/cortex+inferotemporal+p+subserves/pm41820609-358-14-13
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p inferotemporal cortex subserves - by Bioz Stars, 2026-09
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Article Title: How does the cerebral cortex work? Development, learning, attention, and 3-D vision by laminar circuits of visual cortex.
Article Snippet: A key goal of behavioral and cognitive neuroscience is to link brain mechanisms to behavioral functions.. The present article describes recent progress toward explaining how the visual cortex sees.. Visual cortex, like many parts of perceptual and cognitive neocortex, is organized into six main layers of cells, as well as characteristic sublamina.

Article Title: Selectivity for Three-Dimensional Shape and Grasping-Related Activity in the Macaque Ventral Premotor Cortex
Article Snippet: [ PMC free article ] [ PubMed ] [ Google Scholar ] Verhoef BE, Vogels R, Janssen P. Inferotemporal cortex subserves three-dimensional structure categorization.

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Article Title: How does the cerebral cortex work? Development, learning, attention, and 3-D vision by laminar circuits of visual cortex.
Article Snippet: A key goal of behavioral and cognitive neuroscience is to link brain mechanisms to behavioral functions.. The present article describes recent progress toward explaining how the visual cortex sees.. Visual cortex, like many parts of perceptual and cognitive neocortex, is organized into six main layers of cells, as well as characteristic sublamina.

Article Title: Selectivity for Three-Dimensional Shape and Grasping-Related Activity in the Macaque Ventral Premotor Cortex
Article Snippet: [ PMC free article ] [ PubMed ] [ Google Scholar ] Verhoef BE, Vogels R, Janssen P. Inferotemporal cortex subserves three-dimensional structure categorization.



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Janssen inferotemporal cortex
3D structure processing network. A, Stimuli. A 2 × 2 design was used with factors curvature (curved vs flat) and disparity (control vs stereo). B, t values for the contrast [(curved stereo – controls) – (flat stereo-controls)] are displayed for 4 animals (p < 0.001, uncorrected) in two sagittal sections per subject. Arrows indicate <t>inferotemporal</t> hotspots: blue arrow indicates TEs; green arrow indicates TEp; white arrow indicates TEO; red arrow indicates AMTS. C, Coronal sections for individual subjects.
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3D structure processing network. A, Stimuli. A 2 × 2 design was used with factors curvature (curved vs flat) and disparity (control vs stereo). B, t values for the contrast [(curved stereo – controls) – (flat stereo-controls)] are displayed for 4 animals (p < 0.001, uncorrected) in two sagittal sections per subject. Arrows indicate <t>inferotemporal</t> hotspots: blue arrow indicates TEs; green arrow indicates TEp; white arrow indicates TEO; red arrow indicates AMTS. C, Coronal sections for individual subjects.
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Rocha labs visual responses in inferotemporal cortex
3D structure processing network. A, Stimuli. A 2 × 2 design was used with factors curvature (curved vs flat) and disparity (control vs stereo). B, t values for the contrast [(curved stereo – controls) – (flat stereo-controls)] are displayed for 4 animals (p < 0.001, uncorrected) in two sagittal sections per subject. Arrows indicate <t>inferotemporal</t> hotspots: blue arrow indicates TEs; green arrow indicates TEp; white arrow indicates TEO; red arrow indicates AMTS. C, Coronal sections for individual subjects.
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Rocha labs visual receptive fields of neurons in inferotemporal cortex of the monkey
3D structure processing network. A, Stimuli. A 2 × 2 design was used with factors curvature (curved vs flat) and disparity (control vs stereo). B, t values for the contrast [(curved stereo – controls) – (flat stereo-controls)] are displayed for 4 animals (p < 0.001, uncorrected) in two sagittal sections per subject. Arrows indicate <t>inferotemporal</t> hotspots: blue arrow indicates TEs; green arrow indicates TEp; white arrow indicates TEO; red arrow indicates AMTS. C, Coronal sections for individual subjects.
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3D structure processing network. A, Stimuli. A 2 × 2 design was used with factors curvature (curved vs flat) and disparity (control vs stereo). B, t values for the contrast [(curved stereo – controls) – (flat stereo-controls)] are displayed for 4 animals (p < 0.001, uncorrected) in two sagittal sections per subject. Arrows indicate inferotemporal hotspots: blue arrow indicates TEs; green arrow indicates TEp; white arrow indicates TEO; red arrow indicates AMTS. C, Coronal sections for individual subjects.

Journal: The Journal of Neuroscience

Article Title: Effective Connectivity Reveals an Interconnected Inferotemporal Network for Three-Dimensional Structure Processing

doi: 10.1523/JNEUROSCI.3024-19.2020

Figure Lengend Snippet: 3D structure processing network. A, Stimuli. A 2 × 2 design was used with factors curvature (curved vs flat) and disparity (control vs stereo). B, t values for the contrast [(curved stereo – controls) – (flat stereo-controls)] are displayed for 4 animals (p < 0.001, uncorrected) in two sagittal sections per subject. Arrows indicate inferotemporal hotspots: blue arrow indicates TEs; green arrow indicates TEp; white arrow indicates TEO; red arrow indicates AMTS. C, Coronal sections for individual subjects.

Article Snippet: 10.1152/jn.00924.2010 [ PMC free article ] [ PubMed ] [ CrossRef ] [ Google Scholar ] Verhoef BE, Vogels R, Janssen P (2012) Inferotemporal cortex subserves three-dimensional structure categorization .

Techniques: Control

TEs microstimulation. A, t values for the contrast [(curved stereo – controls) – (flat stereo-controls)] are displayed for 2 animals (Monkeys K and S) on their own anatomic scan (p < 0.001, uncorrected). Black artifact indicates the position of the stimulation electrode (indicated with blue arrows). B, Top row represents t values for the 3D processing network. Bottom row represents t values for the contrast (TEs microstimulation vs no microstimulation). t values are plotted for the 2 subjects individually. The same sagittal slice is displayed for each animal in the top and bottom row. C, Top row represents t values for the 3D processing network. Bottom row represents t values for the contrast (TEs microstimulation vs no microstimulation). Focus on parietal, premotor, and prefrontal areas. All conventions are as in B. D, t values for the contrast (TEs microstimulation vs no microstimulation; p < 0.001, uncorrected). t values are plotted for the 2 animals individually. White outlines indicate the outline of the activations of the 3D processing network as in Figure 1. Distance between two coronal slices is 2 mm. Anteroposterior coordinate of the center slice is indicated with 0. Arrows indicate the inferotemporal stereo hotspots as in Figure 1. Dashed blue arrow indicates TEs-EM induced activations outside the stereo-localizer.

Journal: The Journal of Neuroscience

Article Title: Effective Connectivity Reveals an Interconnected Inferotemporal Network for Three-Dimensional Structure Processing

doi: 10.1523/JNEUROSCI.3024-19.2020

Figure Lengend Snippet: TEs microstimulation. A, t values for the contrast [(curved stereo – controls) – (flat stereo-controls)] are displayed for 2 animals (Monkeys K and S) on their own anatomic scan (p < 0.001, uncorrected). Black artifact indicates the position of the stimulation electrode (indicated with blue arrows). B, Top row represents t values for the 3D processing network. Bottom row represents t values for the contrast (TEs microstimulation vs no microstimulation). t values are plotted for the 2 subjects individually. The same sagittal slice is displayed for each animal in the top and bottom row. C, Top row represents t values for the 3D processing network. Bottom row represents t values for the contrast (TEs microstimulation vs no microstimulation). Focus on parietal, premotor, and prefrontal areas. All conventions are as in B. D, t values for the contrast (TEs microstimulation vs no microstimulation; p < 0.001, uncorrected). t values are plotted for the 2 animals individually. White outlines indicate the outline of the activations of the 3D processing network as in Figure 1. Distance between two coronal slices is 2 mm. Anteroposterior coordinate of the center slice is indicated with 0. Arrows indicate the inferotemporal stereo hotspots as in Figure 1. Dashed blue arrow indicates TEs-EM induced activations outside the stereo-localizer.

Article Snippet: 10.1152/jn.00924.2010 [ PMC free article ] [ PubMed ] [ CrossRef ] [ Google Scholar ] Verhoef BE, Vogels R, Janssen P (2012) Inferotemporal cortex subserves three-dimensional structure categorization .

Techniques:

TEp microstimulation. A, t values for the contrast [(curved stereo – controls) – (flat stereo-controls)] are displayed for 2 animals (Monkey S in both hemispheres; p < 0.001, uncorrected). Electrode artifact is shown in the anatomic scan (indicated with green arrows) for three hemispheres (SRight, SLeft, and K). B, Top row represents t values for the 3D processing network. Bottom row represents t values for the contrast (TEp-EM vs no EM). C, Top row represents t values for the 3D processing network. Bottom row represents t values for the contrast (TEp-EM vs no EM). D, t values for the contrast (TEp-EM vs no EM; p < 0.001, uncorrected). White outlines indicate the outline of the activations of the 3D processing network as in Figure 1. Arrows indicate the inferotemporal hotspots as in Figure 1. All conventions are as in Figure 2.

Journal: The Journal of Neuroscience

Article Title: Effective Connectivity Reveals an Interconnected Inferotemporal Network for Three-Dimensional Structure Processing

doi: 10.1523/JNEUROSCI.3024-19.2020

Figure Lengend Snippet: TEp microstimulation. A, t values for the contrast [(curved stereo – controls) – (flat stereo-controls)] are displayed for 2 animals (Monkey S in both hemispheres; p < 0.001, uncorrected). Electrode artifact is shown in the anatomic scan (indicated with green arrows) for three hemispheres (SRight, SLeft, and K). B, Top row represents t values for the 3D processing network. Bottom row represents t values for the contrast (TEp-EM vs no EM). C, Top row represents t values for the 3D processing network. Bottom row represents t values for the contrast (TEp-EM vs no EM). D, t values for the contrast (TEp-EM vs no EM; p < 0.001, uncorrected). White outlines indicate the outline of the activations of the 3D processing network as in Figure 1. Arrows indicate the inferotemporal hotspots as in Figure 1. All conventions are as in Figure 2.

Article Snippet: 10.1152/jn.00924.2010 [ PMC free article ] [ PubMed ] [ CrossRef ] [ Google Scholar ] Verhoef BE, Vogels R, Janssen P (2012) Inferotemporal cortex subserves three-dimensional structure categorization .

Techniques:

TEO microstimulation. A, t values for the contrast [(curved stereo – controls) – (flat stereo – controls)] are displayed for 3 animals (p < 0.001, uncorrected). Electrode artifacts are shown in the anatomic scan (indicated with white arrows) for all 3 subjects (Monkeys S, M, and K). B, Top row represents t values for the 3D processing network. Bottom row represents t values for the contrast (TEO-EM vs no EM). C, Top row represents t values for the 3D processing network. Bottom row represents t values for the contrast (TEO-EM vs no EM). D, t values for the contrast (TEO-EM vs no EM; p < 0.001, uncorrected). White outlines indicate the outline of the activations of the 3D processing network as in Figure 1. Arrows indicate the stereo-defined inferotemporal hotspots as in Figure 1. Dashed white arrow indicates EM-induced activation outside the stereo-localizer. Conventions as in Figure 2.

Journal: The Journal of Neuroscience

Article Title: Effective Connectivity Reveals an Interconnected Inferotemporal Network for Three-Dimensional Structure Processing

doi: 10.1523/JNEUROSCI.3024-19.2020

Figure Lengend Snippet: TEO microstimulation. A, t values for the contrast [(curved stereo – controls) – (flat stereo – controls)] are displayed for 3 animals (p < 0.001, uncorrected). Electrode artifacts are shown in the anatomic scan (indicated with white arrows) for all 3 subjects (Monkeys S, M, and K). B, Top row represents t values for the 3D processing network. Bottom row represents t values for the contrast (TEO-EM vs no EM). C, Top row represents t values for the 3D processing network. Bottom row represents t values for the contrast (TEO-EM vs no EM). D, t values for the contrast (TEO-EM vs no EM; p < 0.001, uncorrected). White outlines indicate the outline of the activations of the 3D processing network as in Figure 1. Arrows indicate the stereo-defined inferotemporal hotspots as in Figure 1. Dashed white arrow indicates EM-induced activation outside the stereo-localizer. Conventions as in Figure 2.

Article Snippet: 10.1152/jn.00924.2010 [ PMC free article ] [ PubMed ] [ CrossRef ] [ Google Scholar ] Verhoef BE, Vogels R, Janssen P (2012) Inferotemporal cortex subserves three-dimensional structure categorization .

Techniques: Activation Assay