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Intracerebral Electrophysiological Recordings to Understand the Neural Basis of Human Face Recognition

Journal

BRAIN SCIENCES
Volume 13, Issue 2, Pages -

Publisher

MDPI
DOI: 10.3390/brainsci13020354

Keywords

human face recognition; categorization; fusiform gyrus; face identity; SEEG; direct electrical brain stimulation; prosopagnosia

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Understanding how the human brain recognizes faces is a primary goal in cognitive neuroscience. Recording electrophysiological activity with implanted electrodes in the brains of epileptic patients has been a key approach, but there are challenges that need to be overcome. Large-scale studies combining intracerebral activity recording and visual stimulation have provided insights into the neural basis of human face recognition.
Understanding how the human brain recognizes faces is a primary scientific goal in cognitive neuroscience. Given the limitations of the monkey model of human face recognition, a key approach in this endeavor is the recording of electrophysiological activity with electrodes implanted inside the brain of human epileptic patients. However, this approach faces a number of challenges that must be overcome for meaningful scientific knowledge to emerge. Here we synthesize a 10 year research program combining the recording of intracerebral activity (StereoElectroEncephaloGraphy, SEEG) in the ventral occipito-temporal cortex (VOTC) of large samples of participants and fast periodic visual stimulation (FPVS), to objectively define, quantify, and characterize the neural basis of human face recognition. These large-scale studies reconcile the wide distribution of neural face recognition activity with its (right) hemispheric and regional specialization and extend face-selectivity to anterior regions of the VOTC, including the ventral anterior temporal lobe (VATL) typically affected by magnetic susceptibility artifacts in functional magnetic resonance imaging (fMRI). Clear spatial dissociations in category-selectivity between faces and other meaningful stimuli such as landmarks (houses, medial VOTC regions) or written words (left lateralized VOTC) are found, confirming and extending neuroimaging observations while supporting the validity of the clinical population tested to inform about normal brain function. The recognition of face identity - arguably the ultimate form of recognition for the human brain - beyond mere differences in physical features is essentially supported by selective populations of neurons in the right inferior occipital gyrus and the lateral portion of the middle and anterior fusiform gyrus. In addition, low-frequency and high-frequency broadband iEEG signals of face recognition appear to be largely concordant in the human association cortex. We conclude by outlining the challenges of this research program to understand the neural basis of human face recognition in the next 10 years.

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