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A Method for Investigating Age-related Differences in the Functional Connectivity of Cognitive Control Networks Associated with Dimensional Change Card Sort Performance
Published on: May 7, 2014
Un modelo neurocognitivo de tres etapas del procesamiento de la edad facial: evidencia de ERP, dinámica oscilatoria y
Wenjuan Xing1, Kepan Gao2, Yuejia Luo3
1College of Education for the Future, Beijing Normal University, Zhuhai 519087, China; School of Economics and Management, School of Chemistry and Chemical Engineering, Qilu Normal University, Jinan 250000, China.
Abstract:
Facial age serves as a socially salient cue that shapes impression formation and social cognition, yet its neurocognitive mechanism remains unclear. This study aimed to establish a three-stage model for facial age processing-structural encoding, prototype matching, and affective evaluation. We recorded EEG during age judgments of faces from four age groups (10, 30, 50, and 70 years) and combined ERP analyses (component-based and mass-univariate), time-frequency analysis, and functional connectivity. ERPs showed stage-specific age effects: older faces evoked larger N170 amplitudes, reduced P2 responses, and enhanced late positive potentials (LPP). MUA further confirmed these effects, identifying three significant time bands (70-168 ms, 228-286 ms, and 342-800 ms) over occipital and temporo-occipital sensors, with strongest differentiation for the oldest versus younger faces. Time-frequency analysis revealed increased theta (4-8 Hz) and alpha (8-13 Hz) power during early encoding (∼100-200 ms), accompanied by widespread theta/alpha phase-based connectivity, indicating global coordination for initial age encoding. During prototype matching (∼200-300 ms), only local theta activity remained, suggesting localized processing without large-scale network engagement. The late stage (>300 ms) was indexed by LPP modulations, reflecting age-related affective processing. Overall, facial age processing shows a dynamic shift from early global coordination to later localized processing, providing a mechanistic account of how the brain extracts age information from faces.

