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Greilsamer, J.

Publications and source records attributed to Greilsamer, J..

2 recordsLinked to original sources

Comparable phosphene size and contrast properties, but differing detection reliability for optogenetic versus electrical stimulation of macaque V1

Cortical visual prostheses aim to restore vision by stimulating primary visual cortex (V1) to evoke artificial percepts (phosphenes). Electrical stimulation has long served this purpose, and optogenetic approaches promise higher spatial resolution via cell-type specificity. Recent investigations have demonstrated localized behavioral responses to optogenetic V1 stimulation (1--3), but the applied perimetry paradigms cannot dissociate a genuine percept from a reflexive oculomotor response, leaving the perceptual character of optogenetic phosphenes unresolved. To address this gap, two macaques received optogenetic V1 injections guided by laminar electrophysiology and performed detection and discrimination tasks under interleaved electrical, optogenetic, and visual stimulation, enabling direct within-subject comparison. Electrical stimulation reliably evoked detectable percepts (positive d' in 100% of sessions), with thresholds scaling with current, resembling visual contrast-response functions. Optogenetic stimulation was far less reliable, with positive d' in only ~50% of sessions, despite confirmed V1 activation. Despite this reliability difference, optogenetically evoked percepts closely resembled electrically and visually evoked percepts in perceptual character: perceived size (~1{degrees} of visual angle) was comparable across conditions and scaled similarly with eccentricity. Similarly, perceived contrast equivalents (5%-11% visual-contrast equivalent) were broadly comparable across stimulation approaches. These findings indicate that successful optogenetic activation engages the same perceptual encoding mechanisms as electrical and natural vision, but that reliable detection may additionally depend on circuit-level mechanisms not consistently engaged by current optogenetic parameters. The comparable percept size further suggests optogenetic stimulation may not confer the enhanced spatial resolution often proposed as its key advantage.

neuroscience↗

Neural dynamics of induced vocal tract vibrations during vocal emotion recognition

Despite a large corpus of literature in psychological and brain mechanisms on emotional prosody perception, the perspective of embodied cognition in these mechanisms have been largely neglected. Here we investigated the influence of induced bodily vibrations on the categorization of ambiguous emotional vocalizations using event-related potentials (ERPs). Emotional voices were morphed between a fearful expression with the speakers identity-matching angry expression, creating blends of emotions in each voice. Emotional congruent and incongruent vibrations were delivered on the skin close to the vocal cords. Congruent with our hypotheses, behavioural results revealed that induced vibrations skewed the participants emotional ratings by biasing responses towards the vibrations emotion. ERPs indicated that N100 and P200 components subtending the early processing of emotional prosody were significantly modulated by induced vibrations in the congruent setting, considered as a facilitation effect for emotion recognition at early stages of processing. A modulation of the late positive component was also observed in the incongruent setting, suggesting an error processing mechanism. Source reconstruction highlighted effects of vibration types in prefrontal, motor, somatosensory, and insular cortices. Our results suggest that voice-associated vibrations may play a significant role in vocal emotion processing and recognition through an embodied mechanism.

neuroscience↗