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Thumann, G.

Publications and source records attributed to Thumann, G..

2 recordsLinked to original sources

iSleep: Continuous, binocular pupil tracking in sleep and reduced consciousness for physiological monitoring, predictions and interventions

Monitoring pupil dynamics is a key tool in understanding arousal. Pupil size can serve as a biomarker for the autonomic nervous system balance as well as for identifying brain states. While internal states can also be self-reported when awake, automated detection and non-invasive monitoring is crucial during sleep and reduced consciousness. Here, we introduce iSleep, an innovative pupil tracking and analysis framework for sleep in humans. It features comfortable, humidified eye-tracking goggles and a platform for integrated analysis and prediction capabilities. We show that iSleep allows safe and continuous access to binocular pupil size and ocular dynamics during sleep and anesthesia. iSleep reveals that pupillary fluctuations correlate tightly with brain activity, heartbeat, and breathing, and can reliably predict brain states. Pupil constrictions reflect parasympathetic drive and likely serve a protective function for deep sleep stability; while dilations indicate arousals. Unexpectedly, we observed a decoupling of binocular movements during periods of sleep, indicating alterations in reflexes which usually govern voluntary eye movements. Finally, iSleep was tested in surgery patients under general anesthesia, revealing dynamic pupil changes to noxious stimuli, suggesting the potential for nociception monitoring during surgeries. In summary, iSleep offers an easy-to-use, robust alternative to read out brain states during sleep and anesthesia, opening new avenues in monitoring, diagnostics, and treatments, previously obscured by closed eyelids.

neuroscience↗

Morphological and functional alteration of light perception circuits in AD patients

Disruption of sleep and circadian rhythms is one of the earliest symptoms of Alzheimers disease (AD). Circadian entrainment and modulation of alertness are non-visual responses to light driven by intrinsically photosensitive retinal ganglion cells (ipRGCs). To explore structural and functional changes of ipRGCs and ipRGC circuits in AD, we analyzed the retinas and brains of 13 elderly patients ranging from normal cognition to AD and performed ex vivo extracellular electrophysiological recordings on freshly harvested retinas. While rods and cones were moderately impaired, there was a severe loss of ipRGCs in AD donors. Importantly, the remaining ipRGCs exhibited morphological alterations, hyperexcitability, and were not able to sustain high levels of activation. These changes may be ipRGC subtype-specific and correlated with disease progression. Altered ipRGC circuits and function could contribute to the disruption of sleep and circadian rhythms reported in AD patients. Measuring ipRGC-dependent responses to light could be a promising way to predict or monitor pathological changes in the brain.

neuroscience↗