TY - JOUR
T1 - Selective neuronal lapses precede human cognitive lapses following sleep deprivation
AU - Nir, Yuval
AU - Andrillon, Thomas
AU - Marmelshtein, Amit
AU - Suthana, Nanthia
AU - Cirelli, Chiara
AU - Tononi, Giulio
AU - Fried, Itzhak
N1 - Funding Information: We thank the subjects for their cooperation; M. Tran, E. Behnke, T. Fields, H. Gelbard-Sagiv, and M. Sagiv for assistance with data acquisition; and B. Salaz and N. Regev for administrative help. This work was supported by a Human Frontier Science Program (HFSP) Organization long-term fellowship (Y.N.), the Planning and Budgeting Committee of the Israeli Centers of Research Excellence (I-CORE) program and the Israel Science Foundation (grant no. 51/11, Y.N.), the FP7 Marie Curie Career Integration Grant (Y.N.), the Adelis Foundation (Y.N.), Société Française de Recherche et Médecine du Sommeil (SFRMS, T.A.), the Institute of Cognitive Studies of École Normale Superieure (IEC–ENS) (ANR-10-LABX-0087 and ANR-10-IDEX-0001-02 PSL*, T.A.), National Institute of Mental Health (NIMH) grant no. R01MH099231 (C.C. and G.T.), National Institute of Neurological Disorders and Stroke (NINDS) grant no. P01NS083514 (C.C. and G.T.), National Institute of General Medical Sciences grant no. R01GM116916 (G.T.), and NINDS grant nos. R01NS033221 and R01NS084017 (I.F.). Publisher Copyright: © 2017 Nature America, Inc., part of Springer Nature. All rights reserved.
PY - 2017
Y1 - 2017
N2 - Sleep deprivation is a major source of morbidity with widespread health effects, including increased risk of hypertension, diabetes, obesity, heart attack, and stroke. Moreover, sleep deprivation brings about vehicle accidents and medical errors and is therefore an urgent topic of investigation. During sleep deprivation, homeostatic and circadian processes interact to build up sleep pressure, which results in slow behavioral performance (cognitive lapses) typically attributed to attentional thalamic and frontoparietal circuits, but the underlying mechanisms remain unclear. Recently, through study of electroencephalograms (EEGs) in humans and local field potentials (LFPs) in nonhuman primates and rodents it was found that, during sleep deprivation, regional 'sleep-like' slow and theta (slow/theta) waves co-occur with impaired behavioral performance during wakefulness. Here we used intracranial electrodes to record single-neuron activities and LFPs in human neurosurgical patients performing a face/nonface categorization psychomotor vigilance task (PVT) over multiple experimental sessions, including a session after fullnight sleep deprivation. We find that, just before cognitive lapses, the selective spiking responses of individual neurons in the medial temporal lobe (MTL) are attenuated, delayed, and lengthened. These 'neuronal lapses' are evident on a trial-bytrial basis when comparing the slowest behavioral PVT reaction times to the fastest. Furthermore, during cognitive lapses, LFPs exhibit a relative local increase in slow/theta activity that is correlated with degraded single-neuron responses and with baseline theta activity. Our results show that cognitive lapses involve local state-dependent changes in neuronal activity already present in the MTL.
AB - Sleep deprivation is a major source of morbidity with widespread health effects, including increased risk of hypertension, diabetes, obesity, heart attack, and stroke. Moreover, sleep deprivation brings about vehicle accidents and medical errors and is therefore an urgent topic of investigation. During sleep deprivation, homeostatic and circadian processes interact to build up sleep pressure, which results in slow behavioral performance (cognitive lapses) typically attributed to attentional thalamic and frontoparietal circuits, but the underlying mechanisms remain unclear. Recently, through study of electroencephalograms (EEGs) in humans and local field potentials (LFPs) in nonhuman primates and rodents it was found that, during sleep deprivation, regional 'sleep-like' slow and theta (slow/theta) waves co-occur with impaired behavioral performance during wakefulness. Here we used intracranial electrodes to record single-neuron activities and LFPs in human neurosurgical patients performing a face/nonface categorization psychomotor vigilance task (PVT) over multiple experimental sessions, including a session after fullnight sleep deprivation. We find that, just before cognitive lapses, the selective spiking responses of individual neurons in the medial temporal lobe (MTL) are attenuated, delayed, and lengthened. These 'neuronal lapses' are evident on a trial-bytrial basis when comparing the slowest behavioral PVT reaction times to the fastest. Furthermore, during cognitive lapses, LFPs exhibit a relative local increase in slow/theta activity that is correlated with degraded single-neuron responses and with baseline theta activity. Our results show that cognitive lapses involve local state-dependent changes in neuronal activity already present in the MTL.
UR - https://www.scopus.com/pages/publications/85039065519
U2 - 10.1038/nm.4433
DO - 10.1038/nm.4433
M3 - Article
SN - 1078-8956
VL - 23
SP - 1474
EP - 1480
JO - Nature Medicine
JF - Nature Medicine
IS - 12
ER -