Sensorimotor cortex excitability and connectivity in Alzheimer's disease: A TMS‐EEG co‐registration study

F Ferreri, F Vecchio, L Vollero, A Guerra… - Human brain …, 2016 - Wiley Online Library
F Ferreri, F Vecchio, L Vollero, A Guerra, S Petrichella, D Ponzo, S Määtta, E Mervaala…
Human brain mapping, 2016Wiley Online Library
Several studies have shown that, in spite of the fact that motor symptoms manifest late in the
course of Alzheimer's disease (AD), neuropathological progression in the motor cortex
parallels that in other brain areas generally considered more specific targets of the
neurodegenerative process. It has been suggested that motor cortex excitability is enhanced
in AD from the early stages, and that this is related to disease's severity and progression. To
investigate the neurophysiological hallmarks of motor cortex functionality in early AD we …
Abstract
Several studies have shown that, in spite of the fact that motor symptoms manifest late in the course of Alzheimer's disease (AD), neuropathological progression in the motor cortex parallels that in other brain areas generally considered more specific targets of the neurodegenerative process. It has been suggested that motor cortex excitability is enhanced in AD from the early stages, and that this is related to disease's severity and progression. To investigate the neurophysiological hallmarks of motor cortex functionality in early AD we combined transcranial magnetic stimulation (TMS) with electroencephalography (EEG). We demonstrated that in mild AD the sensorimotor system is hyperexcitable, despite the lack of clinically evident motor manifestations. This phenomenon causes a stronger response to stimulation in a specific time window, possibly due to locally acting reinforcing circuits, while network activity and connectivity is reduced. These changes could be interpreted as a compensatory mechanism allowing for the preservation of sensorimotor programming and execution over a long period of time, regardless of the disease's progression. Hum Brain Mapp 37:2083–2096, 2016. © 2016 Wiley Periodicals, Inc.
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