1. Biomarkers of Depression Symptoms Defined by Direct Intracranial Neurophysiology
- Author
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Scangos, KW, Khambhati, AN, Daly, PM, Owen, LW, Manning, JR, Ambrose, JB, Austin, E, Dawes, HE, Krystal, AD, and Chang, EF
- Abstract
Quantitative biomarkers of depression are critical for development of rational therapeutics, but limitations of current low-resolution, indirect brain assays may impede their discovery. We applied graph theory and machine learning to a large unique dataset of intracranial electrophysiological recordings to generate a four-dimensional whole-brain model of neural activity. Using this model, we found patterns of network activity that correctly classified depression in over 80% of individuals. These complex patterns were especially evident in alpha and beta spectral power across frontal and occipital brain regions, respectively. Our findings reveal a widespread network of abnormal activity that may inform advanced personalized treatment.
- Published
- 2020
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